US20030060946A1 - Inspection system for watercraft - Google Patents

Inspection system for watercraft Download PDF

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Publication number
US20030060946A1
US20030060946A1 US10/247,919 US24791902A US2003060946A1 US 20030060946 A1 US20030060946 A1 US 20030060946A1 US 24791902 A US24791902 A US 24791902A US 2003060946 A1 US2003060946 A1 US 2003060946A1
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Prior art keywords
inspection
signal
engine
control device
inspection system
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US10/247,919
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Takashi Okuyama
Isao Kanno
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Yamaha Motor Co Ltd
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Individual
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Assigned to SANSHIN KOGYO KABUSHIKI KAISHA reassignment SANSHIN KOGYO KABUSHIKI KAISHA ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: KANNO, ISAO, OKUYAMA, TAKASHI
Publication of US20030060946A1 publication Critical patent/US20030060946A1/en
Priority to US11/195,246 priority Critical patent/US7505836B2/en
Assigned to YAMAHA MARINE KABUSHIKI KAISHA reassignment YAMAHA MARINE KABUSHIKI KAISHA CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: SANSHIN KOGYO KABUSHIKI KAISHA
Assigned to YAMAHA HATSUDOKI KABUSHIKI KAISHA reassignment YAMAHA HATSUDOKI KABUSHIKI KAISHA CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: YAMAHA MARINE KABUSHIKI KAISHA
Abandoned legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B77/00Component parts, details or accessories, not otherwise provided for
    • F02B77/08Safety, indicating or supervising devices
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B61/00Adaptations of engines for driving vehicles or for driving propellers; Combinations of engines with gearing
    • F02B61/04Adaptations of engines for driving vehicles or for driving propellers; Combinations of engines with gearing for driving propellers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D41/00Electrical control of supply of combustible mixture or its constituents
    • F02D41/22Safety or indicating devices for abnormal conditions

Definitions

  • the present invention generally relates to an inspection system for a watercraft, and more particularly relates to an inspection system for a watercraft propelled by an outboard drive (e.g., an outboard motor).
  • an outboard drive e.g., an outboard motor
  • An outboard motor for a watercraft typically incorporates an internal combustion engine placed at the top of the outboard motor structure.
  • the engine is coupled to a propeller or other propulsion device, which is disposed in a submerged position when the watercraft is floating on a body of water.
  • the engine powers the propeller to propel the watercraft.
  • the engine advantageously includes an engine output control device, such as, for example, a throttle device, which is controlled to change the output (e.g., the speed or the torque) of the engine.
  • the throttle device includes a throttle valve located in an air induction system.
  • the position of the throttle valve is changed responsive to a control input from an operator to regulate an amount of air delivered by the air induction system to a combustion chamber of the engine.
  • the control input from the operator changes another parameter of the engine to change the output of the engine.
  • the engine output may advantageously be controlled by controlling fuel flow to the engine, by controlling ignition timing of the engine, by controlling valve timing or opening, or by controlling a combination of parameters.
  • the propeller is coupled to the engine via a transmission.
  • the transmission incorporates a shifting mechanism to change the coupling of the propeller to the engine to provide forward, reverse and neutral operation of the propeller.
  • the propeller is coupled to the engine such that the propeller rotates in a first direction when the engine is operating.
  • the shifting mechanism is shifted to reverse to cause backward (i.e., reverse) motion of the watercraft
  • the propeller is coupled to the engine to rotate in a second direction opposite the first direction.
  • the shifting mechanism is shifted to a neutral position, the propeller does not rotate although the engine may continue to operate.
  • the shifting mechanism may also include positions that control coupling ratios between the engine and the propeller.
  • the watercraft is advantageously provided with a control unit disposed remotely in a cockpit of the watercraft so that the watercraft operator may control the throttle device and the changeover mechanism without being positioned proximate to the engine.
  • the control unit has a pair of levers pivotally or slidably mounted with respect to a body of the control unit.
  • the output control device is controlled.
  • the position of the throttle valve is changed to control the air flow and thus to control the engine output.
  • the coupling of the propeller to the engine via the transmission is changed via the shifting mechanism to select the rotation direction of the propeller (e.g., forward or reverse) or to select non-rotation of the propeller (e.g., neutral).
  • a hull of a watercraft and an outboard drive are produced separately and are combined (i.e., assembled together) by a boat builder during a final production stage of the watercraft or during a earlier stage close to the final production stage.
  • the customer of the watercraft advantageously selects a type of outboard drive and any components, parts or accessories from those which are available on the market. The customer may also order specific components or parts from suppliers. Thus, many combinations of components may be used to rig a watercraft.
  • the manufacturer wants to verify that engine output control lever and the shifting control lever in the control unit operate normally and that the engine output control device and the shifting mechanism within the outboard drive properly respond to control movements.
  • Such basic operations affect the fundamental performance of the watercraft (e.g., the maneuverability and the ease of operating a watercraft).
  • the manufacturer generally wants to assure that the output of the engine (e.g., the engine speed) and the operational mode of the propeller (e.g., forward, neutral and reverse) are properly indicated at respective indicators that are typically located in the cockpit of the watercraft where they can be monitored by the operator.
  • an inspection of the assembled watercraft with the attached outboard drive and other components is a manual operation that relies on the skills of a human inspector to apply the tests and to observe the responses of the outboard drive and other components (e.g., verifying that the outboard drive responds appropriately to the control devices and that the indicators properly show the status of the outboard drive and other components).
  • the inspection tests of the operability of the watercraft and the outboard drive should be done under typical operational conditions (e.g., with the watercraft floating on a body of water). Because of the reliance on human labor to perform the tests and to evaluate the results, such inspections are very costly, time consuming and inefficient, and the results of the inspections may be inaccurate.
  • One aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive.
  • a control device controls the outboard drive.
  • the inspection system comprises a first subsystem that provides a control device with a command signal to start an inspection test of the control device.
  • a second subsystem receives a response signal output by the control device.
  • a third subsystem determines whether the response signal from the control device is consistent with a specified signal corresponding to a response generated by a properly operating control device.
  • Another aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive.
  • the outboard drive includes an engine and a propulsion device powered by the engine.
  • the engine and the propulsion device are controlled by a control device.
  • the control device receives a control signal from a control unit.
  • the control device controls the engine and the propulsion device in response to the control signal.
  • the inspection system comprises a first subsystem that provides the control device with a command signal to start an inspection test on the control device.
  • a second subsystem requests the control device to output a response signal.
  • a third subsystem determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device.
  • a further aspect of the present invention is an inspection system for a watercraft powered by an engine.
  • a control device controls the engine.
  • the inspection system comprises an inspection device that conducts an inspection test of the control device.
  • the inspection device includes a program that comprises a first step that provides the control device with a command signal to start an inspection test on the control device. In a second step, the control device outputs a response signal.
  • a third step determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device.
  • a further aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive.
  • the outboard drive includes an engine and a propulsion device powered by the engine.
  • An operating device provides a control device with a control signal to control the engine and the propulsion device.
  • the inspection system comprises an inspection device that conducts an inspection test of the control device and the operating device.
  • the inspection device includes a program that comprises a first step that provides the control device with a command signal to start an inspection test on the control device. In a second step, the control device outputs a first response signal.
  • a third step determines whether the response signal is consistent with a first specified signal corresponding to a response generated by a properly operating control device.
  • a fourth step provides the operating device with a command signal to start an inspection test on the operating device.
  • the operating device outputs a second response signal.
  • a sixth step determines whether the second response signal is consistent with a second specified signal corresponding to a response generated by a properly functioning operating device.
  • a further aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive.
  • the outboard drive includes an engine and a propulsion device powered by the engine.
  • An operating device provides a control device with a control signal to control the engine and the propulsion device.
  • the inspection system comprises an inspection device that conducts an inspection of the operating device.
  • the inspection device includes a program that comprises a first step that provides the operating device with a command signal to start an inspection of the operating device. In a second step, the operating device outputs a response signal.
  • a third step determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly functioning operating device.
  • a further aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive. Distinctive part identification codes are assigned to a plurality of components related to the watercraft and the outboard drive. The components are capable of sending readable signals corresponding to the part codes.
  • the inspection system comprises a first subsystem that holds a component table corresponding to the part codes.
  • a second subsystem requests the components to send respective signals to the inspection system.
  • a third subsystem compares the signals sent by the components with the component table.
  • a further aspect of the present invention is an inspection method for a watercraft propelled by an outboard drive.
  • a control device of the outboard drive is provided with a command signal to start an inspection test on the control device.
  • the control device outputs a response signal.
  • the method determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device.
  • a further aspect of the present invention is an inspection method for a watercraft propelled by an outboard drive.
  • the outboard drive includes an engine and a propulsion device powered by the engine.
  • An operating device provides a control device with a control signal to control the engine and the propulsion device.
  • the method provides the control device with a command signal to start an inspection test on the control device.
  • the control device outputs a first response signal.
  • the method determines whether the first response signal is consistent with a first specified signal corresponding to a response generated by a properly operating control device.
  • the method provides the operating device with a command signal to start an inspection test on the operating device.
  • the operating device outputs a second response signal.
  • the method determines whether the second response signal is consistent with a second specified signal corresponding to a response generated by a properly functioning operating device.
  • an inspection method for a watercraft propelled by an outboard drive includes an engine and a propulsion device powered by the engine.
  • An operating device provides a control device with a control signal to control the engine and the propulsion device.
  • the method comprises providing the operating device with a command signal to start an inspection of the operating device, requesting the operating device to output a response signal, and determining whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device.
  • a further aspect of the present invention is an inspection method for a watercraft propelled by an outboard drive. Distinctive part identification codes are assigned to a plurality of components related to the watercraft and the outboard drive. The components are capable of sending readable signals corresponding to the part codes.
  • the method includes a component table having entries corresponding to the part codes. The components send respective signals to an inspection system, which compares the signals sent by the components with the entries in the component table.
  • FIG. 1 illustrates a schematic representation of a side elevational view of a watercraft (in phantom) propelled by an outboard motor (in phantom) and provided with an inspection system illustrated as a block diagram and configured in accordance with certain features, aspects and advantages of the present invention
  • FIG. 2 illustrates a block diagram of an embodiment of the inspection system of FIG. 1;
  • FIG. 3 illustrates a flow chart of an embodiment of the operation of the inspection system of FIGS. 1 and 2, the flow chart including one control routine and two inspection routines;
  • FIG. 4 illustrates a block diagram of an alternative embodiment of the inspection system of FIG. 1;
  • FIG. 5 illustrates a block diagram of a further alternative embodiment of the inspection system of FIG. 1;
  • FIG. 6 illustrates a flow chart of an embodiment of an operation of an inspection routine for another type of inspection using the inspection system of either FIG. 1, FIG. 4 or FIG. 5;
  • FIG. 7 illustrates a diagrammatic view of an exemplary network that includes terminal units of dealers and terminal units of boat builders and that is suitable for with the embodiment of the inspection routine of FIG. 6;
  • FIG. 8 illustrates a flow chart that shows the creation of a component table and that shows the use of the component table with the network of FIG. 7.
  • a watercraft 30 comprises a hull 32 .
  • a cockpit 34 is defined in a relatively forward area of the hull 32 .
  • the illustrated watercraft 30 represents a pleasure boat or a fishing boat, and may also represent other small to mediumsized watercraft.
  • the watercraft 30 employs an outboard drive (e.g., an outboard motor) 36 (also shown in phantom) that is mounted on a transom of the hull 32 to propel the watercraft 30 .
  • the outboard motor 36 incorporates an internal combustion engine 38 mounted at the top of the outboard motor structure and includes a propulsion device (not shown) such as, for example, a propeller or other thrust generating device that is disposed in a submerged position when the watercraft 30 is floating on a body of water.
  • a propulsion device such as, for example, a propeller or other thrust generating device that is disposed in a submerged position when the watercraft 30 is floating on a body of water.
  • the watercraft 30 and the outboard motor 36 together employ an inspection system 42 to check or inspect the watercraft 30 in combination with the outboard motor 36 .
  • the inspection system 42 has a particular utility in the context of a combination of a pleasure boat or a fishing boat with an outboard motor and is described in the context of the combination.
  • the inspection system 42 can also be used with other types of watercrafts and outboard drives wherein at least one outboard drive is separately produced and then combined with the associated watercraft.
  • Other examples will become apparent to those of ordinary skill in the art.
  • the engine 38 comprises an air induction system that delivers air to one or more combustion chambers of the engine.
  • the engine 38 additionally comprises a charge forming system such as a fuel injection system or a carburetor system in association with the air induction system to form air/fuel charges in the combustion chambers.
  • a charge forming system such as a fuel injection system or a carburetor system in association with the air induction system to form air/fuel charges in the combustion chambers.
  • a charge forming system such as a fuel injection system or a carburetor system in association with the air induction system to form air/fuel charges in the combustion chambers.
  • the combustion causes reciprocal movement of pistons in the combustion chambers.
  • the reciprocal movement is translated to rotational movement of a crankshaft.
  • the crankshaft rotation is coupled via gears and shafts or other linkages to a the propeller or other thrust generating device.
  • An exhaust system (not shown) routes exhaust byproducts from the combustion chambers to the external environment.
  • the air induction system incorporates a throttle valve assembly comprising one or more throttle valves (not shown) to regulate or measure a quantity of air provided to the combustion chambers during each induction cycle.
  • Each throttle valve can be a butterfly type valve and can be disposed within an intake passage for pivotal movement therein.
  • the throttle valve has an operating state or characteristic corresponding to its position relative to the intake passage or the plenum chamber. When the state (e.g., position) of the throttle valve is changed, a degree of opening of an airflow path of the intake passage changes, and the quantity of air allowed to pass through the passage or plenum chamber is regulated.
  • the regulation of the quantity of air regulates the output (e.g., the speed) of the engine 38 .
  • the throttle valve assembly thus forms an adjustment mechanism that changes the engine speed in this arrangement. Normally and unless the environmental circumstances changes, when the degree to which the throttle valve is opened increases, the rate of airflow increases and the engine speed increases.
  • a slidably movable throttle valve can replace the butterfly type throttle valve.
  • the engine control system 42 described herein can also be used with adjustment mechanisms other than throttle valves.
  • the engine control system 42 can be used with adjustment mechanisms that change operating states to regulate fuel flow (e.g., vary fuel injection timing, duration, amount, fuel pressure, etc.), with adjustment mechanisms that change operating states to regulate ignition timing, and with adjustment mechanisms that change operating states to regulate cylinder valve movement (e.g., vary intake or exhaust valve timing, duration and/or lift).
  • the throttle device preferably is provided with a throttle actuator 46 such as, for example, an electric motor.
  • the electric motor preferably is coupled with a throttle valve shaft or a shaft related to the throttle valve. The electric motor rotates in response to a control signal to actuate the throttle device.
  • the output of the engine 38 is transferred to the propeller or other propulsion device through a transmission disposed in a lower housing of the outboard motor 36 .
  • the transmission has a transmission shifting mechanism that controls the coupling of the propeller to the engine (e.g., controls the mode of operation of the propeller).
  • the shifting mechanism can be moved to a forward position to couple the propeller to the engine in a first mode of operation, which causes the propeller to rotate in a first direction to propel the watercraft in a forward direction.
  • the shifting mechanism can be moved to a reverse position to couple the propeller to the engine in a second mode of operation, which causes the propeller to rotate in a second direction opposite the first direction to propel the watercraft backward.
  • the shifting mechanism can be operated to a neutral position to decouple the propeller from the engine so that the propeller is in a third mode of operation in which the propeller does not rotate in response to the engine and thus does apply thrust to the watercraft.
  • shift position refers to the mode of operation of the propeller (e.g., forward, neutral or reverse) or refers to the position of the shifting mechanism that corresponds to the mode of operation of the propeller.
  • the changeover mechanism preferably is provided with a shift actuator 48 such as, for example, an electric motor or a solenoid coupled with a shift rod or other members of the changeover mechanism.
  • the motor or solenoid moves in response to a control signal to actuate the changeover mechanism.
  • the outboard motor 36 incorporates a control device 52 that controls the throttle actuator 46 and the shift actuator 48 .
  • the control device 52 preferably comprises a microprocessor or central processing unit (CPU), a memory or other data storage device, and an interface that couples the memory with the CPU.
  • CPU central processing unit
  • the watercraft 30 includes a control unit or other operating device 56 that is preferably disposed in the cockpit 34 at a remote location from the outboard motor 36 so that the operator does not have to be close to the outboard motor 36 when operating the watercraft 30 .
  • the control unit 54 and the control device 52 are preferably coupled to each other via a local area net work (LAN) 58 and an electrical cable 60 .
  • LAN 58 is advantageously positioned on the bottom portion of the hull 32 along a keel that extends from the bow to the stern of the hull 32 .
  • the control unit 56 preferably includes a pair of levers (not shown) that are pivotally or slidably mounted onto a body of the control unit 56 .
  • One of the levers is a throttle lever related to a throttle position setter 62
  • the other lever is a shift lever related to a shift position setter 64 .
  • the throttle and shift levers are positioned adjacent to each other such that the operator can operate both of the levers with one hand.
  • the throttle position setter 62 When the throttle lever is operated, the throttle position setter 62 generates an initial throttle position control signal.
  • the shift position setter 64 When the shift lever is operated, the shift position setter 64 generates an initial shift position control signal. For example, in the preferred embodiment described herein, an amount of the physical movement of either the throttle lever or the shift lever, i.e., a change in an angular position or a slide position from a respective original position, is converted to a signal that has a voltage or other electrical value that represents an amount of movement or a position of the respective lever.
  • the signals generated by the control unit 56 are communicated to the control device 52 via the LAN 58 and the electrical cable 60 .
  • the control device 52 can receive the initial control signals and send the initial control signals to the throttle actuator 46 and the shift actuator 48 without changing the signals.
  • the control device 52 changes the initial control signals in accordance with environmental conditions into modified control signals and then controls the throttle actuator 46 and the shift actuator 48 using the modified control signals.
  • the CPU of the control device 52 communicates with the memory through the interface.
  • the memory preferably stores a control map that contains control amounts versus engine loads and throttle positions. The CPU selects uses the engine load and the throttle position to select one of the control amounts most suitable to the engine load and the throttle position under the circumstances.
  • the watercraft 30 and the outboard motor 36 include a throttle position sensor 68 , a shift position sensor 70 and an engine speed sensor 72 that are positioned at proper locations to send a throttle position signal, a shift position signal (e.g., a propeller mode of operation signal) and an engine speed signal, respectively, to the CPU of the control device 52 .
  • a throttle position signal e.g., a propeller mode of operation signal
  • a shift position signal e.g., a propeller mode of operation signal
  • an engine speed signal respectively
  • Each signal has a characteristic voltage or other electrical value that represents the respective parameter sensed by the respective sensor.
  • the throttle position sensor 68 detects an actual position or opening degree of the throttle valves (or the corresponding parameter of an alternative engine control device).
  • the throttle position sensor 68 is preferably disposed on a valve shaft or on a shaft connected to the valve shaft.
  • the shift position sensor 70 detects an actual position of the transmission shifting mechanism. That is, the shift position sensor 70 senses whether the propeller is coupled to the engine 38 for the forward mode of operation, coupled to the engine 38 for the reverse mode of operation, or decoupled from the engine 38 for the neutral mode of operation.
  • the shift position sensor 70 can advantageously be positioned adjacent to the shift rod that controls the mode of operation (e.g., the shift position) of the propeller.
  • the engine speed sensor 72 preferably comprises a crankshaft angle position sensor that is positioned proximate a crankshaft of the engine 38 .
  • the angle position sensor measures a crankshaft angle versus time and outputs a crankshaft rotational speed signal or engine speed signal.
  • the CPU of the control device 52 receives the throttle position signal and the engine speed signal and uses the two signals to determine the engine load.
  • the CPU uses the engine load to make decisions for controlling the outboard motor 36 and particularly for controlling the engine 38 .
  • An exemplary control system is disclosed in, for example, in a co-pending U.S. application, titled Engine Control System for Watercraft, and identified as Attorney Docket No. FS.20063US0A. The entire contents of the co-pending application are expressly incorporated by reference herein.
  • the watercraft 30 and outboard motor 36 include a battery voltage sensor 76 and other sensors 78 .
  • the other sensors 78 advantageously include a lubricant oil amount sensor and a fuel amount sensor.
  • the battery voltage sensor 76 and the other sensors 78 generate output signals that are sent to the control device 52 via the LAN 58 and the electrical cable 60 .
  • the CPU in the control device 52 receives the signals and uses the signals to in making decisions for controlling of the outboard motor 36 .
  • the watercraft 30 includes a digital or analog indicator (or meter) 82 , which is positioned in the cockpit 34 to indicate the throttle position, the shift position, the engine speed, the battery voltage and other necessary information.
  • the indicator 82 is coupled to the control device 52 via the LAN 58 and the electric cable 60 .
  • the indicator 82 is positioned so that the indicator can be easily monitored by the operator while the operator is controlling the watercraft 30 and the outboard motor 36 . By monitoring the indicator 82 , the operator can recognize the operating conditions of the outboard motor 36 .
  • the output signals of the sensors 76 , 78 also are sent to the indicator 82 through the LAN 58 to be used for indicating normal or abnormal conditions of the associated devices or units. Otherwise, the signals can be sent to a sounder such as, for example, a buzzer to warn the abnormal conditions.
  • a sounder such as, for example, a buzzer to warn the abnormal conditions.
  • the indicator 82 may be implemented in multiple ways, such as, for example, multiple meters or other indicators so that each position signal and other signals are always indicated, one or more meters or other indicators that are switched between signals, or a indicator panel that shows multiple signal indications on the same panel.
  • the watercraft 30 is provided with other mechanical and electric cables and conduits to communicate with the outboard motor 36 .
  • those cables and conduits are not shown in FIGS. 1 and 2.
  • the mechanical cables can include a steering cable and a transmission control cable.
  • the electric cables can include a battery cable.
  • the conduits can include a fuel delivery conduit.
  • the LAN 58 advantageously includes a connector 86 that provides communication access to the LAN 58 .
  • a terminal device or inspection device 88 such as, for example, a personal computer, can be connected to the LAN 58 through the connector 86 .
  • the illustration in FIG. 1 schematically shows the connector 86 located away from the cockpit 34
  • the connector 86 is located in the cockpit 34 so that a person conducting inspection tests (e.g., an inspector) can monitor the indicator 82 while operating the terminal device 88 .
  • the terminal device 88 preferably comprises a notebook computer that has a keyboard 90 and an indicator panel or indicating unit 92 .
  • the terminal device 88 can advantageously be connected to a printer or other external indicating unit by wire, by radio communication, by infrared signals or by other known communications systems.
  • control device 52 the control unit 56 , the terminal device 88 , the sensors 76 , 78 , and the indicator 82 are coupled with each other via the LAN 58 .
  • the devices can advantageously communicate with each other using conventional protocols.
  • the inspection system 42 can be easily configured and set up to work with conventional components that are available on the market.
  • FIG. 3 An exemplary preferred system (e.g., procedure) for inspection of the watercraft 30 with the outboard motor 36 is illustrated in FIG. 3 and is described below.
  • the procedure is implemented as a program stored in the terminal device 88 .
  • the program implements a set of inspection procedures that determine whether the control device 52 and the control unit 56 are working and communicating properly.
  • the program is previously installed in the terminal device 88 .
  • the control device 52 is commanded to shift to an inspection mode first and then the control unit 56 is commanded to shift to an inspection mode.
  • the order in which the two devices shift to their respective inspection modes can be changed.
  • the inspection mode of the control device 52 or the inspection mode of the control unit 56 can be omitted so that only one of the two devices is in the respective inspection mode.
  • the inspection procedure comprises a first routine or subsystem 100 , a second routine or subsystem 102 and a third routine or subsystem 104 .
  • the first routine 100 corresponds to a control routine conducted by the terminal device 88 .
  • the second routine 102 and the third routine 104 respectively relate to inspection routines conducted by the control device 52 and the control unit 56 .
  • the solid arrows between the blocks in FIG. 3 indicate transfers from one step to another step in the same routine.
  • the phantom arrows between the blocks in FIG. 3 indicate cues generated by one routine that start a step in another routine.
  • the inspector When conducting the inspection procedure illustrated in FIG. 3, the inspector turns on the terminal device 88 and also turns on a main switch in the watercraft 30 connected to the control device 52 and the control unit 56 .
  • the control device 52 and the control unit 56 can be turned on in a different manner.
  • the engine 38 does not need to be operating in the illustrated inspection procedure.
  • the control routine starts and proceeds to a step S 30 to conduct the inspection of the control device 52 with the inspection routine 102 .
  • the terminal device 88 provides the control device 52 with a command signal (e.g., a start signal) that indicates the start of the inspection routine on the control device 52 .
  • the control routine then proceeds to the step S 31 .
  • the inspection routine 102 is initialized and then proceeds to a step S 50 where the control device 52 waits for receipt of the start signal.
  • the control device 52 enters the inspection mode in response to the start signal, and the inspection routine 102 proceeds to a step S 51 .
  • the terminal device 88 sends specified signals to the control device 52 .
  • the specified signals command (e.g., request) the control device 52 to output response signals.
  • the specified signals can be generated together or generated sequentially (i.e., one by one).
  • the control routine 100 then proceeds to a step S 32 .
  • exemplary specified signals include a signal indicative of a simulated engine speed and a signal indicative of a simulated battery voltage.
  • the exemplary specified signals are provided as inputs to the control routine 100 by the inspector via the keyboard of the terminal device 88 .
  • the control device 52 outputs a signal indicative of the engine speed and the battery sensor signal to the terminal device 88 as the response signals in accordance with the instructions from the terminal device 88 .
  • the illustrated control device 52 usually does not monitor the battery voltage from the battery voltage sensor 76 or monitor other outputs from the other sensors 78 .
  • the control device 52 can generate a representation of at least the battery voltage sensor 76 in the particular inspection mode.
  • the control device 52 sends the representation as a response signal of the sensor 76 .
  • the battery voltage sensor 76 and the other sensors 78 can include an inspection mode in which the sensors 76 , 78 generate response signals.
  • the control device 52 also outputs the response signals to the indicator 82 at the step S 51 .
  • the indicator 82 thus indicates the simulated engine speed and the simulated battery voltage corresponding to the response signals.
  • the inspector thus can recognize whether the indicator 82 works properly. For example, if the respective indication of engine speed or battery voltage on the indicator 82 differs from the specified engine speed or from the specified battery voltage but the terminal device 88 determines the control device 52 is working properly, then the inspector can determine that the indicator 82 is not working properly.
  • the routine 102 proceeds to the step S 52 and closes the inspection mode of the control device 52 .
  • the terminal device 88 compares the response signals from the control device 52 with the specified signals (e.g., the signals expected to be generated by the control device 52 ) and determines whether the response signals are consistent with the original signals.
  • the specified signals e.g., the signals expected to be generated by the control device 52
  • the control routine 100 then proceeds to a step S 33 to activate the inspection routine 104 to conduct the inspection on the control unit 56 .
  • the terminal device 88 provides the control unit 56 with a command signal (e.g., a start signal) that indicates the start of the inspection of the control unit 56 .
  • the control routine 100 then proceeds to a step S 34 .
  • the inspection routine 104 is initialized and then proceeds to a step S 70 where the control unit 56 waits for receipt of the start signal.
  • the control unit 56 enters the inspection mode in response to the start signal, and the inspection routine 104 proceeds to a step S 71 .
  • the terminal device 88 sends specified signals to the control unit 56 that command or request the control unit 56 to output response signals.
  • the specified signals can be generated together or can be generated sequentially (i.e., one by one).
  • the control routine 100 then proceeds to a step S 35 .
  • exemplary specified signals advantageously include a simulated initial throttle position control signal and a simulated initial shift position control signal.
  • the exemplary specified signals are provided as inputs to the control routine 100 by the inspector via the keyboard of the terminal device 88 .
  • the control unit 56 outputs the throttle position control signal and the shift position control signal as the response signals in accordance with the instruction by the terminal device 88 .
  • the control unit 56 also outputs the response signals to the control device 52 as the initial control signals at the step S 71 .
  • the control device 52 actually controls the throttle actuator 46 and the shift actuator 48 in accordance with the signals from the control unit 56 .
  • the throttle device and the changeover mechanism are actuated.
  • the throttle position sensor 68 and the shift position sensor 70 detect the throttle position and the shift position, respectively, and output the detected signals to the terminal device 88 .
  • the indicator 82 can additionally indicate the simulated throttle position and the simulated shift position to enable the inspector to double check the indicator 82 .
  • the inspection routine 104 proceeds to a step S 72 and closes the inspection mode of the control unit 56 .
  • the terminal device 88 compares the response signals from the control unit 56 with the specified signals and determines whether the response signals are consistent with the specified signals.
  • the control routine 100 then proceeds to a step S 36 .
  • the terminal device 88 compares the throttle position and shift position signals which are actually detected with the specified signals and determines whether the actually detected signals are consistent with the specified signals.
  • the control routine 100 then proceeds to a step S 37 .
  • the indicator panel 92 of the terminal device 88 displays the determinations of the inspection routine generated at the step S 32 , the step S 35 and the step S 36 .
  • the terminal device 88 can advantageously instruct the printer to print out the determinations, instruct the external indicating unit to show the determinations, or instruct both the printer and the external indicating unit.
  • the determination at the step S 32 can be indicated or printed out immediately after the step S 32 without waiting for the determinations generated at the step S 35 and the step S 36 .
  • control routine 100 ends all the inspection routines.
  • the inspector can, for example, check whether the control device 52 works properly, whether the control unit 56 works properly, whether the indicator 82 works properly, whether the combination of the control device 52 in the outboard 36 and the control unit 56 in the watercraft 30 is an appropriate combination, and whether the LAN and the electric cables are properly coupled with each other. If the inspector finds something wrong or abnormal, the inspector can fix any wrong or abnormal portion or ask another person to do to perform any necessary corrective action.
  • the inspection of the watercraft with the outboard motor can be conducted automatically and without the watercraft being placed on a body of water and without the engine operating.
  • the check of the watercraft is quite efficient and can be easily performed at the final production stage of the watercraft or at an earlier production stage close to the final production stage.
  • the terminal device 88 can be coupled to the LAN 58 via a radio interface 110 as illustrated in FIG. 4.
  • the radio interface 110 can be selected from any interface that operates at radio frequencies.
  • an exemplary commercially available radio interface used in the illustrated alternative system is configured in accordance with the BluetoothTM wireless technology as defined in the Bluetooth Wireless Specification promulgated by Bluetooth SIG, Inc. Because the terminal device 88 is not mechanically connected to any other part of the inspection system 42 in this alternative, the inspector can position the terminal device 88 at any place or move the terminal device 88 as the inspection is being performed.
  • FIG. 5 illustrates a further alternative using a navigation unit 116 as an inspection device.
  • the navigation unit 116 advantageously includes radio communications equipment, a fish-finder, a global positioning system (GPS) unit, and other components.
  • the navigation unit 116 includes hardware such as a microprocessor and a memory.
  • the foregoing inspection program or other inspection programs provided in accordance with the present invention can be installed in the memory of the navigation unit 116 to conduct the inspection of the watercraft with the outboard motor.
  • the inspection programs can be uninstalled after the inspection has been finished. Otherwise, the programs can be held in those devices or units for maintenance, i.e., for re-conducting the inspection later.
  • FIG. 6 illustrates an inspection routine 130 that may be performed using the inspection system 42 shown in either FIG. 1, FIG. 2, FIG. 4 or FIG. 5 to conduct a second inspection of the combination of the watercraft 30 and the outboard motor 36 .
  • the second inspection a lack of components or a double installation of a component can be checked.
  • all the components related to the watercraft 30 and the outboard motor 36 are assigned with distinctive part identification codes.
  • the part codes that can be used for the inspection include magnetized codes, bar codes, other magnetic or optical codes, electronically readable codes and other physically recognizable codes.
  • the terminal device 88 previously stores a component table that includes the same part codes as those assigned to the respective components.
  • the component table comprises a list of all components of the watercraft 30 and the outboard motor 36 as set forth in the specifications for the watercraft 30 and the outboard motor 36 .
  • the inspection routine 130 starts and proceeds to a step S 90 .
  • the terminal device 88 utilizes the LAN 58 to provide all the components with a check signal to request the components to send respective response signals to the terminal device 88 .
  • the response signals are the readable part codes for each component.
  • the routine 130 then proceeds to a step S 91 wherein the terminal device 88 receives the response signals from the components.
  • the routine 130 then proceeds to a step S 92 .
  • the terminal device 88 compares the received response signals with the part codes stored in the component table. The routine 130 then proceeds to a step S 93 to determine whether all the received response signals are consistent with the part codes stored in the component table. If, at the step S 93 , the terminal device 88 determines that all the response signals are consistent with the component table, the routine 130 proceeds to a step S 94 . Otherwise, the routine 130 proceeds to a step S 95 .
  • the terminal device 88 outputs a inspection completion form, which is previously stored in the terminal device 88 .
  • the inspection completion form can be printed out or sent to another device connected to the terminal device 88 by wire or by a radio communication system so that a person other than the inspector can review or use the form later or at a remote location.
  • the terminal device 88 indicates that one or more components are abnormal (e.g., a wrong part is installed or a part has been incorrectly installed multiple times). Alternatively or in addition, the terminal 88 outputs a signal that indicates an abnormal condition of the components to another device.
  • the indication of an abnormal condition can also be sent to a printer to be printed out. The inspector can fix the abnormal condition or the inspector can ask someone else to fix the abnormal condition.
  • the inspection routine 130 ends.
  • All the components of the watercraft and the outboard motor do not necessarily have the readable part identification codes.
  • only important components selected in accordance with a certain criterion may have the part codes in particular embodiments.
  • FIGS. 7 and 8 illustrate a suitable way to create the component table in the terminal device 88 and to store the component table in the terminal device 88 .
  • FIG. 7 illustrates an exemplary network 140 that interconnects the dealer terminal units D 1 and D 2 and the boat builder terminal units B 1 B 2 .
  • the network 140 can advantageously be the Internet or another public or private network. The Internet is advantageously used to provide worldwide interconnections between dealers and boat builders.
  • a customer associated with one of the dealers selects necessary and desired components at the terminal unit D 1 , for example, and sends information about the components to one of the boat builders associated with the dealer through the network 140 .
  • the boat builder obtains the information at the terminal unit B 1 , for example, and rigs the watercraft purchased by the customer with the selected components.
  • the boat builder stores a specific component table in a terminal device (or check-conducting device) which will be used for the second inspection.
  • the component table lists the components of the completed watercraft as assembled by the boat builder.
  • a flowchart in FIG. 8 illustrates an exemplary routine 150 for making the component table and for handling the component table through the network 140 .
  • the dealer's terminal unit D 1 and the boat builder's terminal unit B 1 are terminal units that are used to perform the steps in the flow chart 50 .
  • the routine 150 starts and proceeds to a step S 120 .
  • the customer for a specific watercraft selects the necessary components, the desired components or combinations of necessary components and desired components from existing component lists that contain all components that can be specifically used for the specific watercraft and from all-purpose component lists that contain components that can be used for all watercraft or for a watercraft group that includes the specific watercraft.
  • the selection is made at the terminal unit D 1 .
  • the component lists are stored in the terminal unit D 1 or in the terminal unit B 1 .
  • the network 140 can include another unit (e.g., a server) that stores the component lists, and the customer can access the component lists via the network 140 . All the listed components have previously been assigned with the distinctive part identification codes discussed above.
  • the routine 150 then proceeds to a step S 121 wherein the terminal unit D 1 creates a temporary component table based upon the selections of the customer.
  • the temporary component table is suspended (e.g., stored but not yet transmitted) in the terminal unit D 1 until the customer and the dealer complete a purchase agreement (e.g., a purchase contract).
  • the routine 150 then proceeds to a step S 122 wherein the customer and the dealer endeavor to complete a purchase agreement. If the purchase agreement is completed, the routine 150 proceeds to a step S 123 . On the other hand, if the purchase agreement is not completed, the routine 150 does not proceed to the step S 123 , and the routine ends.
  • the terminal unit D 1 promotes the temporary component table to a formal component table and releases (e.g., communicates) the formal component table to the terminal unit B 1 of the boat builder via the network 140 to request the boat builder to initiate the assembly of the watercraft, the outboard motor and the selected components by the boat builder.
  • the routine 150 then proceeds to a step S 124 wherein the boat builder orders the components from internal divisions or sections or from suppliers based upon the information in the formal component table.
  • the boat builder rigs i.e., assembles
  • the routine 150 proceeds to a step S 125 wherein the boat builder transfers the information in the component table to the terminal device that will be used to check the completed watercraft in accordance with the second inspection described above.
  • the second inspection is conducted in accordance with the inspection program 130 described above in connection with FIG. 6. After completing the step S 125 , the routine 150 ends.
  • the component table can be prepared before the second inspection is conducted.
  • the component table accurately includes the components that the customer has selected because the component table is created by the boat builder to completely reflect the selected components via the distinctive part identification codes corresponding to the components. Furthermore, since the boat builder orders components using the component table provided by the dealer and therefore does not need to create the table, the boat builder is less likely to experience errors in ordering components for the assembled watercraft.

Abstract

A watercraft propelled by an outboard motor includes an inspection system. The inspection system includes a terminal computer that conducts an inspection of an engine control device and a control unit. The computer includes a program that performs an inspection process that provides the control device with a command signal to start an inspection of the control device and that requests the control device to output a first response signal. The process determines whether the response signal is consistent with a first specified signal. The process provides the control unit with a command signal to start an inspection of the control unit and requests the control unit to output a second response signal. The process determines whether the second response signal is consistent with a second specified signal. The control device controls a throttle actuator and a shift actuator based upon the second response signal and provides the inspection system with an operating signal. The process determines whether the operating signal is consistent with the second specified signal. The computer includes an indicator panel or other display device to show the results of the determinations made by the inspection process.

Description

    PRIORITY INFORMATION
  • This application is based on and claims priority to Japanese Patent Application No. 2001-290902, filed on Sep. 25, 2001, the entire content of which is expressly incorporated by reference herein. [0001]
  • BACKGROUND OF THE INVENTION
  • 1. Field of the Invention [0002]
  • The present invention generally relates to an inspection system for a watercraft, and more particularly relates to an inspection system for a watercraft propelled by an outboard drive (e.g., an outboard motor). [0003]
  • 2. Description of Related Art [0004]
  • Many small to medium-sized watercraft, such as pleasure boats and fishing boats, employ outboard drives such as outboard motors. An outboard motor for a watercraft typically incorporates an internal combustion engine placed at the top of the outboard motor structure. The engine is coupled to a propeller or other propulsion device, which is disposed in a submerged position when the watercraft is floating on a body of water. The engine powers the propeller to propel the watercraft. [0005]
  • The engine advantageously includes an engine output control device, such as, for example, a throttle device, which is controlled to change the output (e.g., the speed or the torque) of the engine. For example, in many engines, the throttle device includes a throttle valve located in an air induction system. In such engines, the position of the throttle valve is changed responsive to a control input from an operator to regulate an amount of air delivered by the air induction system to a combustion chamber of the engine. In an engine having another type of output control device, the control input from the operator changes another parameter of the engine to change the output of the engine. For example, the engine output may advantageously be controlled by controlling fuel flow to the engine, by controlling ignition timing of the engine, by controlling valve timing or opening, or by controlling a combination of parameters. [0006]
  • In many typical engines, the propeller is coupled to the engine via a transmission. The transmission incorporates a shifting mechanism to change the coupling of the propeller to the engine to provide forward, reverse and neutral operation of the propeller. For example, for forward motion of the watercraft, the propeller is coupled to the engine such that the propeller rotates in a first direction when the engine is operating. When the shifting mechanism is shifted to reverse to cause backward (i.e., reverse) motion of the watercraft, the propeller is coupled to the engine to rotate in a second direction opposite the first direction. When the shifting mechanism is shifted to a neutral position, the propeller does not rotate although the engine may continue to operate. In addition to the forward, neutral and reverse positions, the shifting mechanism may also include positions that control coupling ratios between the engine and the propeller. [0007]
  • The watercraft is advantageously provided with a control unit disposed remotely in a cockpit of the watercraft so that the watercraft operator may control the throttle device and the changeover mechanism without being positioned proximate to the engine. For example, the control unit has a pair of levers pivotally or slidably mounted with respect to a body of the control unit. When one of the levers (e.g., the engine output control lever) is operated by the operator, the output control device is controlled. For example, in an engine having a throttle valve in an air induction system, the position of the throttle valve is changed to control the air flow and thus to control the engine output. When the other lever (e.g., a shifting control lever) is operated by the operator, the coupling of the propeller to the engine via the transmission is changed via the shifting mechanism to select the rotation direction of the propeller (e.g., forward or reverse) or to select non-rotation of the propeller (e.g., neutral). [0008]
  • Generally, in the watercraft industry, a hull of a watercraft and an outboard drive are produced separately and are combined (i.e., assembled together) by a boat builder during a final production stage of the watercraft or during a earlier stage close to the final production stage. The customer of the watercraft advantageously selects a type of outboard drive and any components, parts or accessories from those which are available on the market. The customer may also order specific components or parts from suppliers. Thus, many combinations of components may be used to rig a watercraft. [0009]
  • After a watercraft is assembled with the selected outboard drive and other components, it is desirable to check whether the outboard drive, components, parts and accessories work together properly. For example, the manufacturer wants to verify that engine output control lever and the shifting control lever in the control unit operate normally and that the engine output control device and the shifting mechanism within the outboard drive properly respond to control movements. Such basic operations affect the fundamental performance of the watercraft (e.g., the maneuverability and the ease of operating a watercraft). In addition, the manufacturer generally wants to assure that the output of the engine (e.g., the engine speed) and the operational mode of the propeller (e.g., forward, neutral and reverse) are properly indicated at respective indicators that are typically located in the cockpit of the watercraft where they can be monitored by the operator. [0010]
  • Conventionally, an inspection of the assembled watercraft with the attached outboard drive and other components is a manual operation that relies on the skills of a human inspector to apply the tests and to observe the responses of the outboard drive and other components (e.g., verifying that the outboard drive responds appropriately to the control devices and that the indicators properly show the status of the outboard drive and other components). Preferably, the inspection tests of the operability of the watercraft and the outboard drive should be done under typical operational conditions (e.g., with the watercraft floating on a body of water). Because of the reliance on human labor to perform the tests and to evaluate the results, such inspections are very costly, time consuming and inefficient, and the results of the inspections may be inaccurate. [0011]
  • SUMMARY OF THE INVENTION
  • In view of the foregoing, a need exists for an improved inspection system for a watercraft so that operability of a watercraft and an attached outboard drive can be efficiently and accurately checked at a final production stage of the watercraft or at an earlier stage close to the final production stage. [0012]
  • One aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive. A control device controls the outboard drive. The inspection system comprises a first subsystem that provides a control device with a command signal to start an inspection test of the control device. A second subsystem receives a response signal output by the control device. A third subsystem determines whether the response signal from the control device is consistent with a specified signal corresponding to a response generated by a properly operating control device. [0013]
  • Another aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive. The outboard drive includes an engine and a propulsion device powered by the engine. The engine and the propulsion device are controlled by a control device. The control device receives a control signal from a control unit. The control device controls the engine and the propulsion device in response to the control signal. The inspection system comprises a first subsystem that provides the control device with a command signal to start an inspection test on the control device. A second subsystem requests the control device to output a response signal. A third subsystem determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device. [0014]
  • A further aspect of the present invention is an inspection system for a watercraft powered by an engine. A control device controls the engine. The inspection system comprises an inspection device that conducts an inspection test of the control device. The inspection device includes a program that comprises a first step that provides the control device with a command signal to start an inspection test on the control device. In a second step, the control device outputs a response signal. A third step determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device. [0015]
  • A further aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive. The outboard drive includes an engine and a propulsion device powered by the engine. An operating device provides a control device with a control signal to control the engine and the propulsion device. The inspection system comprises an inspection device that conducts an inspection test of the control device and the operating device. The inspection device includes a program that comprises a first step that provides the control device with a command signal to start an inspection test on the control device. In a second step, the control device outputs a first response signal. A third step determines whether the response signal is consistent with a first specified signal corresponding to a response generated by a properly operating control device. A fourth step provides the operating device with a command signal to start an inspection test on the operating device. In a fifth step, the operating device outputs a second response signal. A sixth step determines whether the second response signal is consistent with a second specified signal corresponding to a response generated by a properly functioning operating device. [0016]
  • A further aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive. The outboard drive includes an engine and a propulsion device powered by the engine. An operating device provides a control device with a control signal to control the engine and the propulsion device. The inspection system comprises an inspection device that conducts an inspection of the operating device. The inspection device includes a program that comprises a first step that provides the operating device with a command signal to start an inspection of the operating device. In a second step, the operating device outputs a response signal. A third step determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly functioning operating device. [0017]
  • A further aspect of the present invention is an inspection system for a watercraft propelled by an outboard drive. Distinctive part identification codes are assigned to a plurality of components related to the watercraft and the outboard drive. The components are capable of sending readable signals corresponding to the part codes. The inspection system comprises a first subsystem that holds a component table corresponding to the part codes. A second subsystem requests the components to send respective signals to the inspection system. A third subsystem compares the signals sent by the components with the component table. [0018]
  • A further aspect of the present invention is an inspection method for a watercraft propelled by an outboard drive. In accordance with the method, a control device of the outboard drive is provided with a command signal to start an inspection test on the control device. The control device outputs a response signal. The method determines whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device. [0019]
  • A further aspect of the present invention is an inspection method for a watercraft propelled by an outboard drive. The outboard drive includes an engine and a propulsion device powered by the engine. An operating device provides a control device with a control signal to control the engine and the propulsion device. The method provides the control device with a command signal to start an inspection test on the control device. The control device outputs a first response signal. The method determines whether the first response signal is consistent with a first specified signal corresponding to a response generated by a properly operating control device. The method provides the operating device with a command signal to start an inspection test on the operating device. The operating device outputs a second response signal. The method determines whether the second response signal is consistent with a second specified signal corresponding to a response generated by a properly functioning operating device. [0020]
  • In accordance with a still further aspect of the present invention, an inspection method for a watercraft propelled by an outboard drive is provided. The outboard drive includes an engine and a propulsion device powered by the engine. An operating device provides a control device with a control signal to control the engine and the propulsion device. The method comprises providing the operating device with a command signal to start an inspection of the operating device, requesting the operating device to output a response signal, and determining whether the response signal is consistent with a specified signal corresponding to a response generated by a properly operating control device. [0021]
  • A further aspect of the present invention is an inspection method for a watercraft propelled by an outboard drive. Distinctive part identification codes are assigned to a plurality of components related to the watercraft and the outboard drive. The components are capable of sending readable signals corresponding to the part codes. The method includes a component table having entries corresponding to the part codes. The components send respective signals to an inspection system, which compares the signals sent by the components with the entries in the component table.[0022]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The foregoing features and other features, aspects and advantages of the present invention will now be described with reference to the drawings of several preferred embodiments, which are intended to illustrate and not to limit the invention. The drawings comprise eight figures in which: [0023]
  • FIG. 1 illustrates a schematic representation of a side elevational view of a watercraft (in phantom) propelled by an outboard motor (in phantom) and provided with an inspection system illustrated as a block diagram and configured in accordance with certain features, aspects and advantages of the present invention; [0024]
  • FIG. 2 illustrates a block diagram of an embodiment of the inspection system of FIG. 1; [0025]
  • FIG. 3 illustrates a flow chart of an embodiment of the operation of the inspection system of FIGS. 1 and 2, the flow chart including one control routine and two inspection routines; [0026]
  • FIG. 4 illustrates a block diagram of an alternative embodiment of the inspection system of FIG. 1; [0027]
  • FIG. 5 illustrates a block diagram of a further alternative embodiment of the inspection system of FIG. 1; [0028]
  • FIG. 6 illustrates a flow chart of an embodiment of an operation of an inspection routine for another type of inspection using the inspection system of either FIG. 1, FIG. 4 or FIG. 5; [0029]
  • FIG. 7 illustrates a diagrammatic view of an exemplary network that includes terminal units of dealers and terminal units of boat builders and that is suitable for with the embodiment of the inspection routine of FIG. 6; and [0030]
  • FIG. 8 illustrates a flow chart that shows the creation of a component table and that shows the use of the component table with the network of FIG. 7.[0031]
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION
  • As schematically illustrated in phantom in FIG. 1, a [0032] watercraft 30 comprises a hull 32. A cockpit 34 is defined in a relatively forward area of the hull 32. The illustrated watercraft 30 represents a pleasure boat or a fishing boat, and may also represent other small to mediumsized watercraft.
  • The [0033] watercraft 30 employs an outboard drive (e.g., an outboard motor) 36 (also shown in phantom) that is mounted on a transom of the hull 32 to propel the watercraft 30. The outboard motor 36 incorporates an internal combustion engine 38 mounted at the top of the outboard motor structure and includes a propulsion device (not shown) such as, for example, a propeller or other thrust generating device that is disposed in a submerged position when the watercraft 30 is floating on a body of water. When the engine 38 is operated, power is provided to the propeller or other thrust generating device to cause the watercraft 30 to move over the surface of the water.
  • As shown in the block diagrams of FIGS. 1 and 2, the [0034] watercraft 30 and the outboard motor 36 together employ an inspection system 42 to check or inspect the watercraft 30 in combination with the outboard motor 36. The inspection system 42 has a particular utility in the context of a combination of a pleasure boat or a fishing boat with an outboard motor and is described in the context of the combination. However, one skilled in the art will understand that the inspection system 42 can also be used with other types of watercrafts and outboard drives wherein at least one outboard drive is separately produced and then combined with the associated watercraft. Other examples will become apparent to those of ordinary skill in the art.
  • The [0035] engine 38 comprises an air induction system that delivers air to one or more combustion chambers of the engine. The engine 38 additionally comprises a charge forming system such as a fuel injection system or a carburetor system in association with the air induction system to form air/fuel charges in the combustion chambers. When the air/fuel charges are ignited in the combustion chambers, power is generated. In the illustrated system, the combustion causes reciprocal movement of pistons in the combustion chambers. The reciprocal movement is translated to rotational movement of a crankshaft. The crankshaft rotation is coupled via gears and shafts or other linkages to a the propeller or other thrust generating device. An exhaust system (not shown) routes exhaust byproducts from the combustion chambers to the external environment.
  • In the illustrated embodiment, the air induction system incorporates a throttle valve assembly comprising one or more throttle valves (not shown) to regulate or measure a quantity of air provided to the combustion chambers during each induction cycle. Each throttle valve can be a butterfly type valve and can be disposed within an intake passage for pivotal movement therein. The throttle valve has an operating state or characteristic corresponding to its position relative to the intake passage or the plenum chamber. When the state (e.g., position) of the throttle valve is changed, a degree of opening of an airflow path of the intake passage changes, and the quantity of air allowed to pass through the passage or plenum chamber is regulated. In the illustrated embodiment, the regulation of the quantity of air regulates the output (e.g., the speed) of the [0036] engine 38. The throttle valve assembly thus forms an adjustment mechanism that changes the engine speed in this arrangement. Normally and unless the environmental circumstances changes, when the degree to which the throttle valve is opened increases, the rate of airflow increases and the engine speed increases. A slidably movable throttle valve can replace the butterfly type throttle valve. One skilled in the art will also appreciate that the engine control system 42 described herein can also be used with adjustment mechanisms other than throttle valves. For example, the engine control system 42 can be used with adjustment mechanisms that change operating states to regulate fuel flow (e.g., vary fuel injection timing, duration, amount, fuel pressure, etc.), with adjustment mechanisms that change operating states to regulate ignition timing, and with adjustment mechanisms that change operating states to regulate cylinder valve movement (e.g., vary intake or exhaust valve timing, duration and/or lift).
  • The throttle device preferably is provided with a [0037] throttle actuator 46 such as, for example, an electric motor. The electric motor preferably is coupled with a throttle valve shaft or a shaft related to the throttle valve. The electric motor rotates in response to a control signal to actuate the throttle device.
  • The output of the [0038] engine 38 is transferred to the propeller or other propulsion device through a transmission disposed in a lower housing of the outboard motor 36. The transmission has a transmission shifting mechanism that controls the coupling of the propeller to the engine (e.g., controls the mode of operation of the propeller). In particular, the shifting mechanism can be moved to a forward position to couple the propeller to the engine in a first mode of operation, which causes the propeller to rotate in a first direction to propel the watercraft in a forward direction. The shifting mechanism can be moved to a reverse position to couple the propeller to the engine in a second mode of operation, which causes the propeller to rotate in a second direction opposite the first direction to propel the watercraft backward. The shifting mechanism can be operated to a neutral position to decouple the propeller from the engine so that the propeller is in a third mode of operation in which the propeller does not rotate in response to the engine and thus does apply thrust to the watercraft. In the following description, the term “shift position” refers to the mode of operation of the propeller (e.g., forward, neutral or reverse) or refers to the position of the shifting mechanism that corresponds to the mode of operation of the propeller.
  • The changeover mechanism preferably is provided with a [0039] shift actuator 48 such as, for example, an electric motor or a solenoid coupled with a shift rod or other members of the changeover mechanism. The motor or solenoid moves in response to a control signal to actuate the changeover mechanism.
  • The [0040] outboard motor 36 incorporates a control device 52 that controls the throttle actuator 46 and the shift actuator 48. The control device 52 preferably comprises a microprocessor or central processing unit (CPU), a memory or other data storage device, and an interface that couples the memory with the CPU.
  • The [0041] watercraft 30 includes a control unit or other operating device 56 that is preferably disposed in the cockpit 34 at a remote location from the outboard motor 36 so that the operator does not have to be close to the outboard motor 36 when operating the watercraft 30. The control unit 54 and the control device 52 are preferably coupled to each other via a local area net work (LAN) 58 and an electrical cable 60. In preferred embodiments, the LAN 58 is advantageously positioned on the bottom portion of the hull 32 along a keel that extends from the bow to the stern of the hull 32.
  • The [0042] control unit 56 preferably includes a pair of levers (not shown) that are pivotally or slidably mounted onto a body of the control unit 56. One of the levers is a throttle lever related to a throttle position setter 62, and the other lever is a shift lever related to a shift position setter 64. The throttle and shift levers are positioned adjacent to each other such that the operator can operate both of the levers with one hand.
  • When the throttle lever is operated, the [0043] throttle position setter 62 generates an initial throttle position control signal. When the shift lever is operated, the shift position setter 64 generates an initial shift position control signal. For example, in the preferred embodiment described herein, an amount of the physical movement of either the throttle lever or the shift lever, i.e., a change in an angular position or a slide position from a respective original position, is converted to a signal that has a voltage or other electrical value that represents an amount of movement or a position of the respective lever.
  • The signals generated by the [0044] control unit 56 are communicated to the control device 52 via the LAN 58 and the electrical cable 60. In alternative embodiments, the control device 52 can receive the initial control signals and send the initial control signals to the throttle actuator 46 and the shift actuator 48 without changing the signals. However, in the preferred embodiment illustrated herein, the control device 52 changes the initial control signals in accordance with environmental conditions into modified control signals and then controls the throttle actuator 46 and the shift actuator 48 using the modified control signals. In order to change the initial control signals into the modified control signals, the CPU of the control device 52 communicates with the memory through the interface. The memory preferably stores a control map that contains control amounts versus engine loads and throttle positions. The CPU selects uses the engine load and the throttle position to select one of the control amounts most suitable to the engine load and the throttle position under the circumstances.
  • Preferably, the [0045] watercraft 30 and the outboard motor 36 include a throttle position sensor 68, a shift position sensor 70 and an engine speed sensor 72 that are positioned at proper locations to send a throttle position signal, a shift position signal (e.g., a propeller mode of operation signal) and an engine speed signal, respectively, to the CPU of the control device 52. Each signal has a characteristic voltage or other electrical value that represents the respective parameter sensed by the respective sensor.
  • The [0046] throttle position sensor 68 detects an actual position or opening degree of the throttle valves (or the corresponding parameter of an alternative engine control device). In the illustrated embodiment, the throttle position sensor 68 is preferably disposed on a valve shaft or on a shaft connected to the valve shaft.
  • The [0047] shift position sensor 70 detects an actual position of the transmission shifting mechanism. That is, the shift position sensor 70 senses whether the propeller is coupled to the engine 38 for the forward mode of operation, coupled to the engine 38 for the reverse mode of operation, or decoupled from the engine 38 for the neutral mode of operation. For example, the shift position sensor 70 can advantageously be positioned adjacent to the shift rod that controls the mode of operation (e.g., the shift position) of the propeller.
  • In the illustrated preferred embodiment, the [0048] engine speed sensor 72 preferably comprises a crankshaft angle position sensor that is positioned proximate a crankshaft of the engine 38. The angle position sensor measures a crankshaft angle versus time and outputs a crankshaft rotational speed signal or engine speed signal.
  • The CPU of the [0049] control device 52 receives the throttle position signal and the engine speed signal and uses the two signals to determine the engine load. The CPU uses the engine load to make decisions for controlling the outboard motor 36 and particularly for controlling the engine 38.
  • An exemplary control system is disclosed in, for example, in a co-pending U.S. application, titled Engine Control System for Watercraft, and identified as Attorney Docket No. FS.20063US0A. The entire contents of the co-pending application are expressly incorporated by reference herein. [0050]
  • In the illustrated embodiment, the [0051] watercraft 30 and outboard motor 36 include a battery voltage sensor 76 and other sensors 78. For example, the other sensors 78 advantageously include a lubricant oil amount sensor and a fuel amount sensor. The battery voltage sensor 76 and the other sensors 78 generate output signals that are sent to the control device 52 via the LAN 58 and the electrical cable 60. The CPU in the control device 52 receives the signals and uses the signals to in making decisions for controlling of the outboard motor 36.
  • In the illustrated embodiment, the [0052] watercraft 30 includes a digital or analog indicator (or meter) 82, which is positioned in the cockpit 34 to indicate the throttle position, the shift position, the engine speed, the battery voltage and other necessary information. The indicator 82 is coupled to the control device 52 via the LAN 58 and the electric cable 60. Preferably, the indicator 82 is positioned so that the indicator can be easily monitored by the operator while the operator is controlling the watercraft 30 and the outboard motor 36. By monitoring the indicator 82, the operator can recognize the operating conditions of the outboard motor 36. In particularly preferred embodiments, the output signals of the sensors 76, 78 also are sent to the indicator 82 through the LAN 58 to be used for indicating normal or abnormal conditions of the associated devices or units. Otherwise, the signals can be sent to a sounder such as, for example, a buzzer to warn the abnormal conditions. One skilled in the art will recognize that the indicator 82 may be implemented in multiple ways, such as, for example, multiple meters or other indicators so that each position signal and other signals are always indicated, one or more meters or other indicators that are switched between signals, or a indicator panel that shows multiple signal indications on the same panel.
  • The [0053] watercraft 30 is provided with other mechanical and electric cables and conduits to communicate with the outboard motor 36. Those cables and conduits are not shown in FIGS. 1 and 2. For example, the mechanical cables can include a steering cable and a transmission control cable. The electric cables can include a battery cable. The conduits can include a fuel delivery conduit. These cables and conduits are well known to those skilled in the art and are not described in detail herein.
  • The [0054] LAN 58 advantageously includes a connector 86 that provides communication access to the LAN 58. A terminal device or inspection device 88 such as, for example, a personal computer, can be connected to the LAN 58 through the connector 86. Although the illustration in FIG. 1 schematically shows the connector 86 located away from the cockpit 34, in preferred embodiments, the connector 86 is located in the cockpit 34 so that a person conducting inspection tests (e.g., an inspector) can monitor the indicator 82 while operating the terminal device 88. As shown in FIG. 2, the terminal device 88 preferably comprises a notebook computer that has a keyboard 90 and an indicator panel or indicating unit 92. The terminal device 88 can advantageously be connected to a printer or other external indicating unit by wire, by radio communication, by infrared signals or by other known communications systems.
  • As discussed above, the [0055] control device 52, the control unit 56, the terminal device 88, the sensors 76, 78, and the indicator 82 are coupled with each other via the LAN 58. The devices can advantageously communicate with each other using conventional protocols. Thus, the inspection system 42 can be easily configured and set up to work with conventional components that are available on the market.
  • An exemplary preferred system (e.g., procedure) for inspection of the [0056] watercraft 30 with the outboard motor 36 is illustrated in FIG. 3 and is described below. The procedure is implemented as a program stored in the terminal device 88. The program implements a set of inspection procedures that determine whether the control device 52 and the control unit 56 are working and communicating properly. Preferably, the program is previously installed in the terminal device 88. In one embodiment, the control device 52 is commanded to shift to an inspection mode first and then the control unit 56 is commanded to shift to an inspection mode. The order in which the two devices shift to their respective inspection modes can be changed. In certain circumstances, the inspection mode of the control device 52 or the inspection mode of the control unit 56 can be omitted so that only one of the two devices is in the respective inspection mode.
  • As illustrated in FIG. 3, the inspection procedure comprises a first routine or [0057] subsystem 100, a second routine or subsystem 102 and a third routine or subsystem 104. The first routine 100 corresponds to a control routine conducted by the terminal device 88. The second routine 102 and the third routine 104 respectively relate to inspection routines conducted by the control device 52 and the control unit 56. The solid arrows between the blocks in FIG. 3 indicate transfers from one step to another step in the same routine. The phantom arrows between the blocks in FIG. 3 indicate cues generated by one routine that start a step in another routine.
  • When conducting the inspection procedure illustrated in FIG. 3, the inspector turns on the [0058] terminal device 88 and also turns on a main switch in the watercraft 30 connected to the control device 52 and the control unit 56. Of course, the control device 52 and the control unit 56 can be turned on in a different manner. The engine 38 does not need to be operating in the illustrated inspection procedure.
  • The control routine starts and proceeds to a step S[0059] 30 to conduct the inspection of the control device 52 with the inspection routine 102. In particular, at the step S30, the terminal device 88 provides the control device 52 with a command signal (e.g., a start signal) that indicates the start of the inspection routine on the control device 52. The control routine then proceeds to the step S31. The inspection routine 102 is initialized and then proceeds to a step S50 where the control device 52 waits for receipt of the start signal. The control device 52 enters the inspection mode in response to the start signal, and the inspection routine 102 proceeds to a step S51.
  • At the step S[0060] 31 of the control routine 100, the terminal device 88 sends specified signals to the control device 52. The specified signals command (e.g., request) the control device 52 to output response signals. The specified signals can be generated together or generated sequentially (i.e., one by one). The control routine 100 then proceeds to a step S32. In the illustrated program, exemplary specified signals include a signal indicative of a simulated engine speed and a signal indicative of a simulated battery voltage. The exemplary specified signals are provided as inputs to the control routine 100 by the inspector via the keyboard of the terminal device 88.
  • At the step S[0061] 51, the control device 52 outputs a signal indicative of the engine speed and the battery sensor signal to the terminal device 88 as the response signals in accordance with the instructions from the terminal device 88.
  • The illustrated [0062] control device 52 usually does not monitor the battery voltage from the battery voltage sensor 76 or monitor other outputs from the other sensors 78. However, the control device 52 can generate a representation of at least the battery voltage sensor 76 in the particular inspection mode. The control device 52 sends the representation as a response signal of the sensor 76. Alternatively, the battery voltage sensor 76 and the other sensors 78 can include an inspection mode in which the sensors 76, 78 generate response signals.
  • In the illustrated program, the [0063] control device 52 also outputs the response signals to the indicator 82 at the step S51. The indicator 82 thus indicates the simulated engine speed and the simulated battery voltage corresponding to the response signals. The inspector thus can recognize whether the indicator 82 works properly. For example, if the respective indication of engine speed or battery voltage on the indicator 82 differs from the specified engine speed or from the specified battery voltage but the terminal device 88 determines the control device 52 is working properly, then the inspector can determine that the indicator 82 is not working properly.
  • After completing the step S[0064] 51, the routine 102 proceeds to the step S52 and closes the inspection mode of the control device 52.
  • At the step S[0065] 32, the terminal device 88 compares the response signals from the control device 52 with the specified signals (e.g., the signals expected to be generated by the control device 52) and determines whether the response signals are consistent with the original signals.
  • The [0066] control routine 100 then proceeds to a step S33 to activate the inspection routine 104 to conduct the inspection on the control unit 56. At the step S33, the terminal device 88 provides the control unit 56 with a command signal (e.g., a start signal) that indicates the start of the inspection of the control unit 56. The control routine 100 then proceeds to a step S34. The inspection routine 104 is initialized and then proceeds to a step S70 where the control unit 56 waits for receipt of the start signal. The control unit 56 enters the inspection mode in response to the start signal, and the inspection routine 104 proceeds to a step S71.
  • At the step S[0067] 34, the terminal device 88 sends specified signals to the control unit 56 that command or request the control unit 56 to output response signals. The specified signals can be generated together or can be generated sequentially (i.e., one by one). The control routine 100 then proceeds to a step S35. In the illustrated program, exemplary specified signals advantageously include a simulated initial throttle position control signal and a simulated initial shift position control signal. The exemplary specified signals are provided as inputs to the control routine 100 by the inspector via the keyboard of the terminal device 88.
  • At the step S[0068] 71, the control unit 56 outputs the throttle position control signal and the shift position control signal as the response signals in accordance with the instruction by the terminal device 88. In the illustrated program, the control unit 56 also outputs the response signals to the control device 52 as the initial control signals at the step S71. The control device 52 actually controls the throttle actuator 46 and the shift actuator 48 in accordance with the signals from the control unit 56. Thus, the throttle device and the changeover mechanism are actuated. The throttle position sensor 68 and the shift position sensor 70 detect the throttle position and the shift position, respectively, and output the detected signals to the terminal device 88. At the step S71, the indicator 82 can additionally indicate the simulated throttle position and the simulated shift position to enable the inspector to double check the indicator 82. After completing the step S71, the inspection routine 104 proceeds to a step S72 and closes the inspection mode of the control unit 56.
  • At the step S[0069] 35, the terminal device 88 compares the response signals from the control unit 56 with the specified signals and determines whether the response signals are consistent with the specified signals. The control routine 100 then proceeds to a step S36.
  • At the step S[0070] 36, the terminal device 88 compares the throttle position and shift position signals which are actually detected with the specified signals and determines whether the actually detected signals are consistent with the specified signals. The control routine 100 then proceeds to a step S37.
  • At the step S[0071] 37, the indicator panel 92 of the terminal device 88 displays the determinations of the inspection routine generated at the step S32, the step S35 and the step S36. Simultaneously or alternatively, the terminal device 88 can advantageously instruct the printer to print out the determinations, instruct the external indicating unit to show the determinations, or instruct both the printer and the external indicating unit.
  • Alternatively, the determination at the step S[0072] 32 can be indicated or printed out immediately after the step S32 without waiting for the determinations generated at the step S35 and the step S36.
  • After completing the step S[0073] 37, the control routine 100 ends all the inspection routines.
  • By conducting the inspection program, the inspector can, for example, check whether the [0074] control device 52 works properly, whether the control unit 56 works properly, whether the indicator 82 works properly, whether the combination of the control device 52 in the outboard 36 and the control unit 56 in the watercraft 30 is an appropriate combination, and whether the LAN and the electric cables are properly coupled with each other. If the inspector finds something wrong or abnormal, the inspector can fix any wrong or abnormal portion or ask another person to do to perform any necessary corrective action.
  • As described above, the inspection of the watercraft with the outboard motor can be conducted automatically and without the watercraft being placed on a body of water and without the engine operating. Thus, the check of the watercraft is quite efficient and can be easily performed at the final production stage of the watercraft or at an earlier production stage close to the final production stage. [0075]
  • As an alternative to coupling the [0076] terminal device 88 to the LAN 58 via the connector 86, the terminal device 88 can be coupled to the LAN 58 via a radio interface 110 as illustrated in FIG. 4. Advantageously, the radio interface 110 can be selected from any interface that operates at radio frequencies. For example, an exemplary commercially available radio interface used in the illustrated alternative system is configured in accordance with the BluetoothTM wireless technology as defined in the Bluetooth Wireless Specification promulgated by Bluetooth SIG, Inc. Because the terminal device 88 is not mechanically connected to any other part of the inspection system 42 in this alternative, the inspector can position the terminal device 88 at any place or move the terminal device 88 as the inspection is being performed.
  • Various electronic devices and units having a microprocessor (or CPU) and a memory (or storage) can be used as the [0077] terminal device 88 other than the laptop type computer. For example, FIG. 5 illustrates a further alternative using a navigation unit 116 as an inspection device. The navigation unit 116 advantageously includes radio communications equipment, a fish-finder, a global positioning system (GPS) unit, and other components. As such, the navigation unit 116 includes hardware such as a microprocessor and a memory. The foregoing inspection program or other inspection programs provided in accordance with the present invention can be installed in the memory of the navigation unit 116 to conduct the inspection of the watercraft with the outboard motor. The inspection programs can be uninstalled after the inspection has been finished. Otherwise, the programs can be held in those devices or units for maintenance, i.e., for re-conducting the inspection later.
  • FIG. 6 illustrates an [0078] inspection routine 130 that may be performed using the inspection system 42 shown in either FIG. 1, FIG. 2, FIG. 4 or FIG. 5 to conduct a second inspection of the combination of the watercraft 30 and the outboard motor 36.
  • In the second inspection, a lack of components or a double installation of a component can be checked. In order to conduct the second inspection, all the components related to the [0079] watercraft 30 and the outboard motor 36 are assigned with distinctive part identification codes. The part codes that can be used for the inspection include magnetized codes, bar codes, other magnetic or optical codes, electronically readable codes and other physically recognizable codes. The terminal device 88 previously stores a component table that includes the same part codes as those assigned to the respective components. The component table comprises a list of all components of the watercraft 30 and the outboard motor 36 as set forth in the specifications for the watercraft 30 and the outboard motor 36.
  • The inspection routine [0080] 130 starts and proceeds to a step S90. The terminal device 88 utilizes the LAN 58 to provide all the components with a check signal to request the components to send respective response signals to the terminal device 88. In this second inspection, the response signals are the readable part codes for each component. The routine 130 then proceeds to a step S91 wherein the terminal device 88 receives the response signals from the components. The routine 130 then proceeds to a step S92.
  • At the step S[0081] 92, the terminal device 88 compares the received response signals with the part codes stored in the component table. The routine 130 then proceeds to a step S93 to determine whether all the received response signals are consistent with the part codes stored in the component table. If, at the step S93, the terminal device 88 determines that all the response signals are consistent with the component table, the routine 130 proceeds to a step S94. Otherwise, the routine 130 proceeds to a step S95.
  • At the step S[0082] 94, the terminal device 88 outputs a inspection completion form, which is previously stored in the terminal device 88. The inspection completion form can be printed out or sent to another device connected to the terminal device 88 by wire or by a radio communication system so that a person other than the inspector can review or use the form later or at a remote location.
  • At the step S[0083] 95, the terminal device 88 indicates that one or more components are abnormal (e.g., a wrong part is installed or a part has been incorrectly installed multiple times). Alternatively or in addition, the terminal 88 outputs a signal that indicates an abnormal condition of the components to another device. The indication of an abnormal condition can also be sent to a printer to be printed out. The inspector can fix the abnormal condition or the inspector can ask someone else to fix the abnormal condition.
  • After completing the step S[0084] 94 or after completing the step S95, the inspection routine 130 ends.
  • All the components of the watercraft and the outboard motor do not necessarily have the readable part identification codes. For example, only important components selected in accordance with a certain criterion may have the part codes in particular embodiments. [0085]
  • FIGS. 7 and 8 illustrate a suitable way to create the component table in the [0086] terminal device 88 and to store the component table in the terminal device 88.
  • FIG. 7 illustrates an [0087] exemplary network 140 that interconnects the dealer terminal units D1 and D2 and the boat builder terminal units B1 B2. Although only two terminal units for dealers and two terminal units for boat builders are shown, it should be understood that additional terminal units for dealers and additional terminal units for boat builders can advantageously be coupled to the network 140. The network 140 can advantageously be the Internet or another public or private network. The Internet is advantageously used to provide worldwide interconnections between dealers and boat builders.
  • A customer associated with one of the dealers selects necessary and desired components at the terminal unit D[0088] 1, for example, and sends information about the components to one of the boat builders associated with the dealer through the network 140. The boat builder obtains the information at the terminal unit B1, for example, and rigs the watercraft purchased by the customer with the selected components. The boat builder stores a specific component table in a terminal device (or check-conducting device) which will be used for the second inspection. The component table lists the components of the completed watercraft as assembled by the boat builder.
  • A flowchart in FIG. 8 illustrates an [0089] exemplary routine 150 for making the component table and for handling the component table through the network 140. In the following description, the dealer's terminal unit D1 and the boat builder's terminal unit B1 are terminal units that are used to perform the steps in the flow chart 50.
  • The routine [0090] 150 starts and proceeds to a step S120. At the step S120, the customer for a specific watercraft selects the necessary components, the desired components or combinations of necessary components and desired components from existing component lists that contain all components that can be specifically used for the specific watercraft and from all-purpose component lists that contain components that can be used for all watercraft or for a watercraft group that includes the specific watercraft. The selection is made at the terminal unit D1. The component lists are stored in the terminal unit D1 or in the terminal unit B1. Alternatively, the network 140 can include another unit (e.g., a server) that stores the component lists, and the customer can access the component lists via the network 140. All the listed components have previously been assigned with the distinctive part identification codes discussed above.
  • The routine [0091] 150 then proceeds to a step S121 wherein the terminal unit D1 creates a temporary component table based upon the selections of the customer. The temporary component table is suspended (e.g., stored but not yet transmitted) in the terminal unit D1 until the customer and the dealer complete a purchase agreement (e.g., a purchase contract).
  • The routine [0092] 150 then proceeds to a step S122 wherein the customer and the dealer endeavor to complete a purchase agreement. If the purchase agreement is completed, the routine 150 proceeds to a step S123. On the other hand, if the purchase agreement is not completed, the routine 150 does not proceed to the step S123, and the routine ends.
  • At the step S[0093] 123, the terminal unit D1 promotes the temporary component table to a formal component table and releases (e.g., communicates) the formal component table to the terminal unit B1 of the boat builder via the network 140 to request the boat builder to initiate the assembly of the watercraft, the outboard motor and the selected components by the boat builder.
  • The routine [0094] 150 then proceeds to a step S124 wherein the boat builder orders the components from internal divisions or sections or from suppliers based upon the information in the formal component table. When the watercraft, the outboard motor and the selected components are available, the boat builder rigs (i.e., assembles) the watercraft with the outboard motor and the components.
  • The routine [0095] 150 proceeds to a step S125 wherein the boat builder transfers the information in the component table to the terminal device that will be used to check the completed watercraft in accordance with the second inspection described above. The second inspection is conducted in accordance with the inspection program 130 described above in connection with FIG. 6. After completing the step S125, the routine 150 ends.
  • By using the illustrated [0096] network system 140 and the routine 150, the component table can be prepared before the second inspection is conducted. The component table accurately includes the components that the customer has selected because the component table is created by the boat builder to completely reflect the selected components via the distinctive part identification codes corresponding to the components. Furthermore, since the boat builder orders components using the component table provided by the dealer and therefore does not need to create the table, the boat builder is less likely to experience errors in ordering components for the assembled watercraft.
  • The foregoing description describes preferred embodiments of inspection systems and methods having certain features, aspects and advantages in accordance with the present invention. Various changes and modifications may be made to the above-described inspection systems and methods without departing from the spirit and scope of the invention, as defined by the following claims. [0097]

Claims (40)

What is claimed is:
1. An inspection system for a watercraft propelled by an outboard drive and having a control device that controls the outboard drive, the inspection system comprising a first subsystem that provides the control device with a command signal to start an inspection of the control device, a second subsystem that requests the control device to output a response signal, and a third subsystem that determines whether the response signal output by the control device is consistent with a specified signal.
2. The inspection system as set forth in claim 1, further comprising an fourth subsystem that indicates a determination by the third subsystem.
3. The inspection system as set forth in claim 2, further comprising an indicator configured to indicate a response from the control device based upon the response signal.
4. The inspection system as set forth in claim 3, wherein the indicator is positioned proximate a cockpit of the watercraft.
5. The inspection system as set forth in claim 1, further comprising an indicator configured to indicate a response from the control device based upon the response signal.
6. The inspection system as set forth in claim 1, further comprising an inspection device, wherein the first subsystem, the second subsystem and the third subsystem comprise steps of a program installed in the inspection device.
7. The inspection system as set forth in claim 6, further comprising a fourth subsystem that indicates a determination by the third subsystem, wherein the fourth subsystem is an indicating unit defined at the inspection device.
8. The inspection system as set forth in claim 1, wherein the second subsystem provides the control device with the specified signal.
9. The inspection system as set forth in claim 1, wherein the outboard drive comprises an engine that provides power, and wherein the control device controls the engine.
10. The inspection system as set forth in claim 9, wherein the specified signal includes a signal corresponding to an engine speed of the engine.
11. The inspection system as set forth in claim 1, wherein the outboard drive comprises an engine and a propulsion device powered by the engine, and wherein the control device controls the engine and the propulsion device.
12. The inspection system as set forth in claim 11, wherein an operating device provides the control device with a control signal, and wherein the control device controls the engine and the propulsion device based upon the control signal.
13. The inspection system as set forth in claim 12, further comprising a fourth subsystem that provides the operating device with a second command signal to start an inspection of the operating device, further comprising a fifth subsystem that requests the operating device to output a second response signal, and further comprising a sixth subsystem that determines whether the second response signal is consistent with a second specified signal.
14. The inspection system as set forth in claim 13, wherein the control device controls the engine and the propulsion device based upon the second response signal and provides the inspection system with an operating signal indicative of an operation of the engine and the propulsion device.
15. The inspection system as set forth in claim 14, further comprising a seventh subsystem that determines whether the operating signal is consistent with the second specified signal.
16. An inspection system for a watercraft propelled by an outboard drive, the outboard drive including an engine and a propulsion device powered by the engine, the engine and the propulsion device being controlled by a control device, the control device receiving a control signal from an operating device, the control device controlling the engine and the propulsion device in response to the control signal, the inspection system comprising a first subsystem that provides the operating device with a command signal to start an inspection of the operating device, a second subsystem that requests the operating device to output a response signal, and a third subsystem that determines whether the response signal is consistent with a specified signal.
17. The inspection system as set forth in claim 16, wherein the control device controls the engine and the propulsion unit based upon the response signal and provides the inspection system with an operating signal indicative of an operation of the engine and the propulsion unit.
18. The inspection system as set forth in claim 17, further comprising a fourth subsystem that determines whether the operating signal is consistent with the specified signal.
19. The inspection system as set forth in claim 16, wherein the engine includes a engine control device that regulates an output of the engine in accordance with a state of the engine control device, wherein the propulsion device includes a transmission shifting mechanism that shifts an operational mode of the propulsion device among a forward mode, a neutral mode and a reverse mode, and wherein the control signal indicates at least one of the state of the engine control device and the operational mode of the propulsion device.
20. An inspection system for a watercraft powered by an engine, the engine being controlled by a control device, the inspection system comprising an inspection device that conducts an inspection of the control device, the inspection device comprising a program comprising a first step of providing the control device with a command signal to start an inspection of the control device, a second step of requesting the control device to output a response signal, and a third step of determining whether the response signal is consistent with a specified signal.
21. The inspection system as set forth in claim 20, wherein the inspection device includes an indicating unit that indicates a determination by the third step.
22. The inspection system as set forth in claim 20, wherein the inspection device comprises an indicating unit configured to indicate a determination by the third step.
23. The inspection system as set forth in claim 20, wherein the inspection device communicates with the control device either by wire or by radio communication.
24. An inspection system for a watercraft propelled by an outboard drive, the outboard drive including an engine and a propulsion device powered by an engine, an operating device that provides a control device with a control signal to control the engine and the propulsion device, the inspection system comprising an inspection device that conducts an inspection of the control device and the operating device, the inspection device including a program comprising a first step of providing the control device with a command signal to start an inspection of the control device, a second step of requesting the control device to output a first response signal, a third step of determining whether the response signal is consistent with a first specified signal, a fourth step of providing the operating device with a command signal to start an inspection of the operating device, a fifth step of requesting the operating device to output a second response signal, and a sixth step of determining whether the second response signal is consistent with a second specified signal.
25. The inspection system as set forth in claim 24, wherein the control device controls the engine and the propulsion device based upon the second response signal and provides the inspection device with an operating signal indicative of an operation of the engine and the propulsion device.
26. The inspection system as set forth in claim 25, the program further comprising a seventh step of determining whether the operating signal is consistent with the second specified signal.
27. An inspection system for a watercraft propelled by an outboard drive, the outboard drive including an engine and a propulsion device powered by an engine, an operating device that provides a control device with a control signal to control the engine and the propulsion device, the inspection system comprising an inspection device that conducts an inspection of the operating device, the inspection device including a program comprising a first step of providing the operating device with a command signal to start an inspection of the operating device, a second step of requesting the operating device to output a response signal, and a third step of determining whether the response signal is consistent with a specified signal.
28. The inspection system as set forth in claim 27, wherein the control device controls the engine and the propulsion unit based upon the response signal and provides the inspection system with an operating signal indicative of an operation of the engine and the propulsion unit.
29. The inspection system as set forth in claim 28, wherein the program additionally comprises a fourth step of determining whether the operating signal is consistent with the specified signal.
30. An inspection system for a watercraft propelled by an outboard drive and having a plurality of components related to the watercraft and the outboard drive identified by distinctive codes, the components being capable of outputting readable signals corresponding to the codes, the inspection system comprising a first subsystem that includes a component table that stores information corresponding to the codes, a second subsystem that requests the components to output the readable signals to the inspection system, and a third subsystem that compares the signals output by the components with the information stored in the component table.
31. The inspection system as set forth in claim 30, further comprising a fourth subsystem that indicates a result of the comparison made by the third subsystem.
32. The inspection system as set forth in claim 31, further comprising an inspection device, wherein the first subsystem, the second subsystem and the third subsystem are steps of a program installed in the inspection device.
33. The inspection system as set forth in claim 32, further comprising a fourth subsystem that indicates a determination by the third subsystem, wherein the fourth subsystem is an indicating unit defined at the inspection device.
34. An inspection method for a watercraft propelled by an outboard drive, comprising providing a control device of the outboard drive with a command signal to start an inspection of the control device, requesting the control device to output a response signal, and determining whether the response signal is consistent with a specified signal.
35. The inspection method as set forth in claim 34, further comprising indicating a result of the determination for perception by an operator.
36. An inspection method for a watercraft propelled by an outboard drive, the outboard drive including an engine and a propulsion device powered by the engine, an operating device that provides a control signal, and a control device responsive to the control signal to control the engine and the propulsion device, the method comprising providing the control device with a command signal to start an inspection of the control device, requesting the control device to output a first response signal, determining whether the first response signal is consistent with a first specified signal, providing the operating device with a command signal to start an inspection of the operating device, requesting the operating device to output a second response signal, and determining whether the second response signal is consistent with a second specified signal.
37. The inspection method as set forth in claim 36, further comprising operating the engine and the propulsion device based upon the second response signal, and determining whether an operating signal indicative of an operation of the engine and the propulsion device is consistent with the second specified signal.
38. An inspection method for a watercraft propelled by an outboard drive, the outboard drive including an engine and a propulsion device powered by the engine, an operating device that provides a control signal, and a control device responsive to the control signal to control the engine and the propulsion device, the method comprising providing the operating device with a command signal to start an inspection of the operating device, requesting the operating device to output a response signal, and determining whether the response signal is consistent with a specified signal.
39. An inspection method for a watercraft propelled by an outboard drive and having a plurality of components related to the watercraft and the outboard drive, the plurality of components identifiable by distinctive codes, the components selectably outputting readable signals corresponding to the codes, the method comprising storing information corresponding to the codes in a component table, causing each of the components to output a respective readable signal to an inspection system, and comparing the signals sent by the components with the information in the component table.
40. The inspection method as set forth in claim 39, further comprising indicating a result of the comparison.
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Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040058594A1 (en) * 2002-09-19 2004-03-25 Honda Giken Kogyo Kabushiki Kaisha Outboard motor
US20050241425A1 (en) * 2004-04-12 2005-11-03 Takahiro Oguma Shift system for boat propulsion unit
US20050267654A1 (en) * 2001-09-25 2005-12-01 Takashi Okuyama Inspection system for watercraft
US20070232162A1 (en) * 2006-03-17 2007-10-04 Yamaha Marine Kabushiki Kaisha Remote control device, remote control device side ecu and watercraft
US20080020656A1 (en) * 2006-07-24 2008-01-24 Takashi Yamada Boat
US7443875B2 (en) 2004-06-28 2008-10-28 Yamaha Marine Kabushiki Kaisha Information communication system, device and method
US7674145B2 (en) 2006-03-28 2010-03-09 Yamaha Hatsudoki Kabushiki Kaisha Boat having prioritized controls
CN101992837A (en) * 2010-10-27 2011-03-30 天津大学 Risk early-warning method of marine propulsion shafting
US20110111778A1 (en) * 2008-07-18 2011-05-12 Lg Electronics Inc. Method and an apparatus for controlling messages between host and controller
WO2010008248A3 (en) * 2008-07-18 2011-05-26 Lg Electronics Inc. A method and an apparatus for controlling messages between host and controller.
US20200339235A1 (en) * 2019-04-26 2020-10-29 Yamaha Hatsudoki Kabushiki Kaisha Rigging equipment diagnostic device
CN113432878A (en) * 2021-06-28 2021-09-24 哈尔滨工程大学 Diesel-fuel-steam-electric series-parallel ship hybrid power test bed with monitoring control system and test method

Families Citing this family (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
NO320692B1 (en) * 2002-12-30 2006-01-16 Stiftelsen Det Norske Veritas Process and system for testing computer-based control and monitoring systems in a vessel via a communication channel
JP4907935B2 (en) 2005-09-20 2012-04-04 ヤマハ発動機株式会社 Ship
JP4726634B2 (en) 2006-01-16 2011-07-20 ヤマハ発動機株式会社 Ship
JP4901245B2 (en) 2006-03-14 2012-03-21 ヤマハ発動機株式会社 Ship propulsion device and ship
JP4836621B2 (en) 2006-03-20 2011-12-14 ヤマハ発動機株式会社 Remote control device and ship
JP4827596B2 (en) 2006-04-21 2011-11-30 ヤマハ発動機株式会社 Ship remote control device and ship
JP4919706B2 (en) 2006-06-05 2012-04-18 ヤマハ発動機株式会社 Ship
JP2008012964A (en) 2006-07-03 2008-01-24 Yamaha Marine Co Ltd Remote control device and marine vessel
US8996210B2 (en) * 2008-01-17 2015-03-31 Sea-Watch Technologies, Inc. Integrated vessel monitoring and control system
JP5081102B2 (en) * 2008-08-22 2012-11-21 ヤマハ発動機株式会社 Ship theft deterrent device and ship equipped with the same
WO2011079222A2 (en) 2009-12-23 2011-06-30 Boston Scientific Scimed, Inc. Less traumatic method of delivery of mesh-based devices into human body
WO2011153494A2 (en) 2010-06-03 2011-12-08 Polaris Industries Inc. Electronic throttle control
CN101963802B (en) * 2010-08-25 2012-08-15 江苏大学 Virtual measurement method in batch manufacture procedure and system therefor
JP2014080083A (en) * 2012-10-16 2014-05-08 Yamaha Motor Co Ltd Marine steering system
BR112017008825A2 (en) 2014-10-31 2018-03-27 Polaris Inc method and power steering system for a vehicle, methods for controlling a power steering system of a vehicle and for controlling a vehicle, throttle replacement method for a recreational vehicle, and, vehicle.
US9347848B1 (en) * 2016-02-11 2016-05-24 Innovative Measurement Methods, Inc. Marine probe with no moving parts for a marine tank
CA3043481C (en) 2016-11-18 2022-07-26 Polaris Industries Inc. Vehicle having adjustable suspension
US10406884B2 (en) 2017-06-09 2019-09-10 Polaris Industries Inc. Adjustable vehicle suspension system
KR102191137B1 (en) * 2020-05-04 2020-12-15 주식회사 원솔루션 Ship wireless communication equipment remote inspection system
MX2022015902A (en) 2020-07-17 2023-01-24 Polaris Inc Adjustable suspensions and vehicle operation for off-road recreational vehicles.

Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4497057A (en) * 1981-08-07 1985-01-29 Nippondenso Co., Ltd. Motor vehicle diagnostic monitoring system
US4796206A (en) * 1986-06-02 1989-01-03 International Business Machines Corporation Computer assisted vehicle service featuring signature analysis and artificial intelligence
US5245324A (en) * 1990-09-24 1993-09-14 Snap-On Tools Corporation Digital engine analyzer
US5325082A (en) * 1992-11-19 1994-06-28 Rodriguez Juan C Comprehensive vehicle information storage system
US5349644A (en) * 1992-06-30 1994-09-20 Electronic Innovators, Inc. Distributed intelligence engineering casualty and damage control management system using an AC power line carrier-current lan
US5852789A (en) * 1996-04-10 1998-12-22 Snap-On Technologies, Inc. Engine analyzer with pattern library linked to vehicle ID and display scope configuration
US6055468A (en) * 1995-08-07 2000-04-25 Products Research, Inc. Vehicle system analyzer and tutorial unit
US6067009A (en) * 1998-01-19 2000-05-23 Denso Corporation Diagnostic method and apparatus for vehicle having communication disabling function at engine starting
US6141608A (en) * 1997-10-28 2000-10-31 Snap-On Tools Company System for dynamic diagnosis of apparatus operating conditions
US20010049579A1 (en) * 2000-05-26 2001-12-06 Kenichi Fujino Diagnostic system for engine

Family Cites Families (136)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1843272A (en) 1929-03-08 1932-02-02 Outboard Motors Corp Control mechanism for outboard motors
US2204265A (en) 1938-10-22 1940-06-11 Anton A Wentzel Motor vehicle control
US2466282A (en) 1943-05-14 1949-04-05 Honeywell Regulator Co Electrical network motor control apparatus
US2740260A (en) 1949-05-14 1956-04-03 Bendix Aviat Corp Multi-engine control means
US3986363A (en) 1974-06-03 1976-10-19 Beaman Don L Engine synchronizer
JPS5784296A (en) 1980-11-13 1982-05-26 Sanshin Ind Co Ltd Propelling unit shifting apparatus on board
US4412422A (en) 1981-08-31 1983-11-01 General Electric Company Apparatus and method for controlling a multi-turbine installation
JPS58156494A (en) 1982-03-11 1983-09-17 Sanshin Ind Co Ltd Shift device of propulsive unit for ship
JPS58161693A (en) 1982-03-18 1983-09-26 Sanshin Ind Co Ltd Operating device of outboard motor
US4493662A (en) 1982-04-28 1985-01-15 Yamaha Hatsudoki Kabushiki Kaisha Shaft connecting device for boat propellers
JPS599315A (en) 1982-07-09 1984-01-18 Sanshin Ind Co Ltd Detent mechanism for clutch
US4622938A (en) 1983-10-13 1986-11-18 Outboard Marine Corporation Timing and throttle linkage
US4646696A (en) 1984-12-06 1987-03-03 Outboard Marine Corporation Programmed electronic advance for engines
US4810216A (en) 1985-01-14 1989-03-07 Sanshin Kogyo Kabushiki Kaisha Remote control system for marine engine
US4648497A (en) 1985-03-22 1987-03-10 Outboard Marine Corporation Single lever control
US5062516A (en) 1985-05-28 1991-11-05 Outboard Marine Corporation Single lever control
JPH0633074B2 (en) 1985-06-01 1994-05-02 三信工業株式会社 Warning device for marine propulsion
JP2610814B2 (en) 1985-08-09 1997-05-14 三信工業 株式会社 Ship propulsion unit control device
JPH0678969B2 (en) * 1985-12-25 1994-10-05 日本電装株式会社 Vehicle automatic inspection control device
JPH055117Y2 (en) 1986-02-21 1993-02-09
JPH0613855B2 (en) 1986-04-08 1994-02-23 三信工業株式会社 Warning device for marine propulsion
US4805396A (en) 1986-10-03 1989-02-21 Rockwell International Corporation Automatic fuel control and engine synchronizer system and apparatus
US4788955A (en) 1986-12-29 1988-12-06 Outboard Marine Corporation Apparatus for spark advance throttle control
US4858585A (en) 1987-02-09 1989-08-22 Outboard Marine Corporation Electronically assisted engine starting means
JPS63195094A (en) 1987-02-09 1988-08-12 Sanshin Ind Co Ltd Shift auxiliary equipment for ship propeller
US4755156A (en) 1987-03-03 1988-07-05 Outboard Marine Corporation Marine propulsion device with mechanical linkage for throttle and shift controls
US5136279A (en) 1987-03-14 1992-08-04 Sanshin Kogyo Kabushiki Kaisha Battery disconnection and abnormal output warning device for triggering engine speed reduction
DK156142C (en) 1987-05-12 1989-11-20 Man B & W Diesel Gmbh ENGINE SYSTEMS WITH MULTIPLE TURBOLED COMBUSTION ENGINES
US5065723A (en) 1987-06-24 1991-11-19 Outboard Marine Corporation Marine propulsion device with spark timing and fuel supply control mechanism
US4747381A (en) 1987-08-31 1988-05-31 Outboard Marine Corporation Marine propulsion device with spark timing and fuel supply control mechanism
JPS6480766A (en) 1987-09-24 1989-03-27 Sanshin Kogyo Kk Ignition control device for spark ignition type internal combustion engine
JP2902403B2 (en) 1987-10-16 1999-06-07 三信工業株式会社 Shifting device for marine drive unit
JPH01136897A (en) 1987-11-20 1989-05-30 Nippon Cable Syst Inc Controller of engine for boat
JPH01141255A (en) 1987-11-26 1989-06-02 Sanshin Ind Co Ltd Shifting device for vessel propulsion machine
JPH01145430A (en) 1987-12-02 1989-06-07 Sanshin Ind Co Ltd Shift auxiliary device
JPH01182196A (en) 1988-01-18 1989-07-20 Sanshin Ind Co Ltd Auxiliary shift device
US4836809A (en) 1988-03-11 1989-06-06 Twin Disc, Incorporated Control means for marine propulsion system
JP2683691B2 (en) 1988-04-11 1997-12-03 三信工業株式会社 Forward / reverse switching device for ship propulsion
DE3867483D1 (en) 1988-07-08 1992-02-13 Bosch Gmbh Robert MONITORING DEVICE FOR THE POSITION REGULATOR OF AN ELECTRONIC GAS PEDAL.
DE3924582C2 (en) 1988-07-25 1995-02-09 Nissan Motor Throttle valve control device for wheel slip suppression in motor vehicles
JP2759475B2 (en) 1989-02-17 1998-05-28 三信工業株式会社 Shift operation assist device for ship propulsion
US4964276A (en) 1989-04-12 1990-10-23 Sturdy Corporation Engine synchronizer
JPH079389B2 (en) * 1989-04-14 1995-02-01 富士重工業株式会社 Vehicle self-diagnosis device
JPH0378667A (en) * 1989-08-23 1991-04-03 Mitsubishi Electric Corp Fault diagnostic apparatus of car
JP2764439B2 (en) 1989-08-30 1998-06-11 三信工業株式会社 Forward / backward switching device for ship propulsion
JP2810714B2 (en) 1989-09-05 1998-10-15 三信工業株式会社 Shift assist device
US5006461A (en) * 1989-11-03 1991-04-09 Transgenic Sciences, Inc. TMB formulation for soluble and precipitable HRP-ELISA
US5004962A (en) 1989-12-28 1991-04-02 Arrow Marine, Inc. Automatic motor synchronizer
JP2977844B2 (en) 1990-01-26 1999-11-15 三信工業株式会社 Remote control device for marine propulsion
US5062403A (en) 1990-05-18 1991-11-05 Outboard Marine Corporation Internal combustion engine
JP3100971B2 (en) 1990-08-10 2000-10-23 三信工業株式会社 Remote control device for marine propulsion
JP3100973B2 (en) 1990-09-27 2000-10-23 三信工業株式会社 Remote control device for marine propulsion
US5103946A (en) 1990-11-06 1992-04-14 Team Mfg., Inc. Brake and accelerator controls for handicapped
JP3038606B2 (en) 1991-02-06 2000-05-08 ヤマハ発動機株式会社 Shifters for inboard and outboard motors
JP3065369B2 (en) 1991-03-06 2000-07-17 三信工業株式会社 Remote control device for ship propulsion
JP3019224B2 (en) 1991-06-10 2000-03-13 ヤマハ発動機株式会社 Shifting device for ship propulsion
US5127858A (en) 1991-07-16 1992-07-07 Twin Disc Incorporated Control means for marine engines and transmissions
JP3065414B2 (en) 1991-12-25 2000-07-17 三信工業株式会社 Remote control device for ship propulsion
JPH0650201A (en) 1992-04-30 1994-02-22 Nippondenso Co Ltd Driving device for throttle valve
JP2758535B2 (en) 1992-07-16 1998-05-28 株式会社日立製作所 Electronic throttle control
US5273016A (en) 1992-09-30 1993-12-28 Outboard Marine Corporation Throttle lever position sensor for two-stroke fuel injected engine
JPH06156382A (en) 1992-11-28 1994-06-03 Sanshin Ind Co Ltd Forward/reverse speed shifting device for vessel
JP3331400B2 (en) 1993-01-22 2002-10-07 三信工業株式会社 Forward / backward switching control device for marine propulsion
US6067008A (en) * 1993-05-25 2000-05-23 Intellectual Property Development Associates Of Connecticut, Inc. Methods and apparatus for inputting messages, including advertisements, to a vehicle
US5597334A (en) 1993-11-29 1997-01-28 Sanshin Kogyo Kabushiki Kaisha Outboard drive transmission system
US5556312A (en) 1993-11-29 1996-09-17 Sanshin Kogyo Kabushiki Kaisha Bearing arrangement for marine transmission
US5556313A (en) 1993-11-29 1996-09-17 Sanshin Kogyo Kabushiki Kaisha Outboard drive transmission
JP3470140B2 (en) 1993-11-29 2003-11-25 ヤマハマリン株式会社 Ship propulsion device
US5697821A (en) 1993-11-29 1997-12-16 Sanshin Kogyo Kabushiki Kaisha Bearing carrier for outboard drive
DE4404668A1 (en) 1994-02-15 1995-08-17 Bosch Gmbh Robert Control of vehicle catalyser IC engine output
US5492493A (en) 1994-07-07 1996-02-20 Sanshin Kogyo Kabushiki Kaisha Remote control device for marine propulsion unit
US5633573A (en) * 1994-11-10 1997-05-27 Duracell, Inc. Battery pack having a processor controlled battery operating system
US6073509A (en) 1994-12-24 2000-06-13 Luk Getriebe-Systeme Gmbh Apparatus and method for regulating the operation of a torque transmission system between a driving unit and a transmission in a motor vehicle
JP3971463B2 (en) 1995-01-30 2007-09-05 ヤマハマリン株式会社 Operation control device for watercraft
JPH08210168A (en) 1995-02-02 1996-08-20 Sanshin Ind Co Ltd Operation control device for engine
JPH08247193A (en) 1995-03-09 1996-09-24 Nifco Inc Shock absorbing clip
JP3804030B2 (en) 1995-07-05 2006-08-02 ヤマハマリン株式会社 Ship propulsion machine
SE504461C2 (en) 1995-07-07 1997-02-17 Volvo Penta Ab Method and apparatus for calibrating gas controls
JP3537551B2 (en) 1995-07-20 2004-06-14 ヤマハマリン株式会社 Forward / reverse switching operation device for ship propeller shaft
JP3283405B2 (en) 1995-07-27 2002-05-20 ヤマハ発動機株式会社 Shift control method and apparatus for engine-driven marine propulsion system
JPH09123996A (en) 1995-10-30 1997-05-13 Sanshin Ind Co Ltd Shift drive mechanism of outboard engine
JP3468327B2 (en) 1995-11-28 2003-11-17 ヤマハマリン株式会社 4-cycle outboard
AUPN716395A0 (en) 1995-12-15 1996-01-18 Orbital Engine Company (Australia) Proprietary Limited Air fuel ratio control
JPH09304115A (en) * 1996-05-13 1997-11-28 Denshi Giken:Kk Data analyzer for electronic control apparatus
US5749343A (en) 1996-10-07 1998-05-12 General Motors Corporation Adaptive electronic throttle control
US5730105A (en) 1996-10-17 1998-03-24 Outboard Marine Corporation Idle control for internal combustion engine
JP3971474B2 (en) * 1996-10-21 2007-09-05 ヤマハマリン株式会社 Ship engine operation control device
JP3707577B2 (en) 1996-12-18 2005-10-19 ヤマハマリン株式会社 Marine Engine Operation Control Device
JP3577186B2 (en) 1996-12-19 2004-10-13 トヨタ自動車株式会社 Accelerator opening detector
JP3705390B2 (en) * 1997-02-26 2005-10-12 ヤマハマリン株式会社 Marine engine control device
US5771860A (en) 1997-04-22 1998-06-30 Caterpillar Inc. Automatic power balancing apparatus for tandem engines and method of operating same
JPH10318113A (en) 1997-05-16 1998-12-02 Sanshin Ind Co Ltd Operation control device for marine engine
US6015317A (en) 1997-07-02 2000-01-18 Sanshin Kogyo Kabushiki Kaisha Marine engine overheat detection system
JPH1130140A (en) 1997-07-11 1999-02-02 Sanshin Ind Co Ltd Controller of marine engine
JPH1193720A (en) * 1997-09-25 1999-04-06 Fuji Heavy Ind Ltd Failure diagnostic device for small boat
JPH11129988A (en) 1997-10-28 1999-05-18 Sanshin Ind Co Ltd Shift mechanism of outboard engine
JPH11201873A (en) * 1998-01-19 1999-07-30 Suzuki Motor Corp Method for inspecting onboard electronic control apparatus
US6085684A (en) 1998-02-11 2000-07-11 Cotton; R. Gene Trim tab actuator for power boats
US6073592A (en) 1998-03-06 2000-06-13 Caterpillar Inc. Apparatus for an engine control system
JPH11334694A (en) * 1998-05-22 1999-12-07 Sanshin Ind Co Ltd Shift device for outboard engine
JP4187119B2 (en) * 1998-07-21 2008-11-26 ヤマハマリン株式会社 Outboard motor
JP2000130244A (en) * 1998-10-26 2000-05-09 Sanshin Ind Co Ltd Engine speed display device
US6109986A (en) 1998-12-10 2000-08-29 Brunswick Corporation Idle speed control system for a marine propulsion system
US6095488A (en) 1999-01-29 2000-08-01 Ford Global Technologies, Inc. Electronic throttle control with adjustable default mechanism
JP2000249736A (en) * 1999-03-03 2000-09-14 Denso Corp Inspection program creating device for electronic control unit
JP2001016234A (en) * 1999-06-29 2001-01-19 Mitsubishi Electric Corp Can controller and one-chip computer incorporating the can controller
US6414607B1 (en) * 1999-10-27 2002-07-02 Brunswick Corporation Throttle position sensor with improved redundancy and high resolution
US6370454B1 (en) * 2000-02-25 2002-04-09 Edwin S. Moore Iii Apparatus and method for monitoring and maintaining mechanized equipment
JP3930676B2 (en) * 2000-03-17 2007-06-13 本田技研工業株式会社 Idle speed control device for marine internal combustion engine
US6351704B1 (en) * 2000-03-31 2002-02-26 Bombardier Motor Corporation Of America Method and apparatus for calibrating a position sensor used in engine control
US6233943B1 (en) * 2000-09-27 2001-05-22 Outboard Marine Corporation Computerized system and method for synchronizing engine speed of a plurality of internal combustion engines
US6554660B2 (en) * 2000-09-28 2003-04-29 John T. Irish Propulsion system for yachts, trawlers and the like
US6379114B1 (en) * 2000-11-22 2002-04-30 Brunswick Corporation Method for selecting the pitch of a controllable pitch marine propeller
US6595811B2 (en) * 2000-12-19 2003-07-22 Bombardier Inc. Personal watercraft vehicle component multiplex communication system
US6587765B1 (en) * 2001-06-04 2003-07-01 Teleflex Incorporated Electronic control system for marine vessels
US6882289B2 (en) * 2001-06-11 2005-04-19 Marvin A. Motsenbocker Monitoring and control of watercraft propulsion efficiency
US6382122B1 (en) * 2001-06-22 2002-05-07 Brunswick Corporation Method for initializing a marine vessel control system
JP2003097309A (en) * 2001-09-20 2003-04-03 Sanshin Ind Co Ltd Ship steering device and ship steering method
JP2003098044A (en) * 2001-09-25 2003-04-03 Sanshin Ind Co Ltd Inspection device of marine structure, and inspection system of marine structure
JP2003110714A (en) * 2001-09-26 2003-04-11 Sanshin Ind Co Ltd Small-sized ship information system, server computer and method for providing small-sized ship information
JP2003110483A (en) * 2001-09-26 2003-04-11 Sanshin Ind Co Ltd Ship controller and ship control system
JP2003127986A (en) * 2001-10-24 2003-05-08 Sanshin Ind Co Ltd Small ship and outboard motor
JP4295936B2 (en) * 2001-10-25 2009-07-15 ヤマハ発動機株式会社 Outboard motor operation device and inboard network system
JP3993420B2 (en) * 2001-11-12 2007-10-17 ヤマハマリン株式会社 Outboard motor operating device and inboard network system
JP3993421B2 (en) * 2001-11-12 2007-10-17 ヤマハマリン株式会社 Outboard motor operation device
US6529808B1 (en) * 2002-04-22 2003-03-04 Delphi Technologies, Inc. Method and system for analyzing an on-board vehicle computer system
JP2004048303A (en) * 2002-07-11 2004-02-12 Yamaha Marine Co Ltd Information communication apparatus and information communication method for ship
JP2004068704A (en) * 2002-08-06 2004-03-04 Suzuki Motor Corp Outboard engine
US6704643B1 (en) * 2002-09-16 2004-03-09 Brunswick Corporation Adaptive calibration strategy for a manually controlled throttle system
JP2005009388A (en) * 2003-06-18 2005-01-13 Yamaha Marine Co Ltd Engine output control device for water jet propulsion boat
JP4416483B2 (en) * 2003-11-27 2010-02-17 ヤマハ発動機株式会社 Marine display device
JP4326924B2 (en) * 2003-11-28 2009-09-09 ヤマハ発動機株式会社 Outboard motor identification number setting device and ship
JP4430474B2 (en) * 2004-07-15 2010-03-10 ヤマハ発動機株式会社 Ship maneuvering method and maneuvering device
JP4907935B2 (en) * 2005-09-20 2012-04-04 ヤマハ発動機株式会社 Ship
JP4666492B2 (en) * 2005-10-07 2011-04-06 ヤマハ発動機株式会社 Ship
JP2008012964A (en) * 2006-07-03 2008-01-24 Yamaha Marine Co Ltd Remote control device and marine vessel

Patent Citations (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4497057A (en) * 1981-08-07 1985-01-29 Nippondenso Co., Ltd. Motor vehicle diagnostic monitoring system
US4796206A (en) * 1986-06-02 1989-01-03 International Business Machines Corporation Computer assisted vehicle service featuring signature analysis and artificial intelligence
US5245324A (en) * 1990-09-24 1993-09-14 Snap-On Tools Corporation Digital engine analyzer
US5349644A (en) * 1992-06-30 1994-09-20 Electronic Innovators, Inc. Distributed intelligence engineering casualty and damage control management system using an AC power line carrier-current lan
US5325082A (en) * 1992-11-19 1994-06-28 Rodriguez Juan C Comprehensive vehicle information storage system
US6055468A (en) * 1995-08-07 2000-04-25 Products Research, Inc. Vehicle system analyzer and tutorial unit
US5852789A (en) * 1996-04-10 1998-12-22 Snap-On Technologies, Inc. Engine analyzer with pattern library linked to vehicle ID and display scope configuration
US5935187A (en) * 1996-04-10 1999-08-10 Snap-On Technologies, Inc. Engine analyzer with pattern library linked to vehicle ID and display scope configuration
US6141608A (en) * 1997-10-28 2000-10-31 Snap-On Tools Company System for dynamic diagnosis of apparatus operating conditions
US6067009A (en) * 1998-01-19 2000-05-23 Denso Corporation Diagnostic method and apparatus for vehicle having communication disabling function at engine starting
US20010049579A1 (en) * 2000-05-26 2001-12-06 Kenichi Fujino Diagnostic system for engine
US6691023B2 (en) * 2000-05-26 2004-02-10 Yamaha Marine Kabushiki Kaisha Diagnostic system for engine

Cited By (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050267654A1 (en) * 2001-09-25 2005-12-01 Takashi Okuyama Inspection system for watercraft
US7505836B2 (en) * 2001-09-25 2009-03-17 Yamaha Marine Kabushiki Kaisha Inspection system for watercraft
US20040058594A1 (en) * 2002-09-19 2004-03-25 Honda Giken Kogyo Kabushiki Kaisha Outboard motor
US6962513B2 (en) * 2002-09-19 2005-11-08 Honda Giken Kogyo Kabushiki Kaisha Outboard motor
AU2003246302B2 (en) * 2002-09-19 2008-07-10 Honda Giken Kogyo Kabushiki Kaisha Outboard motor
US20050241425A1 (en) * 2004-04-12 2005-11-03 Takahiro Oguma Shift system for boat propulsion unit
US7443875B2 (en) 2004-06-28 2008-10-28 Yamaha Marine Kabushiki Kaisha Information communication system, device and method
US20070232162A1 (en) * 2006-03-17 2007-10-04 Yamaha Marine Kabushiki Kaisha Remote control device, remote control device side ecu and watercraft
US7674145B2 (en) 2006-03-28 2010-03-09 Yamaha Hatsudoki Kabushiki Kaisha Boat having prioritized controls
US20080020656A1 (en) * 2006-07-24 2008-01-24 Takashi Yamada Boat
US8548001B2 (en) 2008-07-18 2013-10-01 Lg Electronics Inc. Method and an apparatus for controlling messages between host and controller
US20110111778A1 (en) * 2008-07-18 2011-05-12 Lg Electronics Inc. Method and an apparatus for controlling messages between host and controller
WO2010008248A3 (en) * 2008-07-18 2011-05-26 Lg Electronics Inc. A method and an apparatus for controlling messages between host and controller.
US20110124297A1 (en) * 2008-07-18 2011-05-26 Juhyung Son Method and an apparatus for controlling messages between host and controller
CN102204178A (en) * 2008-07-18 2011-09-28 Lg电子株式会社 A method and an apparatus for controlling messages between host and controller
US9319492B2 (en) 2008-07-18 2016-04-19 Lg Electronics Inc. Method and an apparatus for controlling messages between host and controller
US9590851B2 (en) 2008-07-18 2017-03-07 Lg Electronics Inc. Method and an apparatus for controlling messages between host and controller
US9942092B2 (en) 2008-07-18 2018-04-10 Lg Electronics Inc. Method and an apparatus for controlling messages between host and controller
CN101992837A (en) * 2010-10-27 2011-03-30 天津大学 Risk early-warning method of marine propulsion shafting
US20200339235A1 (en) * 2019-04-26 2020-10-29 Yamaha Hatsudoki Kabushiki Kaisha Rigging equipment diagnostic device
US11780544B2 (en) * 2019-04-26 2023-10-10 Yamaha Hatsudoki Kabushiki Kaisha Rigging equipment diagnostic device
CN113432878A (en) * 2021-06-28 2021-09-24 哈尔滨工程大学 Diesel-fuel-steam-electric series-parallel ship hybrid power test bed with monitoring control system and test method

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US20050267654A1 (en) 2005-12-01
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