WO2005061966A2 - Controller interface with menu schedule override - Google Patents

Controller interface with menu schedule override Download PDF

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Publication number
WO2005061966A2
WO2005061966A2 PCT/US2004/037868 US2004037868W WO2005061966A2 WO 2005061966 A2 WO2005061966 A2 WO 2005061966A2 US 2004037868 W US2004037868 W US 2004037868W WO 2005061966 A2 WO2005061966 A2 WO 2005061966A2
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WO
WIPO (PCT)
Prior art keywords
schedule
override
user
time
user interface
Prior art date
Application number
PCT/US2004/037868
Other languages
French (fr)
Other versions
WO2005061966A3 (en
Inventor
John B. Amundson
Brent D. Vick
Heidi J. Finch
Original Assignee
Honeywell International Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Honeywell International Inc. filed Critical Honeywell International Inc.
Publication of WO2005061966A2 publication Critical patent/WO2005061966A2/en
Publication of WO2005061966A3 publication Critical patent/WO2005061966A3/en

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Classifications

    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D23/00Control of temperature
    • G05D23/19Control of temperature characterised by the use of electric means
    • G05D23/1902Control of temperature characterised by the use of electric means characterised by the use of a variable reference value
    • G05D23/1904Control of temperature characterised by the use of electric means characterised by the use of a variable reference value variable in time
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/016Input arrangements with force or tactile feedback as computer generated output to the user

Definitions

  • the present invention relates generally to the field of programmable controllers for homes and/or buildings and their related grounds. More specifically, the present invention relates to simplified interfaces for such controllers having menu schedule override capabilities.
  • Controllers are used on a wide variety of devices and systems for controlling various functions in homes and/or buildings and their related grounds.
  • Some controllers have schedule programming that modifies device parameters such as set points as a function of date and/or time.
  • Some such device or system controllers that utilize schedule programming for controlling various functions in homes and/or buildings and their related grounds include, for example, HVAC controllers, water heater controllers, water softener controllers, security system controllers, lawn sprinkler controllers, and lighting system controllers.
  • HVAC controllers for example, are often employed to monitor and, if necessary, control various environmental conditions within a home, office, or other enclosed space.
  • the controller may include a microprocessor that interacts with other components in the HVAC system.
  • a controller unit equipped with temperature and humidity sensors may be provided to interact with a heater, blower, flue vent, air compressor, humidifier and/or other components, to control the temperature and humidity levels at various locations within the home or office.
  • a sensor located within the controller unit and/or one or more remote sensors may be employed to sense when the temperature and/or humidity (or other environmental conditions) reaches a certain threshold level, causing the controller unit to send a signal to activate or deactivate one or more component in the system.
  • the controller may be equipped with an interface that allows the user to monitor and adjust the environmental conditions at one or more locations within the building.
  • the interface typically includes a liquid crystal display (LCD) panel inset within a housing that contains a microprocessor as well as other components of the controller.
  • the interface may permit the user to program the controller to activate on a certain schedule determined by the user.
  • the interface may include a menu routine that permits the user to change the temperature at one or more times during a particular day. Once the settings for that day have been programmed, the user can often repeat the process to change the settings for the remaining days.
  • Many modern controller have the capability to temporarily override the normal programmed schedule.
  • a method of modifying a schedule for a controller having a user interface includes the step of: providing, simultaneously or sequentially, two or more schedule override choices to a user via the user interface; accepting one or more user responses to the two or more schedule override choices from the user via the user interface and modifying temporarily the schedule based on the user responses provided by the user interface.
  • the method includes the steps of: providing one or more schedule override menu choices to a user via the user interface; accepting one or more user responses to the one or more schedule override choices from the user via the user interface at a first time and temporarily modifying the schedule based on the user responses provided by the user interface at a second time, when the second time is later than the first time, in some cases, by a chosen time interval.
  • the method includes the steps of: providing one or more schedule comfort override menu choices to a user via the user interface; accepting a start time, end time and comfort temperature response to the one or more schedule comfort override choices from the user via the user interface at a first time and modifying one or more of the schedule parameters based on the user responses provided by the user interface at a second time.
  • the second time is later than the first time, in some cases, by a chosen time interval.
  • the method includes the steps of: providing one or more schedule energy saving override menu choices to a user via the user interface; accepting a start time, end time and energy saving temperature response to the one or more schedule comfort override choices from the user via the user interface at a first time and modifying one or more of the schedule parameters based on the user responses provided by the user interface at a second time.
  • the second time is later than the first time, in some cases, by a chosen time interval.
  • Controllers adapted to provide the above methods are also contemplated.
  • Figure 1 is a flow diagram of an illustrative HVAC schedule override program
  • Figure 2 is a block diagram of the illustrative HVAC schedule override program shown in Figure 1
  • Figure 3 is a flow diagram of another illustrative HVAC schedule override program
  • Figure 4 is a block diagram of the illustrative HVAC schedule override program shown in Figure 3
  • Figure 5 Is a flow diagram of another illustrative HVAC schedule override program
  • Figure 6 is a flow diagram of another illustrative HVAC schedule override program
  • Figure 7 is a flow diagram of another illustrative HVAC schedule override program
  • Figures 8A-8D are schematic drawings of an illustrative H AC interface showing an embodiment of the flow diagram of the illustrative HVAC schedule override program shown in Figure 7
  • Figures 9A-9C are schematic drawings of an illustrative
  • a programmed thermostat schedule may be conditions of the area where, for example, a temperature sensor is located.
  • the programmed schedule can activate the controller to send one or more control signals to HNAC equipment on a certain schedule, many times determined by the user.
  • the interface may include a menu routine that permits the user to program the schedule which may then change the temperature and/or other parameter at one or more times during a particular day, such as a temperature setting for a "wake" time interval, followed by a "leave” time interval, followed by a "return” time interval and/or followed by a "sleep” time interval.
  • Schedule override menu block 125 provides one or more schedule override menu choices to a user via the user interface.
  • the user interface can accept one or more responses at block 130 to the one or more schedule override menu choices from the user via the user interface to temporarily modify a preexisting schedule at block 135.
  • One or more schedule parameters 140, 145, 150 may be temporarily modified based on the user responses provided by the user interface.
  • Schedule override menu block 125 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu choices can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time and/or duration of the override schedule and/or the desired temperature of the override schedule.
  • the schedule override menu choices block 125 can include choices that are natural language questions, some of whic ⁇ rmay be phrases with one, two, three, four, five, six, or seven or more words.
  • schedule override menu choices block 125 can provide choices such as, for example, "Come Home Late,” “Come Home Early,” “Get Up Early,” “Stay Home,” On Vacation,” “Stay Up Late,” and/or any other suitable menu choice, as desired.
  • the menu choices can be provided to the user as soft buttons (e.g. variable function, software configured) and/or hard buttons on the controller and/or user interface, and/or a touch screen interface may be provided, as desired.
  • the override choices can be provided to the user in either a simultaneous or sequential manner. Once the user chooses an override choice from the schedule override menu, the program can cause an appropriate temporary schedule override.
  • the program can request a start time from the user, and either apply the "wake” temperature setting or request a temperature setting from the user. Accordingly, the program can either apply an end time that corresponds to the next sequential time a temperature changes (i.e., "leave” time) according to the normal operating schedule, as described above, or request an end time and/or duration from the user. Once the next sequential temperature change occurs according to the normal operating schedule, or according to an end time or duration entered by the user, the controller may return to the normal operating schedule.
  • a temperature changes i.e., "leave” time
  • FIG. 2 is a block diagram of the illustrative HVAC controller that is adapted to include the schedule override method shown in Figure 1.
  • Controller 200 can include a control module ' 10, that in some embodiments, that can be a microprocessor or the like.
  • the control module 210 communicates with a user interface 220, and includes a schedule override menu generator 225, a response acceptor 240, a temporary override schedule 245 and a programmable schedule 250.
  • the control module 210 can generate a control signal 260 to a device (not shown), such as an HVAC system or device as desired.
  • the schedule override menu generator 225 can provide temporary schedule override choices, as described above, to the user interface 220.
  • the interface 220 can be any form of user interface such as, for example, a physical interface including an LCD screen with selection buttons, a touchscreen, an aural interface including a speaker and microphone or both, or any other suitable user interface.
  • a user can activate the schedule override menu generator 225 by a suitable selection mechanism, such as by pressing a schedule button on a touchscreen of the user interface 220.
  • the user can enter a user response into the user interface 220.
  • the response acceptor 240 accepts the user response and provides an indication of the response to the temporary override schedule 245 which communicates with the programmable schedule 250.
  • the programmable schedule 250 has a number of time and temperature set points previously defined.
  • the temporary override schedule overrides the programmable schedule 250 for an appropriate time period, such as one identified by the user response, or until the schedule 250 signals a temperature change based on the normal operating schedule.
  • a control signal 260 is generated by the control module 210 based on the temporary override schedule 245.
  • Figure 3 is a fldwiliagram of another illustrative HVAC schedule override program 300. The flow diagram starts at a normal thermostat operation block 310, although this is not required in all embodiments.
  • a programmed thermostat schedule when operating in the normal thermostat operation block 310, may be followed to regulate environmental conditions of the area where, for example, a temperature sensor is located.
  • the programmed schedule can activate the controller to send one or more control signals to HVAC equipment on a certain schedule, many times determined by the user.
  • the interface may include a menu routine that permits the user to program the schedule, which may then change the temperature and/or other parameter at one or more times during a particular day, such as a temperature setting for a "wake" time interval, a "leave” time interval, a "return” time interval and/or a "sleep" time interval.
  • Schedule override menu block 325 provides one or more schedule override menu choices to a user via the user interface.
  • the user interface can accept one or more responses at block 330 to the one or more schedule override menu choices from the user at a first time via the user interface to temporarily modify a preexisting schedule at block 335 at a second time that is later than the first time, as indicated by time interval block 333.
  • the schedule is modified based on the user responses provided by the user interface at the earlier first time.
  • the controller returns to the normal operation block 310.
  • Schedule override menu block 325 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu chorees can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time or duration of the override schedule, and/or the desired temperature of the override schedule.
  • the schedule override menu choices block 325 can include choices that are natural language questions, some of which may be phrases which can include one, two, three, four, five, six, seven or more words.
  • schedule override menu choices block 325 can provide menu choices such as, for example, "Come Home Late,” “Come Home Early,” “Get Up Early,” “Stay Home,” “On Vacation,” “Stay Up Late,” and/or any other suitable menu choice, depending on the application.
  • the chosen time interval 333 can be, for example, at least 10 minutes, at least 30 minutes, at least 1 hour, at least 4 hours, at least 24 hours, or any other time interval, as desired.
  • the time interval can be determined by the schedule override program based on the schedule override menu choice selected by the user.
  • the user may choose and the controller may accept a schedule override menu choice of "Stay Up Late” at 7:00 a.m.
  • the program can request an end time or duration from the user, and either apply the normal operating schedule "return” temperature setting or request a temperature setting from the user to be applied until the end time provided by the user. If the user entered an end time of 11 :00 p.m. versus a normal operating "return” end time of, for example, 9:00 p.m., then at 11:00 p.m. the controller may apply the normal operating "sleep" temperature set point and resume normal thermostat operation.
  • the user provided the override input at 7:00 a.m., and the modified the normal operating schedule is temporarily overridden 14 hours later when the normal operating schedule is scheduled to change to the "sleep" temperature control signal at 9:00 p.m. Instead the controller continued to send a "return" temperature signal until 11:00 p.m. The controller may then return to normal thermostat operation in accordance to the normal operating schedule at 11 :00 p.m.
  • a user can quickly and easily modify the normal thermostat operating schedule to accommodate interruption in the normal thermostat operating schedule without disabling the normal thermostat schedule or completely reprogramming the controller before the thermostat interruption.
  • Controller 400 can include a control module 410 that, in some cases, can be a microprocessor or the like.
  • the control module 410 can communicate with a user interface 420, and includes a schedule override menu generator 425, a response acceptor 440, a timer 443, a temporary override schedule 445 and a programmable schedule 450.
  • the control module 410 can generate a control signal 460 to a device (not shown), such as an HVAC system or device.
  • the schedule override menu generator 425 can provide temporary schedule override choices, as described above, to the user interface 420.
  • the interface 420 can be any form of user interface such as, for example, a physical interface including a LCD with selection buttons, a touchscreen, an aural interface including a speaker and microphone or both or any other suitable user interface.
  • a user can activate the schedule override menu generator 425 by any suitable selection mechanism, such as by-pressing a schedule but ⁇ n on a touchscreen of the user interface 420.
  • the user can enter a user response into the user interface 420.
  • the response acceptor 440 accepts the user response and provides an indication of the response to the timer 443, which communicates with the temporary override schedule 445 which communicates with the programmable schedule 450.
  • the programmable schedule 450 has a number of time and temperature set points previously defined.
  • the temporary override schedule overrides the programmable schedule 450 following a time interval monitored by the timer 443 and for the time period identified by the user response to the schedule override menu generator or until the schedule 450 signals a temperature change based on the normal operating schedule.
  • a control signal 460 is generated by the control module 410 based on the temporary override schedule 445.
  • Figure 5 is a flow diagram of another illustrative HVAC schedule override program 500.
  • the flow diagram starts at a normal thermostat operation block 510, but this is not required in all embodiments.
  • a programmed thermostat schedule may be followed to regulate environmental conditions of the area where, for example, a temperature sensor is located.
  • the programmed schedule can activate the controller to send one or more control signals to HVAC equipment on a certain schedule, many times determined by the user.
  • the interface may include a menu routine that permits the user to program the schedule, which may then change the temperature at one or more times during a particular day, such as a temperature setting for a "wake" time interval, a "leave” time interval, a "return” time interval and/or a "sleep" time interval.
  • Schedule comfort override menu block 525 provides one or more schedule comfort override menu choices to a user via the user interface.
  • the user interface can accept one or more responses at block 530 to the one or more schedule comfort override menu choices from the user at a first time via the user interface to temporarily modify a preexisting schedule at block 535 at a second time that is later than the first time as indicated by time interval block 533.
  • one or more schedule parameters 540, 545, 550 are modified or overridden based on the user responses accepted by user response block 530 at the first earlier time.
  • Schedule comfort override menu block 525 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu choices can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time or duration of the override schedule and/or the desired temperature of the override schedule.
  • the schedule comfort override menu choices block 525 can include choices that are natural language questions, some of which may be phrases that can include one, two, three, four, five, six, seven or more words.
  • schedule comfort override menu choices block 525 can provide menu choices such as, "Come Home Early,” “Get Up Early,” “Stay Home,” “Stay Up Late,” and/or any other menu choices as desired These schedule comfort override choices generally override an energy savings temperature setting in a normal thermostat schedule.
  • the -cii ⁇ sen't ⁇ n ⁇ e nterval 533 can be, for example, at least 10 minutes, at least 30 minutes, at least 1 hour, at least 4 hours, at least 24 hours, or any other time interval as desired. The time interval can be determined by the schedule override program based on the schedule override menu choice selected by the user.
  • the user may choose and the controller may accept a schedule override menu choice of "Stay Home” at 7:00 p.m., the night before the user plans on staying home for the following day.
  • the program can override the normal operating "leave” energy savings thermostat temperature of the following day, and apply the normal operating schedule "wake" temperature setting, or request a temperature setting from the user to be applied until the next normal operating temperature change occurs following the normal "leave” energy savings thermostat temperature such as a "return" temperature at a normal operating time of, for example, 5:00 p.m., If the normal operating "leave” start time is, for example, 7:00 a.m., then at 7:00 a.m., the controller may apply the entered override temperature or the normal operating "wake” temperature and resume normal thermostat operation following the expiration of the normal operating "leave” time.
  • the interface accept the user override response at 7:00 p.m., the previous night, and modifies the normal operating schedule a time interval of 12 hours later overriding the normal operating schedule from sending a "leave" temperature control signal at 7:00 a.m. Instead, the controller continues to send a "wake" temperature (or other entered temperature) signal until the 5:00 p.m., "return” normal thermostat operation. The controller may then return to the normal thermostat operation in accordance to the normal operating schedule.
  • a user can quickly and easily modify the normal thermostat operating schedule to accommodate an interruption in the normal thermostat operating schedule without disabling the normal thermostat schedule or completely reprogramming the controller before the thermostat interruption and again reprogramming the controller after the interruption.
  • FIG. 6 is a flow diagram of an illustrative HVAC schedule override program 600.
  • the flow diagram starts at a normal thermostat operation block 610, but this is not required in all embodiments.
  • a programmed thermostat schedule may be followed to regulate environmental conditions of the area where, for example, a temperature sensor is located.
  • the programmed schedule can activate the controller to send one or more control signals to HVAC equipment on a certain schedule, many times determined by the user.
  • the interface may include a menu routine that permits the user to program the schedule, which may then change the temperature at one or more times during a particular day, such as a temperature setting for a "wake" time interval, a "leave” time interval, a "return” time interval and/or a "sleep” time interval.
  • the user can program a start time and a heat and/or cool temperature for each desired time interval.
  • Schedule energy savings override menu block 625 provides one or more schedule energy savings override menu choices to a user via the user interface.
  • the user interface can accept one or more responses at block 630 to the one or more schedule energy savings override menu choices from the user at a first time via the user interface to temporarily modify a preexisting schedule at block 635 at a second time that is later than the first time as indicated by time interval block 633.
  • one or more schedule parameters 640, 645, 650 are modified or overridden based on the user responses accepted by user response block 630 at the first earlier time.
  • the controller returns to the normal operation block 610.
  • Schedule energy savings override menu block 625 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu choices can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time or duration of the override schedule and/or the desired temperature of the override schedule.
  • the schedule energy savings override menu choices block 625 can include choices that are natural language questions, some of which are phrases that can include one, two, three, four, five, six, seven or more words.
  • schedule energy savings override menu choices block 625 can provide menu choices such as, "On Vacation,” “Come Home Late,” or any other suitable menu choice, as desired. These schedule energy savings override choices generally override an energy saving temperature setting in a normal thermostat schedule.
  • the chosen time interval 633 can be for example, at least 10 minutes, at least 30 minutes, at least 1 hour, at least 4 hours, at least 24 hours, or any other time interval, as desired. The time interval can be determined by the schedule override program based on the schedule override menu choice selected by the user.
  • the user may choose and the controller may accept a schedule override menu choice of "On Vacation” at 7:00 p.m., the night before the user plans on leaving home for example, on a two day vacation starting at 6:00 a.m., the following morning.
  • the program can override the normal operating thermostat temperature of the following day, and apply the normal operating schedule "leave" temperature setting, or request an energy savings temperature setting from the user to be applied from the vacation start time until the expiration of the end time provided by the user. At the expiration of the end time, the thermostat controller returns to the normal operating schedule.
  • the controller applies the entered override energy savings temperature or the normal operating "leave” temperature until the expiation of the end time provided by the user.
  • the interface accepts the user override response at 7:00 p.m. the previous night, and modifies the normal operating schedule 11 hours later, overriding the normal operating schedule from sending a "leave" temperature control signal at 6:00 a.m. Instead, the controller continues to send a "leave” temperature or other entered temperature signal until the end time, two days later. The controller may then return to the normal thermostat operation in accordance to the normal operating schedule.
  • FIG. 7 is a flow diagram of yet another illustrative HVAC schedule override program 700.
  • the flow diagram starts at a normal thermostat operation block 710, but this is not required in all embodiments.
  • the schedule override program 700 can be initiated by pressing a program initiation button or key such as, for example a
  • the program can begin by providing a menu listing of schedule override choices such as, "Come Home Late” block 721, "Come Home Early” block 722, “Get Up Early” block 723, “Stay Home” block 724, "On Vacation” block 726, and "Stay Up Late” block 727. If the user chooses one of blocks 722, 723, 724, or 727, then the program can request a comfort override start time, end time or duration, and/or comfort override temperature, as shown at block 741.
  • the illustrative program can request an energy savings override start time, end time or duration, and/or energy savings override temperature, as shown at block 742. If the user does not choose a menu override choice, the user can select a "Done" button or key at block 728 and return to normal thermostat operation block 710. Once the user has entered a comfort override start time, end time or duration, and/or comfort override temperature via block 741 or an energy saving override start time, end time, and/or energy saving override temperature via block 742, the thermostat can operate according to the entered comfort override parameters block 736 or the energy savings override parameters block 737.
  • FIGS 8A-D are schematic drawings of an illustrative HVAC controller interface 800 showing an embodiment of the flow diagram of the method shown in Figure 7. The schematic screen shots are taken in sequential order based on the user selections shown in each screen shot.
  • the interface 800 indicates that the controller is following a "NORMAL SCHEDULE" at 802.
  • a user 810 selects a "Quick Mod" button 810 located on the interface 800 starting the schedule override program.
  • the program provides the user 810, via the interface 800, a menu listing of schedule override menu choices 820.
  • the user 810 is shown selecting the "RETURN LATE" response 830.
  • the program asks the user 810, via the interface 800, to enter schedule override return late time 840.
  • the user 810 is shown entering a time of 9:30. In other embodiments, the program can ask for a time duration.
  • This illustrative interface 800 also displays the normal return time of 4:00.
  • the program displays via the interface 810 that the program is following a "HOME LATE SCHEDULE" 860.
  • FIGS 9A-C are schematic drawings of an illustrative HVAC interface 900 showing another illustrative embodiment of the flow diagram of the method shown in Figure 7.
  • the schematic screen shots are taken in sequential order based on the user selections shown in each screen shot.
  • the interface 900 indicates that the controller is following a "NORMAL SCHEDULE" at 902.
  • a user 910 selects a "Quick Mod" 910 button located on the interface 900 to beginning the schedule override program.
  • the program provides the user 910, via the interface 900, a menu listing of schedule override menu choices 920.
  • the user 810 is shown selecting the "STAY HOME" ' response 950.
  • This selection can override an energy savings temperature set point and maintain a comfort temperature set point during a period of time normally dedicated to an energy savings temperature set point. For example, the "leave" set point of the normal schedule can be skipped. After expiration of the "leave” time period of the normal operating schedule, the controller can return the controller back to a normal schedule.
  • the program displays via the interface 910 that the program is following a "STAY HOME SCHEDULE" 960.
  • Figure 10 is a schematic drawing showing an illustrative HVAC interface that includes a system off with auto return function. Some days, a user may believe that heat and/or air conditioning may not be required. On such days, the users can simply turn the HVAC system "off.
  • the HVAC interface 1000 may request a temperature offset 1002.
  • the temperature offset 1002 is expressed as an offset from the set point of the programmed schedule, and may correspond to the wider dead band or set point(s) of the system off with auto return mode. It is recognized that the temperature offset 1002 may be expressed as an offset from any fixed or variable value, as desired. Alternatively, rather than expressing a temperature offset as shown at 1002, and in some cases, the HVAC interface 1000 may request an absolute temperature value or values.
  • the HVAC interface 1000 if the temperature of the inside space exceeds (or falls below) the set point of the programmed schedule by an amount greater than the temperature offset 1002, the HVAC system turns back on. In some cases, the HVAC system may maintains the temperature of the inside space at the offset temperature or some other preset temperature. In other cases, the HVAC system may return to a programmed schedule. In some embodiments, the HVAC interface may also request how long the system should remain in the system off with auto return mode, as shown at 1004. In Figure 10, a time period of three hours has been selected. In this example, after three hours, the HVAC system exits the system off with auto return mode and returns to a preset temperature or a programmed schedule, as desired.
  • FIG 11 is a schematic drawing showing an illustrative HVAC interface that includes a circulate fan over-ride function.
  • the illustrative HVAC interface 1010 may request a time period for how long the fan over-ride function should be maintained.
  • FIG. 12 is a schematic drawing showing an illustrative HVAC interface that includes a ventilator over-ride function.
  • the illustrative HVAC interface 1014 may request a time period for how long the ventilator over-ride function should be maintained.
  • the user may input a time period, such as 4 hours as shown at 1016.
  • the user may also input a ventilator speed, such as a high speed as shown at 1018.
  • FIG. 13 is a schematic drawing showing an illustrative HVAC interface
  • the open windows function may allow the user to temporarily suspend some or all of the HVAC system operations when the windows are open. For example, when the windows are open, it may be desirable to turn off the heat, air conditioning, and humidifier functions of the HVAC system. In some cases, it may be desirable to turn on or after other functions of the HVAC system, such as turning on the fan to help circulate and filter the air.
  • a windows opened button 1022 may be selected by a user when the windows are opened. This may temporarily suspend some or all of the HNAC system operations, and in some cases may activate or alter others (e.g. fan circulate).
  • a designation such as "SYSTEM IN WINDOWS OPEN MODE" 1024 may be displayed on the HNAC interface 1020 to notify the user that the HNAC system is in the windows open mode.
  • the user may select the closed window button 1026, which in some embodiments, returns the HNAC system to its normal programmed schedule.
  • detectors or the like may be provided to automatically detect when the windows are opened and/or closed. When so provided, the open windows mode may be automatically entered and exited, depending on the current state of the windows.
  • a close window alarm 1028 may be provided.
  • the close window alarm may be, for example, an icon displayed on the HVAC interface 1020, an audible alarm (e.g.
  • the close window alarm 1028 may be activated when, for example: the inside temperature drifts beyond an open window temperature set point - which may be preset or programmed similar to the wider dead band or set point(s) shown in Figure 10 above - the inside humidity drifts beyond an open window humidity set point (which also may be preset or user definable); the inside air quality (e.g. dust, pollen, gas, etc.) falls outside of an open window air quality range; the barometric pressure drops significantly - which may indicate pending rain; and/or when any other suitable event occurs or is predicted to occur.
  • the alarm may provide an indication to the user that it may be desirable to close the windows.
  • FIG 14 is a schematic drawing showing an illustrative HVAC interface that includes an energy savings set point control function.
  • a user may be willing to sacrifice some comfort for increased energy savings. For example, if the outside temp rises above 80 degrees (preset or user definable) or drops below 15 degrees (preset or user definable), an energy saving mode may be entered (automatically or manually) that allows the current temperature set point of the inside space to move by up to 6 degrees (preset or user definable) to provide increased energy savings.
  • the amount that the HVAC system control actually allows the set point to move may be dependent on the difference between the outside temperature and the defined energy savings range.
  • the HVAC system control may only allow the set point to move one degree. However, it the outside temperature is 95 degrees, the HVAC system control may allow the set point to move the maximum of 6 degrees.
  • the illustrative HVAC interface 1040 shown in Figure 14 allows a user to enter an outside temperature value 1042 that, if exceeded, causes the HVAC system (e.g. controlling the air conditioning system) to enter the energy savings mode described above.
  • the illustrative HVAC interface 1040 also allows a user to enter an outside temperature value 1044 that, if the outside temperature falls below the specified value, causes the HVAC system (e.g. controlling the heating system) to enter the energy savings mode.
  • the illustrative HVAC interface 1040 also allows a user to enter an allowed set point drift 1046, which in this case is set at 6 degrees. Rather than sensing the outside air temperature, particularly when no outside air temperature sensor is available, it may be desirable to detect when the energy savings mode should be entered by monitoring the HVAC duty cycle. For example, as the temperature of the outside air rises in the summer, the duty cycle of the air conditioner will tend to rise. Likewise, as the temperature of the outside air decreases in the winter, the duty cycle of the heater will tend to increase. As shown in Figure 15, an HVAC interface 1050 may be provided to request a duty cycle rate 1052 that, if exceeded, causes the HVAC controller to enter the energy saving mode.
  • the energy saving mode can be entered which then allows the current temperature set point for the inside space to move by up a maximum of 6 degrees (preset or user definable) to provide increased energy savings, as described above.
  • the amount that the HVAC system control actually allows the set point to move may be dependent on the difference between the sensed duty cycle of the HVAC system and the maximum (or other defined) duty cycle rate. For example, and continuing with the above example, if the sensed duty cycle rate is 92 percent of the maximum (or other defined) duty cycle rate, the HVAC system control may only allow the set point of the inside space to move one degree.
  • the HVAC system control may allow the set point of the inside space to move the maximum 6 degrees.

Abstract

A method of modifying a programmable schedule for a controller and a controller are disclosed having a user interface. The method includes the steps of providing, simultaneously or sequentially, two or more schedule override choices to a user via the user interface, accepting a selection of one of the two or more schedule override choices from the user via the user interface, and modifying temporarily the schedule based on the user responses provided by the user interface.

Description

CONTROLLER INTERFACE WITH MENU SCHEDULE OVERRIDE
Field of the Invention The present invention relates generally to the field of programmable controllers for homes and/or buildings and their related grounds. More specifically, the present invention relates to simplified interfaces for such controllers having menu schedule override capabilities.
Background of the Invention Controllers are used on a wide variety of devices and systems for controlling various functions in homes and/or buildings and their related grounds. Some controllers have schedule programming that modifies device parameters such as set points as a function of date and/or time. Some such device or system controllers that utilize schedule programming for controlling various functions in homes and/or buildings and their related grounds include, for example, HVAC controllers, water heater controllers, water softener controllers, security system controllers, lawn sprinkler controllers, and lighting system controllers. HVAC controllers, for example, are often employed to monitor and, if necessary, control various environmental conditions within a home, office, or other enclosed space. Such devices are useful, for example, in regulating any number of environmental conditions within a particular space including, for example, temperature, humidity, venting, air quality, etc. The controller may include a microprocessor that interacts with other components in the HVAC system. For example, in many modern thermostats for use in the home, a controller unit equipped with temperature and humidity sensors may be provided to interact with a heater, blower, flue vent, air compressor, humidifier and/or other components, to control the temperature and humidity levels at various locations within the home or office. A sensor located within the controller unit and/or one or more remote sensors may be employed to sense when the temperature and/or humidity (or other environmental conditions) reaches a certain threshold level, causing the controller unit to send a signal to activate or deactivate one or more component in the system. The controller may be equipped with an interface that allows the user to monitor and adjust the environmental conditions at one or more locations within the building. With more modern designs, the interface typically includes a liquid crystal display (LCD) panel inset within a housing that contains a microprocessor as well as other components of the controller. In some designs, the interface may permit the user to program the controller to activate on a certain schedule determined by the user. For example, the interface may include a menu routine that permits the user to change the temperature at one or more times during a particular day. Once the settings for that day have been programmed, the user can often repeat the process to change the settings for the remaining days. Many modern controller have the capability to temporarily override the normal programmed schedule. This may be useful when, for example, a user changes their schedule which deviates from the normal programmed schedule in the controller. For many controllers, a number of steps are often required to establish a one time temporary program override. In some cases, the interface is simply too cumbersome or complex to be conveniently used to program a temporary override. This often results in disabling the normal programmed schedule in favor of manually adjusting the controller. However, when this occurs, the energy saving benefits of the programmable controller are not realized. Accordingly, there is an ongoing need in the art to decrease the time and complexity associated with temporarily modifying a schedule in a programmable controller.
Summary of the Invention Generally, the present invention pertains to simplified interfaces for controllers having schedule override capabilities. In one illustrative embodiment, a method of modifying a schedule for a controller having a user interface is provided. The illustrative method includes the step of: providing, simultaneously or sequentially, two or more schedule override choices to a user via the user interface; accepting one or more user responses to the two or more schedule override choices from the user via the user interface and modifying temporarily the schedule based on the user responses provided by the user interface. In another illustrative embodiment, the method includes the steps of: providing one or more schedule override menu choices to a user via the user interface; accepting one or more user responses to the one or more schedule override choices from the user via the user interface at a first time and temporarily modifying the schedule based on the user responses provided by the user interface at a second time, when the second time is later than the first time, in some cases, by a chosen time interval. In yet another illustrative embodiment, the method includes the steps of: providing one or more schedule comfort override menu choices to a user via the user interface; accepting a start time, end time and comfort temperature response to the one or more schedule comfort override choices from the user via the user interface at a first time and modifying one or more of the schedule parameters based on the user responses provided by the user interface at a second time. The second time is later than the first time, in some cases, by a chosen time interval. ϊiϊ ariottfer illustrative' embodiment, the method includes the steps of: providing one or more schedule energy saving override menu choices to a user via the user interface; accepting a start time, end time and energy saving temperature response to the one or more schedule comfort override choices from the user via the user interface at a first time and modifying one or more of the schedule parameters based on the user responses provided by the user interface at a second time. The second time is later than the first time, in some cases, by a chosen time interval. Controllers adapted to provide the above methods are also contemplated. The above summary of the present invention is not intended to describe each disclosed embodiment or every implementation of the present invention. The Figures, Detailed Description and Examples which follow more particularly exemplify these embodiments.
Brief Description of the Drawings The invention may be more completely understood in consideration of the following detailed description of various embodiments of the invention in connection with the accompanying drawings, in which: Figure 1 is a flow diagram of an illustrative HVAC schedule override program; Figure 2 is a block diagram of the illustrative HVAC schedule override program shown in Figure 1; Figure 3 is a flow diagram of another illustrative HVAC schedule override program; Figure 4 is a block diagram of the illustrative HVAC schedule override program shown in Figure 3 ; Figure 5 Is a flow diagram of another illustrative HVAC schedule override program; Figure 6 is a flow diagram of another illustrative HVAC schedule override program; Figure 7 is a flow diagram of another illustrative HVAC schedule override program; Figures 8A-8D are schematic drawings of an illustrative H AC interface showing an embodiment of the flow diagram of the illustrative HVAC schedule override program shown in Figure 7; Figures 9A-9C are schematic drawings of an illustrative HVAC interface showing an embodiment of the flow diagram of the illustrative HVAC schedule override program shown in Figure 7; Figure 10 is a schematic drawing showing an illustrative HVAC interface that includes a system off with auto return function; Figure 11 is a schematic drawing showing an illustrative HVAC interface that includes a circulate fan over-ride function; Figure 12 is a schematic drawing showing an illustrative HVAC interface that includes a ventilator over-ride function; Figure 13 is a schematic drawing showing an illustrative HVAC interface that includes open windows function; Figure 14 is a schematic drawing showing an illustrative HVAC interface that includes an energy savings set point control function; and Figure 15 is a schematic drawing showing another illustrative HVAC interface that includes an energy savings set point control function. While the invention is amenable to various modifications and alternative forms, specifics thereof have been shown by way of example in the drawings and will be described in detail. It should be understood, however, that the intention is not to limit the invention to the particular embodiments described. On the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention.
Detailed Description of the Invention The following description should be read with reference to the drawings, in which like elements in different drawings are numbered in like fashion. The drawings, which are not necessarily to scale, depict selected embodiments and are not intended to limit the scope of the invention. Although examples of construction, dimensions, and materials are illustrated for the various elements, those skilled in the art will recognize that many of the examples provided have suitable alternatives that may be utilized. Generally, the present invention pertains to simplified interfaces for controllers having schedule override programming capabilities. These controllers can be used in a variety of systems such as, for example, HNAC systems, sprinkler systems, security systems, lighting systems, or any other suitable controllers. The Figures depict HVAC controllers. While the present invention is not so limited, an appreciation of various aspects of the invention will be gained through a discussion of the examples provided below. Figure 1 is a flow diagram of an illustrative HNAC schedule override program
100. The flow diagram starts at a normal thermostat operation block 110, although this not required in all embodiments. For the illustrative embodiment, when operating in normal thermostat operation block 110, a programmed thermostat schedule may be
Figure imgf000009_0001
conditions of the area where, for example, a temperature sensor is located. The programmed schedule can activate the controller to send one or more control signals to HNAC equipment on a certain schedule, many times determined by the user. The interface may include a menu routine that permits the user to program the schedule which may then change the temperature and/or other parameter at one or more times during a particular day, such as a temperature setting for a "wake" time interval, followed by a "leave" time interval, followed by a "return" time interval and/or followed by a "sleep" time interval. In some embodiments, the user can program a start time and a heat and/or cool temperature set point for each desired time interval . Schedule override menu block 125 provides one or more schedule override menu choices to a user via the user interface. The user interface can accept one or more responses at block 130 to the one or more schedule override menu choices from the user via the user interface to temporarily modify a preexisting schedule at block 135. One or more schedule parameters 140, 145, 150 may be temporarily modified based on the user responses provided by the user interface. Once the temporary schedule override time interval ends, the controller can return to the normal operation block 110. Schedule override menu block 125 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu choices can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time and/or duration of the override schedule and/or the desired temperature of the override schedule. The schedule override menu choices block 125 can include choices that are natural language questions, some of whicϊrmay be phrases with one, two, three, four, five, six, or seven or more words. In some cases, schedule override menu choices block 125 can provide choices such as, for example, "Come Home Late," "Come Home Early," "Get Up Early," "Stay Home," On Vacation," "Stay Up Late," and/or any other suitable menu choice, as desired. The menu choices can be provided to the user as soft buttons (e.g. variable function, software configured) and/or hard buttons on the controller and/or user interface, and/or a touch screen interface may be provided, as desired. The override choices can be provided to the user in either a simultaneous or sequential manner. Once the user chooses an override choice from the schedule override menu, the program can cause an appropriate temporary schedule override. For instance, using the predefined schedule structure described above (wake, leave, return, sleep), if the user chooses "Get Up Early" the program can request a start time from the user, and either apply the "wake" temperature setting or request a temperature setting from the user. Accordingly, the program can either apply an end time that corresponds to the next sequential time a temperature changes (i.e., "leave" time) according to the normal operating schedule, as described above, or request an end time and/or duration from the user. Once the next sequential temperature change occurs according to the normal operating schedule, or according to an end time or duration entered by the user, the controller may return to the normal operating schedule. Using such an approach, a user can quickly and easily modify the normal thermostat operating schedule to accommodate one or more temporary interruptions or overrides in the normal thermostat operating schedule. Figure 2 is a block diagram of the illustrative HVAC controller that is adapted to include the schedule override method shown in Figure 1. Controller 200 can include a control module ' 10, that in some embodiments, that can be a microprocessor or the like. The control module 210 communicates with a user interface 220, and includes a schedule override menu generator 225, a response acceptor 240, a temporary override schedule 245 and a programmable schedule 250. The control module 210 can generate a control signal 260 to a device (not shown), such as an HVAC system or device as desired. The schedule override menu generator 225 can provide temporary schedule override choices, as described above, to the user interface 220. The interface 220 can be any form of user interface such as, for example, a physical interface including an LCD screen with selection buttons, a touchscreen, an aural interface including a speaker and microphone or both, or any other suitable user interface. A user can activate the schedule override menu generator 225 by a suitable selection mechanism, such as by pressing a schedule button on a touchscreen of the user interface 220. In response to the schedule override choices, the user can enter a user response into the user interface 220. The response acceptor 240 accepts the user response and provides an indication of the response to the temporary override schedule 245 which communicates with the programmable schedule 250. In the illustrative embodiment, the programmable schedule 250 has a number of time and temperature set points previously defined. The temporary override schedule overrides the programmable schedule 250 for an appropriate time period, such as one identified by the user response, or until the schedule 250 signals a temperature change based on the normal operating schedule. A control signal 260 is generated by the control module 210 based on the temporary override schedule 245. Figure 3 is a fldwiliagram of another illustrative HVAC schedule override program 300. The flow diagram starts at a normal thermostat operation block 310, although this is not required in all embodiments. In the illustrative embodiment, when operating in the normal thermostat operation block 310, a programmed thermostat schedule may be followed to regulate environmental conditions of the area where, for example, a temperature sensor is located. The programmed schedule can activate the controller to send one or more control signals to HVAC equipment on a certain schedule, many times determined by the user. The interface may include a menu routine that permits the user to program the schedule, which may then change the temperature and/or other parameter at one or more times during a particular day, such as a temperature setting for a "wake" time interval, a "leave" time interval, a "return" time interval and/or a "sleep" time interval. In the illustrative embodiment, the user can program a start time and a heat and/or cool temperature for each desired time interval. Schedule override menu block 325 provides one or more schedule override menu choices to a user via the user interface. The user interface can accept one or more responses at block 330 to the one or more schedule override menu choices from the user at a first time via the user interface to temporarily modify a preexisting schedule at block 335 at a second time that is later than the first time, as indicated by time interval block 333. At the second later time, the schedule is modified based on the user responses provided by the user interface at the earlier first time. In the illustrative embodiment, once the temporary schedule override expires, the controller returns to the normal operation block 310. Schedule override menu block 325 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu chorees can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time or duration of the override schedule, and/or the desired temperature of the override schedule. The schedule override menu choices block 325 can include choices that are natural language questions, some of which may be phrases which can include one, two, three, four, five, six, seven or more words. In some cases, schedule override menu choices block 325 can provide menu choices such as, for example, "Come Home Late," "Come Home Early," "Get Up Early," "Stay Home," "On Vacation," "Stay Up Late," and/or any other suitable menu choice, depending on the application. The chosen time interval 333 can be, for example, at least 10 minutes, at least 30 minutes, at least 1 hour, at least 4 hours, at least 24 hours, or any other time interval, as desired. The time interval can be determined by the schedule override program based on the schedule override menu choice selected by the user. For instance, using the predefined schedule structure described above (wake, leave, return, sleep), the user may choose and the controller may accept a schedule override menu choice of "Stay Up Late" at 7:00 a.m. The program can request an end time or duration from the user, and either apply the normal operating schedule "return" temperature setting or request a temperature setting from the user to be applied until the end time provided by the user. If the user entered an end time of 11 :00 p.m. versus a normal operating "return" end time of, for example, 9:00 p.m., then at 11:00 p.m. the controller may apply the normal operating "sleep" temperature set point and resume normal thermostat operation. In this example, the user provided the override input at 7:00 a.m., and the modified the normal operating schedule is temporarily overridden 14 hours later when the normal operating schedule is scheduled to change to the "sleep" temperature control signal at 9:00 p.m. Instead the controller continued to send a "return" temperature signal until 11:00 p.m. The controller may then return to normal thermostat operation in accordance to the normal operating schedule at 11 :00 p.m. Thus, a user can quickly and easily modify the normal thermostat operating schedule to accommodate interruption in the normal thermostat operating schedule without disabling the normal thermostat schedule or completely reprogramming the controller before the thermostat interruption. Thus, the user can schedule a one or more interruptions in the normal thermostat operating schedule that will modify the normal thermostat operating schedule at a future time and then return the operating schedule to its normal operating schedule. Figure 4 is a block diagram of the illustrative HVAC controller that is adapted to include the schedule override method shown in Figure 3. Controller 400 can include a control module 410 that, in some cases, can be a microprocessor or the like. The control module 410 can communicate with a user interface 420, and includes a schedule override menu generator 425, a response acceptor 440, a timer 443, a temporary override schedule 445 and a programmable schedule 450. The control module 410 can generate a control signal 460 to a device (not shown), such as an HVAC system or device. The schedule override menu generator 425 can provide temporary schedule override choices, as described above, to the user interface 420. The interface 420 can be any form of user interface such as, for example, a physical interface including a LCD with selection buttons, a touchscreen, an aural interface including a speaker and microphone or both or any other suitable user interface. A user can activate the schedule override menu generator 425 by any suitable selection mechanism, such as by-pressing a schedule butϊδn on a touchscreen of the user interface 420. In response to the schedule override choices, the user can enter a user response into the user interface 420. The response acceptor 440 accepts the user response and provides an indication of the response to the timer 443, which communicates with the temporary override schedule 445 which communicates with the programmable schedule 450. In the illustrative embodiment, the programmable schedule 450 has a number of time and temperature set points previously defined. The temporary override schedule overrides the programmable schedule 450 following a time interval monitored by the timer 443 and for the time period identified by the user response to the schedule override menu generator or until the schedule 450 signals a temperature change based on the normal operating schedule. A control signal 460 is generated by the control module 410 based on the temporary override schedule 445. Figure 5 is a flow diagram of another illustrative HVAC schedule override program 500. The flow diagram starts at a normal thermostat operation block 510, but this is not required in all embodiments. In the illustrative embodiment, when operated in the normal thermostat operation block 510, a programmed thermostat schedule may be followed to regulate environmental conditions of the area where, for example, a temperature sensor is located. The programmed schedule can activate the controller to send one or more control signals to HVAC equipment on a certain schedule, many times determined by the user. The interface may include a menu routine that permits the user to program the schedule, which may then change the temperature at one or more times during a particular day, such as a temperature setting for a "wake" time interval, a "leave" time interval, a "return" time interval and/or a "sleep" time interval. In the illustrative embodiment, the user can program a start time and a heat and/or cool temperature for each desired time interval. Schedule comfort override menu block 525 provides one or more schedule comfort override menu choices to a user via the user interface. The user interface can accept one or more responses at block 530 to the one or more schedule comfort override menu choices from the user at a first time via the user interface to temporarily modify a preexisting schedule at block 535 at a second time that is later than the first time as indicated by time interval block 533. At the second later time, and as shown at block 535, one or more schedule parameters 540, 545, 550 are modified or overridden based on the user responses accepted by user response block 530 at the first earlier time. In the illustrative embodiment, once the temporary schedule override time interval expires, the controller returns to the normal operation block 510. Schedule comfort override menu block 525 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu choices can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time or duration of the override schedule and/or the desired temperature of the override schedule. The schedule comfort override menu choices block 525 can include choices that are natural language questions, some of which may be phrases that can include one, two, three, four, five, six, seven or more words. In some cases, schedule comfort override menu choices block 525 can provide menu choices such as, "Come Home Early," "Get Up Early," "Stay Home," "Stay Up Late," and/or any other menu choices as desired These schedule comfort override choices generally override an energy savings temperature setting in a normal thermostat schedule. The -ciiσsen'tϊnϊe nterval 533 can be, for example, at least 10 minutes, at least 30 minutes, at least 1 hour, at least 4 hours, at least 24 hours, or any other time interval as desired. The time interval can be determined by the schedule override program based on the schedule override menu choice selected by the user. For instance, using the predefined schedule structure described above (wake, leave, return, sleep) the user may choose and the controller may accept a schedule override menu choice of "Stay Home" at 7:00 p.m., the night before the user plans on staying home for the following day. The program can override the normal operating "leave" energy savings thermostat temperature of the following day, and apply the normal operating schedule "wake" temperature setting, or request a temperature setting from the user to be applied until the next normal operating temperature change occurs following the normal "leave" energy savings thermostat temperature such as a "return" temperature at a normal operating time of, for example, 5:00 p.m., If the normal operating "leave" start time is, for example, 7:00 a.m., then at 7:00 a.m., the controller may apply the entered override temperature or the normal operating "wake" temperature and resume normal thermostat operation following the expiration of the normal operating "leave" time. In this example, the interface accept the user override response at 7:00 p.m., the previous night, and modifies the normal operating schedule a time interval of 12 hours later overriding the normal operating schedule from sending a "leave" temperature control signal at 7:00 a.m. Instead, the controller continues to send a "wake" temperature (or other entered temperature) signal until the 5:00 p.m., "return" normal thermostat operation. The controller may then return to the normal thermostat operation in accordance to the normal operating schedule. Thus, a user can quickly and easily modify the normal thermostat operating schedule to accommodate an interruption in the normal thermostat operating schedule without disabling the normal thermostat schedule or completely reprogramming the controller before the thermostat interruption and again reprogramming the controller after the interruption. Thus, the user can schedule one or more interruptions in the normal thermostat operating schedule that will modify the normal thermostat operating schedule at a future time and then return the operating schedule to its normal operating schedule. Figure 6 is a flow diagram of an illustrative HVAC schedule override program 600. The flow diagram starts at a normal thermostat operation block 610, but this is not required in all embodiments. In the illustrative embodiment, when operated in the normal thermostat operation block 610, a programmed thermostat schedule may be followed to regulate environmental conditions of the area where, for example, a temperature sensor is located. The programmed schedule can activate the controller to send one or more control signals to HVAC equipment on a certain schedule, many times determined by the user. The interface may include a menu routine that permits the user to program the schedule, which may then change the temperature at one or more times during a particular day, such as a temperature setting for a "wake" time interval, a "leave" time interval, a "return" time interval and/or a "sleep" time interval. In the illustrative embodiment, the user can program a start time and a heat and/or cool temperature for each desired time interval. Schedule energy savings override menu block 625 provides one or more schedule energy savings override menu choices to a user via the user interface. The user interface can accept one or more responses at block 630 to the one or more schedule energy savings override menu choices from the user at a first time via the user interface to temporarily modify a preexisting schedule at block 635 at a second time that is later than the first time as indicated by time interval block 633. At the second later time, and as shown at block 635, one or more schedule parameters 640, 645, 650 are modified or overridden based on the user responses accepted by user response block 630 at the first earlier time. In the illustrative embodiment, once the temporary schedule override time interval expires, the controller returns to the normal operation block 610. Schedule energy savings override menu block 625 can provide one, two, three, four, five, six, seven, eight, nine, or ten or more menu choices from which a user can chose. In some embodiments, these menu choices can also solicit information from the user regarding the parameters of the desired schedule override condition such as, for example, the starting time of the override schedule, the ending time or duration of the override schedule and/or the desired temperature of the override schedule. The schedule energy savings override menu choices block 625 can include choices that are natural language questions, some of which are phrases that can include one, two, three, four, five, six, seven or more words. In some cases, schedule energy savings override menu choices block 625 can provide menu choices such as, "On Vacation," "Come Home Late," or any other suitable menu choice, as desired. These schedule energy savings override choices generally override an energy saving temperature setting in a normal thermostat schedule. The chosen time interval 633 can be for example, at least 10 minutes, at least 30 minutes, at least 1 hour, at least 4 hours, at least 24 hours, or any other time interval, as desired. The time interval can be determined by the schedule override program based on the schedule override menu choice selected by the user. For instance, using the predefined schedule structure described above (wake, leave, return, sleep) the user may choose and the controller may accept a schedule override menu choice of "On Vacation" at 7:00 p.m., the night before the user plans on leaving home for example, on a two day vacation starting at 6:00 a.m., the following morning. The program can override the normal operating thermostat temperature of the following day, and apply the normal operating schedule "leave" temperature setting, or request an energy savings temperature setting from the user to be applied from the vacation start time until the expiration of the end time provided by the user. At the expiration of the end time, the thermostat controller returns to the normal operating schedule. If the entered vacation start time is, for example, 6:00 a.m., then at 6:00 a.m., the controller applies the entered override energy savings temperature or the normal operating "leave" temperature until the expiation of the end time provided by the user. In this example, the interface accepts the user override response at 7:00 p.m. the previous night, and modifies the normal operating schedule 11 hours later, overriding the normal operating schedule from sending a "leave" temperature control signal at 6:00 a.m. Instead, the controller continues to send a "leave" temperature or other entered temperature signal until the end time, two days later. The controller may then return to the normal thermostat operation in accordance to the normal operating schedule. Thus, a user can quickly and easily modify the normal thermostat operating schedule to accommodate one or more interruptions in the normal thermostat operating schedule without disabling the normal thermostat schedule or completely reprogramming the controller before the thermostat interruption and again reprogramming the controller after the interruption. Thus, the user can schedule one or more interruptions in the normal thermostat operating schedule that will modify the normHrtherm'Ostai; Operating schedule at a future time and then return the operating schedule to its normal operating schedule. Figure 7 is a flow diagram of yet another illustrative HVAC schedule override program 700. The flow diagram starts at a normal thermostat operation block 710, but this is not required in all embodiments. The schedule override program 700 can be initiated by pressing a program initiation button or key such as, for example a
"Quick Mod" or "Quick Modification" button on a user interface. The program can begin by providing a menu listing of schedule override choices such as, "Come Home Late" block 721, "Come Home Early" block 722, "Get Up Early" block 723, "Stay Home" block 724, "On Vacation" block 726, and "Stay Up Late" block 727. If the user chooses one of blocks 722, 723, 724, or 727, then the program can request a comfort override start time, end time or duration, and/or comfort override temperature, as shown at block 741. If the user chooses one of blocks 721 or 726, then the illustrative program can request an energy savings override start time, end time or duration, and/or energy savings override temperature, as shown at block 742. If the user does not choose a menu override choice, the user can select a "Done" button or key at block 728 and return to normal thermostat operation block 710. Once the user has entered a comfort override start time, end time or duration, and/or comfort override temperature via block 741 or an energy saving override start time, end time, and/or energy saving override temperature via block 742, the thermostat can operate according to the entered comfort override parameters block 736 or the energy savings override parameters block 737. Once either the comfort override is complete at block 738 or the energy savings override is complete at block 739, then the thermostat may return to normal operation at block 710. Figures 8A-D are schematic drawings of an illustrative HVAC controller interface 800 showing an embodiment of the flow diagram of the method shown in Figure 7. The schematic screen shots are taken in sequential order based on the user selections shown in each screen shot. At Figure 8A, the interface 800 indicates that the controller is following a "NORMAL SCHEDULE" at 802. A user 810 selects a "Quick Mod" button 810 located on the interface 800 starting the schedule override program. At Figure 8B and in the illustrative embodiment, the program provides the user 810, via the interface 800, a menu listing of schedule override menu choices 820. The user 810 is shown selecting the "RETURN LATE" response 830. At Figure 8C, the program asks the user 810, via the interface 800, to enter schedule override return late time 840. The user 810 is shown entering a time of 9:30. In other embodiments, the program can ask for a time duration. This illustrative interface 800 also displays the normal return time of 4:00. At Figure 8D, the program displays via the interface 810 that the program is following a "HOME LATE SCHEDULE" 860. Figures 9A-C are schematic drawings of an illustrative HVAC interface 900 showing another illustrative embodiment of the flow diagram of the method shown in Figure 7. The schematic screen shots are taken in sequential order based on the user selections shown in each screen shot. At Figure 9A, the interface 900 indicates that the controller is following a "NORMAL SCHEDULE" at 902. A user 910 selects a "Quick Mod" 910 button located on the interface 900 to beginning the schedule override program. At Figure 9B, the program provides the user 910, via the interface 900, a menu listing of schedule override menu choices 920. The user 810 is shown selecting the "STAY HOME"' response 950. This selection can override an energy savings temperature set point and maintain a comfort temperature set point during a period of time normally dedicated to an energy savings temperature set point. For example, the "leave" set point of the normal schedule can be skipped. After expiration of the "leave" time period of the normal operating schedule, the controller can return the controller back to a normal schedule. At Figure 9C, the program displays via the interface 910 that the program is following a "STAY HOME SCHEDULE" 960. Figure 10 is a schematic drawing showing an illustrative HVAC interface that includes a system off with auto return function. Some days, a user may believe that heat and/or air conditioning may not be required. On such days, the users can simply turn the HVAC system "off. However, it may be desirable to provide an automatic backup, with a wider control dead band, that would automatically return the HVAC system to the programmed schedule, or some other predetermined schedule or set point, in the event the inside temperature of the inside space swings beyond the wider dead band. This may be referred to as a system off with auto return mode. This may help prevent the temperature in the inside space from becoming overly uncomfortable.
Also, when enabled, the user may not have to remember to turn the system back "on". The wider dead band and/or set point(s) may be preset, or user definable. For example, and in the illustrative HVAC interface shown in Figure 10, the HVAC interface 1000 may request a temperature offset 1002. In the illustrative embodiment, the temperature offset 1002 is expressed as an offset from the set point of the programmed schedule, and may correspond to the wider dead band or set point(s) of the system off with auto return mode. It is recognized that the temperature offset 1002 may be expressed as an offset from any fixed or variable value, as desired. Alternatively, rather than expressing a temperature offset as shown at 1002, and in some cases, the HVAC interface 1000 may request an absolute temperature value or values. In the illustrative HVAC interface 1000, if the temperature of the inside space exceeds (or falls below) the set point of the programmed schedule by an amount greater than the temperature offset 1002, the HVAC system turns back on. In some cases, the HVAC system may maintains the temperature of the inside space at the offset temperature or some other preset temperature. In other cases, the HVAC system may return to a programmed schedule. In some embodiments, the HVAC interface may also request how long the system should remain in the system off with auto return mode, as shown at 1004. In Figure 10, a time period of three hours has been selected. In this example, after three hours, the HVAC system exits the system off with auto return mode and returns to a preset temperature or a programmed schedule, as desired. In some cases, if during the three hour period the temperature of the inside space exceeds (or falls below) the set point of the programmed schedule by an amount greater than the temperature offset 1002, the HVAC system may return to the programmed schedule, as mentioned above. Figure 11 is a schematic drawing showing an illustrative HVAC interface that includes a circulate fan over-ride function. Under some conditions, it may be desirable to over-ride the normal programmed fan control by turning the fan on continuously, artificially increasing the duty cycle of the fan, or otherwise causing increased (or decreased) fan circulation in the inside space. In one illustrative embodiment, and as shown in Figure 11, the illustrative HVAC interface 1010 may request a time period for how long the fan over-ride function should be maintained. The user may input a time period, such as 4 hours as shown at 1012. After the time period expires, the "system may return to the normal programmed schedule, if desired. This may allow a user to increase/decrease fan circulation in an inside space for a period of time. Also, the user may not have to remember to return the fan circulation to the normal programmed schedule later. Figure 12 is a schematic drawing showing an illustrative HVAC interface that includes a ventilator over-ride function. Under some conditions, it may be desirable to over-ride the normal programmed ventilator operation by, for example, turning on or off a ventilator (or energy recovery ventilator "ERV), change the speed at which the ventilator or ERV operates for a period of time, artificially increasing/decreasing the duty cycle of the ventilator or ERV, or otherwise temporarily changing the ventilation in the inside space. In one illustrative embodiment, and as shown in Figure 12, the illustrative HVAC interface 1014 may request a time period for how long the ventilator over-ride function should be maintained. The user may input a time period, such as 4 hours as shown at 1016. In the illustrative example, the user may also input a ventilator speed, such as a high speed as shown at 1018. After the time period expires, the system may return to the normal programmed ventilator schedule, if desired. This may allow a user to increase/decrease ventilation in an inside space for a period of time. Also, the user may not have to remember to return the ventilation to the normal programmed schedule later. Figure 13 is a schematic drawing showing an illustrative HVAC interface
1020 that includes an open windows function. In this illustrative embodiment, the open windows function may allow the user to temporarily suspend some or all of the HVAC system operations when the windows are open. For example, when the windows are open, it may be desirable to turn off the heat, air conditioning, and humidifier functions of the HVAC system. In some cases, it may be desirable to turn on or after other functions of the HVAC system, such as turning on the fan to help circulate and filter the air. Referring to Figure 13, and in the illustrative embodiment, a windows opened button 1022 may be selected by a user when the windows are opened. This may temporarily suspend some or all of the HNAC system operations, and in some cases may activate or alter others (e.g. fan circulate). In the illustrative embodiment, a designation such as "SYSTEM IN WINDOWS OPEN MODE" 1024 may be displayed on the HNAC interface 1020 to notify the user that the HNAC system is in the windows open mode. When the user closes the windows, the user may select the closed window button 1026, which in some embodiments, returns the HNAC system to its normal programmed schedule. In some cases, detectors or the like may be provided to automatically detect when the windows are opened and/or closed. When so provided, the open windows mode may be automatically entered and exited, depending on the current state of the windows. In some embodiments, a close window alarm 1028 may be provided. The close window alarm may be, for example, an icon displayed on the HVAC interface 1020, an audible alarm (e.g. three beeps at predetermined intervals) and/or any other suitable alarm. The close window alarm 1028 may be activated when, for example: the inside temperature drifts beyond an open window temperature set point - which may be preset or programmed similar to the wider dead band or set point(s) shown in Figure 10 above - the inside humidity drifts beyond an open window humidity set point (which also may be preset or user definable); the inside air quality (e.g. dust, pollen, gas, etc.) falls outside of an open window air quality range; the barometric pressure drops significantly - which may indicate pending rain; and/or when any other suitable event occurs or is predicted to occur. The alarm may provide an indication to the user that it may be desirable to close the windows. In some cases, the alarm may be disabled and/or enabled, depending on the user's preferences. Figure 14 is a schematic drawing showing an illustrative HVAC interface that includes an energy savings set point control function. On very hot or very cold days, a user may be willing to sacrifice some comfort for increased energy savings. For example, if the outside temp rises above 80 degrees (preset or user definable) or drops below 15 degrees (preset or user definable), an energy saving mode may be entered (automatically or manually) that allows the current temperature set point of the inside space to move by up to 6 degrees (preset or user definable) to provide increased energy savings. In some cases, the amount that the HVAC system control actually allows the set point to move may be dependent on the difference between the outside temperature and the defined energy savings range. For example, and continuing with the above example, if the outside temperature is 82 degrees, the HVAC system control may only allow the set point to move one degree. However, it the outside temperature is 95 degrees, the HVAC system control may allow the set point to move the maximum of 6 degrees. The illustrative HVAC interface 1040 shown in Figure 14 allows a user to enter an outside temperature value 1042 that, if exceeded, causes the HVAC system (e.g. controlling the air conditioning system) to enter the energy savings mode described above. The illustrative HVAC interface 1040 also allows a user to enter an outside temperature value 1044 that, if the outside temperature falls below the specified value, causes the HVAC system (e.g. controlling the heating system) to enter the energy savings mode. The illustrative HVAC interface 1040 also allows a user to enter an allowed set point drift 1046, which in this case is set at 6 degrees. Rather than sensing the outside air temperature, particularly when no outside air temperature sensor is available, it may be desirable to detect when the energy savings mode should be entered by monitoring the HVAC duty cycle. For example, as the temperature of the outside air rises in the summer, the duty cycle of the air conditioner will tend to rise. Likewise, as the temperature of the outside air decreases in the winter, the duty cycle of the heater will tend to increase. As shown in Figure 15, an HVAC interface 1050 may be provided to request a duty cycle rate 1052 that, if exceeded, causes the HVAC controller to enter the energy saving mode. For example, if the duty cycle of the HVAC system exceeds 90 percent (preset or user definable) of a maximum (or other defined) duty cycle rate, the energy saving mode can be entered which then allows the current temperature set point for the inside space to move by up a maximum of 6 degrees (preset or user definable) to provide increased energy savings, as described above. Like above, the amount that the HVAC system control actually allows the set point to move may be dependent on the difference between the sensed duty cycle of the HVAC system and the maximum (or other defined) duty cycle rate. For example, and continuing with the above example, if the sensed duty cycle rate is 92 percent of the maximum (or other defined) duty cycle rate, the HVAC system control may only allow the set point of the inside space to move one degree. However, if the sensed duty cycle rate is 98 percent of the maximum (or other defined) duty cycle rate, the HVAC system control may allow the set point of the inside space to move the maximum 6 degrees. The present invention should not be considered limited to the particular examples described above, but rather should be understood to cover all aspects of the invention as fairly set out in the attached claims. Various modifications, equivalent processes, as well as numerous' structures to which the present invention can be applicable will be readily apparent to those of skill in the art to which the present invention is directed upon review of the instant specification.

Claims

WHAT IS CLAIMED IS: 1. A method of modifying a programmable schedule for a controller having a user interface, the method comprising the steps of: providing, simultaneously or sequentially, two or more schedule override choices to a user via the user interface; accepting a selection of one of the two or more schedule override choices from the user via the user interface; and modifying temporarily the schedule based on the user responses provided by the user interface.
2. The method according to claim 1, further comprising returning to a normal program schedule after the temporary modification expires.
3. The method according to claim 1, wherein the providing step comprises providing one or more natural language schedule override choices.
4. The method according to claim 1, wherein the accepting step further comprises accepting a schedule override start time, end time or duration, and temperature.
5. The method according to claim 1, wherein the providing step comprises providing a natural language schedule override choice of "Come Home Early".
6. The method according to claim 1, wherein the providing step comprises providing a natural language schedule override choice of "Come Home Late".
7. The method according to claim 1, wherein the providing step comprises providing a natural language schedule override choice of "Get Up Early".
8. The method according to claim 1, wherein the providing step comprises providing a natural language schedule override choice of "Stay Up Late".
9. The method according to claim 1, wherein the providing step comprises providing a natural language schedule override choice of "Stay Home".
10. The method according to claim 1, wherein the providing step comprises providing a natural language schedule override choice of "On Vacation".
11. A controller comprising: a programmable schedule; and a user interface, adapted and configured to provide two or more schedule override choices to a user, and accepting the selection of one of the two or more schedule override choices from the user; wherein, the schedule is temporarily modified based on the user responses provided by the user interface.
12. The controller according to claim 11, wherein the user interface comprises a touchscreen.
13. The controller according to claim 11, wherein the user interface provides one or more natural language schedule override choices.
14. The controller according to claim 11, wherein the user interface accepts a schedule override start time, end time and temperature.
15. The controller according to claim 11 , wherein the user interface provides a schedule override choice of "Come Home Early".
16. The controller according to claim 11, wherein the user interface provides a schedule override choice of "Come Home Late".
17. The controller according to claim 11, wherein the user interface provides a schedule override choice of "Get Up Early".
18. The controller according to claim 11, wherein the user interface provides a schedule override choice of "Stay Up Late".
19. The controller according to claim 11, wherein the user interface provides a schedule override choice of "Stay Home".
20. The controller according to claim 11, wherein the user interface provides a schedule override choice of "On Vacation".
21. A controller comprising: a programmable schedule; and a user interface, adapted and configured to provide one or more schedule override choices to a user, and accepting the selection of one of the two or more schedule override choices from the user; wherein, the one or more schedule override choices includes a schedule override choice of "Come Home Early" and the schedule is temporarily modified based on the user responses provided by the user interface.
22. A controller comprising: a programmable schedule; and a user interface, adapted and configured to provide one or more schedule override choices to a user, and accepting the selection of one of the two or more schedule override choices from the user; wherein, the one or more schedule override choices includes a schedule override choice of "Come Home Late" and the schedule is temporarily modified based on the user responses provided by the user interface.
23. A controller comprising: a programmable schedule; and a user interface, adapted and configured to provide one or more schedule override choices to a user, and accepting the selection of one of the two or more schedule override choices from the user; wherein, the one or more schedule override choices includes a schedule override choice of "Get Up Early" and the schedule is temporarily modified based on the user responses provided by the user interface.
24. A method of modifying a programmable HVAC schedule for a controller having a user interface, the method comprising the steps of: providing one or more schedule override choices to a user via the user interface; accepting one or more user responses to the one or more schedule override choices from the user via the user interface at a first time; and modifying temporarily the schedule based on the user responses provided by the user interface at a second time; wherein, the second time is later than the first time.
25. The method according to claim 24, wherein the modifying step comprises the second time being later than the first time by a chosen time interval.
26. The method according to claim 25, wherein the modifying step comprises a chosen time interval is at least 10 minutes.
27. The method according to claim 25, wherein the modifying step comprises a chosen time interval is at least 30 minutes.
28. The method according to claim 25, wherein the modifying step comprises a chosen time interval is at least 1 hour.
29. The method according to claim 25, wherein the modifying step comprises a chosen time interval is at least 24 hours.
30. The method according to claim 24, wherein the accepting step further comprises accepting a schedule override start time, end time or duration, and temperature, wherein the start time is the second time.
31. The method according to claim 24, wherein the providing step comprises providing a schedule override choice of "Come Home Early".
32. The method according to claim 24, wherein the providing step comprises providing a schedule override choice of "Come Home Late".
33. The method according to claim 24, wherein the providing step comprises providing a schedule override choice of "Get Up Early".
34. The method according to claim 24, wherein the providing step comprises providing a schedule override choice of "Stay Up Late".
35. The method according to claim 24, wherein the providing step comprises providing a schedule override choice of "Stay Home".
36. The method according to claim 24, wherein the providing step comprises providing a schedule override choice of "On Vacation".
37. A controller comprising: a programmable schedule; and a user interface, adapted and configured to provide one or more schedule override choices to a user, and accept one or more user responses to the one or more schedule override choices from the user at a first time; wherein, the schedule is modified at a second time based on the user responses provided by the user interface and the second time is later than the first time.
38. The controller according to claim 24, wherein the second time being later than the first time by a chosen time interval.
39. The controller according to claim 38, wherein the chosen time interval is at least 10 minutes.
40. The controller according to claim 38, wherein the chosen time interval is at least 30 minutes.
41. The controller according to claim 38 wherein the chosen time interval is at least 1 hour.
42. The controller according to claim 38, wherein the chosen time interval is at least 24 hours.
43. The controller according to claim 37, wherein the user interface accepts a schedule override start time, end time or duration, and temperature, wherein the start time is the second time.
44. A method of modifying a programmable HVAC schedule for a controller having a user interface, the method comprising the steps of: providing one or more schedule comfort override menu choices to a user via the user interface; accepting a start time, end time or duration, and comfort temperature response to the one or more schedule comfort override choices from the user via the user interface at a first time; and modifying the schedule based on the user responses provided by the user interface at a second time; wherein, the second time is later than the first time by a chosen time interval.
45. The method according to claim 44, wherein the providing step comprises providing a schedule comfort override choice of "Come Home Early".
46. The method according to claim 45, wherein the providing step comprises providing a schedule comfort override choice of "Get Up Early".
47. The method according to claim 45, wherein the providing step comprises providing a schedule comfort override choice of "Stay Up Late".
48. The method according to claim 45, wherein the providing step comprises providing a schedule comfort override choice of "Stay Home".
49. The method according to claim 45, wherein the providing step comprises providing an energy savings override choice of "On Vacation".
50. A method of modifying a programmable HVAC schedule for a controller having a user interface, the method comprising the steps of: providing one or more schedule energy saving override menu choices to a user via the user interface; accepting a start time, end time or duration, and energy saving temperature response to the one or more schedule comfort override choices from the user via the user interface at a first time; and modifying the schedule based on the user responses provided by the user interface at a second time; wherein, the second time is later than the first time.
51. The method according to claim 50, wherein the modifying step comprises the second time being later than the first time by a chosen time interval.
52. The method according to claim 50, wherein the providing step comprises providing a schedule energy savings override choice of "Come Home Late".
53. The method according to claim 50, wherein the providing step comprises providing a schedule energy savings override choice of "On Vacation".
54. A method for controlling an HVAC system that is adapted to modify and control at least one environmental condition of an inside space against a first set point, the method comprising: deactivating at least part of the HVAC system to not modify and control at least one environmental condition of the inside space; monitoring the environmental condition in the inside space that the HVAC system is no longer modifying and controlling; and automatically activating the at least one part of the HVAC system to again modify the environmental condition in the inside space if the environmental condition in the inside space passes a second set point, wherein the second set point is different than the first set point.
55. A method according to claim 54 wherein the at least one environmental condition is one or more of temperature and humidity.
56. A method according to claim 55 wherein the second set point is user selectable.
57. A method for controlling an HVAC system that has a fan that normally operates during heating and/or cooling operations, the method comprising: requesting a time indicator from a user; over-riding the fan for a time corresponding to the time indicator provided by the user; and returning to normal fan operation after the time expires.
58. A method for controlling an HVAC system that is adapted to modify and control at least one environmental condition of an inside space of a structure, the structure having at least one window that opens and closes, the method comprising: detecting an indication that a window is or has been opened; deactivating at least part of the HVAC system to not modify and control at least one environmental condition of the inside space; detecting an indication that the window is or has been closed; activating the at least part of the HVAC system that was deactivated to again modify and control the at least one environmental condition of the inside space.
59. A method according to claim 58 wherein the indication that a window is or has been opened is provided by a user.
60. A method according to claim 59 wherein the indication that a window is or has been closed is provided by a user.
61. A method according to claim 58 further comprising the step of providing an alarm if one or more environmental conditions falls outside of a predetermined range while the at least part of the HVAC system is deactivated.
62. A method according to claim 61 wherein the alarm is provided when an inside temperature drifts beyond an open window temperature set point.
63. A method according to claim 61 wherein the alarm is provided when an inside humidity level drifts beyond an open window humidity set point.
64. A method according to claim 61 wherein the alarm is provided when an inside air quality falls outside of an open window air quality range.
65. A method according to claim 61 wherein the alarm is provided when the barometric pressure drops by a predetermined amount.
66. A method for controlling an HVAC system that is adapted to modify and control an environmental condition of an inside space of a structure, the method comprising: controlling the environmental condition using a first control set point; sensing the environmental condition outside of the structure; and adjusting the first control set point if the environmental condition outside of the structure passes a predetermined value.
67. A method according to claim 66 wherein the environmental condition is
temperature.
68. A method according to claim 66 wherein the environmental condition is humidity.
69 A method according to claim 67 wherein the first control set point is adjusted in a manner that reduces the load on the HVAC system.
70. A method according to claim 67 wherein the first control set point is only allowed to be adjusted by a predetermined amount.
71. A method for controlling an HVAC system that is adapted to modify and control an environmental condition of an inside space of a structure, the HVAC system having a duty cycle that varies with the environmental condition outside of the structure, the method comprising: controlling the enviromnental condition in the inside space using a first control set point; sensing the duty cycle of the HVAC system; and adjusting the first control set point if the duty cycle of the HVAC system exceeds a predetermined value.
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Families Citing this family (112)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7114554B2 (en) 2003-12-01 2006-10-03 Honeywell International Inc. Controller interface with multiple day programming
US7891573B2 (en) 2006-03-03 2011-02-22 Micro Metl Corporation Methods and apparatuses for controlling air to a building
US20070289731A1 (en) * 2006-05-30 2007-12-20 Energate Inc. Method for programming and user interface for environmental control
US7784704B2 (en) 2007-02-09 2010-08-31 Harter Robert J Self-programmable thermostat
WO2008154581A2 (en) * 2007-06-11 2008-12-18 Eair, Llc Power supply switch for dual powered thermostat, power supply for dual powered thermostat, and dual powered thermostat
US9182141B2 (en) * 2007-08-03 2015-11-10 Honeywell International Inc. Fan coil thermostat with activity sensing
US9074784B2 (en) 2007-08-03 2015-07-07 Honeywell International Inc. Fan coil thermostat with fan ramping
US20100050108A1 (en) * 2008-08-22 2010-02-25 Lennox Manufacturing, Inc., A Corporation Of Delaware Display apparatus and method for entering a reminder in a control unit for an environmental control system
US20100050075A1 (en) * 2008-08-22 2010-02-25 Lennox Manufacturing, Inc., A Corporation Of Delaware Display apparatus and method for a control unit for an environmental control system
US8346397B2 (en) 2008-09-15 2013-01-01 Johnson Controls Technology Company Airflow adjustment user interfaces
US8527096B2 (en) * 2008-10-24 2013-09-03 Lennox Industries Inc. Programmable controller and a user interface for same
US8661165B2 (en) 2008-10-27 2014-02-25 Lennox Industries, Inc. Device abstraction system and method for a distributed architecture heating, ventilation and air conditioning system
US9261888B2 (en) 2008-10-27 2016-02-16 Lennox Industries Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US9632490B2 (en) 2008-10-27 2017-04-25 Lennox Industries Inc. System and method for zoning a distributed architecture heating, ventilation and air conditioning network
US8655490B2 (en) 2008-10-27 2014-02-18 Lennox Industries, Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US8977794B2 (en) 2008-10-27 2015-03-10 Lennox Industries, Inc. Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US8442693B2 (en) 2008-10-27 2013-05-14 Lennox Industries, Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US8433446B2 (en) 2008-10-27 2013-04-30 Lennox Industries, Inc. Alarm and diagnostics system and method for a distributed-architecture heating, ventilation and air conditioning network
US9678486B2 (en) 2008-10-27 2017-06-13 Lennox Industries Inc. Device abstraction system and method for a distributed-architecture heating, ventilation and air conditioning system
US8352081B2 (en) 2008-10-27 2013-01-08 Lennox Industries Inc. Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US9432208B2 (en) 2008-10-27 2016-08-30 Lennox Industries Inc. Device abstraction system and method for a distributed architecture heating, ventilation and air conditioning system
US8892797B2 (en) 2008-10-27 2014-11-18 Lennox Industries Inc. Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US8600559B2 (en) 2008-10-27 2013-12-03 Lennox Industries Inc. Method of controlling equipment in a heating, ventilation and air conditioning network
US8600558B2 (en) 2008-10-27 2013-12-03 Lennox Industries Inc. System recovery in a heating, ventilation and air conditioning network
US8239066B2 (en) * 2008-10-27 2012-08-07 Lennox Industries Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US8437878B2 (en) 2008-10-27 2013-05-07 Lennox Industries Inc. Alarm and diagnostics system and method for a distributed architecture heating, ventilation and air conditioning network
US8615326B2 (en) 2008-10-27 2013-12-24 Lennox Industries Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US8774210B2 (en) 2008-10-27 2014-07-08 Lennox Industries, Inc. Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US8788100B2 (en) 2008-10-27 2014-07-22 Lennox Industries Inc. System and method for zoning a distributed-architecture heating, ventilation and air conditioning network
US8994539B2 (en) 2008-10-27 2015-03-31 Lennox Industries, Inc. Alarm and diagnostics system and method for a distributed-architecture heating, ventilation and air conditioning network
US8452906B2 (en) 2008-10-27 2013-05-28 Lennox Industries, Inc. Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US8452456B2 (en) 2008-10-27 2013-05-28 Lennox Industries Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US9152155B2 (en) 2008-10-27 2015-10-06 Lennox Industries Inc. Device abstraction system and method for a distributed-architecture heating, ventilation and air conditioning system
US8655491B2 (en) 2008-10-27 2014-02-18 Lennox Industries Inc. Alarm and diagnostics system and method for a distributed architecture heating, ventilation and air conditioning network
US8694164B2 (en) 2008-10-27 2014-04-08 Lennox Industries, Inc. Interactive user guidance interface for a heating, ventilation and air conditioning system
US8295981B2 (en) 2008-10-27 2012-10-23 Lennox Industries Inc. Device commissioning in a heating, ventilation and air conditioning network
US9377768B2 (en) 2008-10-27 2016-06-28 Lennox Industries Inc. Memory recovery scheme and data structure in a heating, ventilation and air conditioning network
US8463442B2 (en) 2008-10-27 2013-06-11 Lennox Industries, Inc. Alarm and diagnostics system and method for a distributed architecture heating, ventilation and air conditioning network
US8437877B2 (en) 2008-10-27 2013-05-07 Lennox Industries Inc. System recovery in a heating, ventilation and air conditioning network
US9268345B2 (en) 2008-10-27 2016-02-23 Lennox Industries Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US8855825B2 (en) 2008-10-27 2014-10-07 Lennox Industries Inc. Device abstraction system and method for a distributed-architecture heating, ventilation and air conditioning system
US8564400B2 (en) 2008-10-27 2013-10-22 Lennox Industries, Inc. Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US8762666B2 (en) 2008-10-27 2014-06-24 Lennox Industries, Inc. Backup and restoration of operation control data in a heating, ventilation and air conditioning network
US8874815B2 (en) 2008-10-27 2014-10-28 Lennox Industries, Inc. Communication protocol system and method for a distributed architecture heating, ventilation and air conditioning network
US8463443B2 (en) 2008-10-27 2013-06-11 Lennox Industries, Inc. Memory recovery scheme and data structure in a heating, ventilation and air conditioning network
US8548630B2 (en) 2008-10-27 2013-10-01 Lennox Industries, Inc. Alarm and diagnostics system and method for a distributed-architecture heating, ventilation and air conditioning network
US8352080B2 (en) 2008-10-27 2013-01-08 Lennox Industries Inc. Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US8543243B2 (en) 2008-10-27 2013-09-24 Lennox Industries, Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US9325517B2 (en) 2008-10-27 2016-04-26 Lennox Industries Inc. Device abstraction system and method for a distributed-architecture heating, ventilation and air conditioning system
US9651925B2 (en) 2008-10-27 2017-05-16 Lennox Industries Inc. System and method for zoning a distributed-architecture heating, ventilation and air conditioning network
US8255086B2 (en) 2008-10-27 2012-08-28 Lennox Industries Inc. System recovery in a heating, ventilation and air conditioning network
US8560125B2 (en) 2008-10-27 2013-10-15 Lennox Industries Communication protocol system and method for a distributed-architecture heating, ventilation and air conditioning network
US8725298B2 (en) 2008-10-27 2014-05-13 Lennox Industries, Inc. Alarm and diagnostics system and method for a distributed architecture heating, ventilation and conditioning network
US8798796B2 (en) 2008-10-27 2014-08-05 Lennox Industries Inc. General control techniques in a heating, ventilation and air conditioning network
US8744629B2 (en) 2008-10-27 2014-06-03 Lennox Industries Inc. System and method of use for a user interface dashboard of a heating, ventilation and air conditioning network
US8802981B2 (en) 2008-10-27 2014-08-12 Lennox Industries Inc. Flush wall mount thermostat and in-set mounting plate for a heating, ventilation and air conditioning system
USD648642S1 (en) 2009-10-21 2011-11-15 Lennox Industries Inc. Thin cover plate for an electronic system controller
USD648641S1 (en) 2009-10-21 2011-11-15 Lennox Industries Inc. Thin cover plate for an electronic system controller
US8326466B2 (en) * 2010-01-22 2012-12-04 Honeywell International Inc. HVAC control with utility time of day pricing support
US8538586B2 (en) * 2010-01-22 2013-09-17 Honeywell International Inc. HVAC control with utility time of day pricing support
US8185245B2 (en) * 2010-01-22 2012-05-22 Honeywell International Inc. HVAC control with utility time of day pricing support
US20110190910A1 (en) * 2010-02-03 2011-08-04 Ecobee Inc. System and method for web-enabled enterprise environment control and energy management
US8260444B2 (en) 2010-02-17 2012-09-04 Lennox Industries Inc. Auxiliary controller of a HVAC system
US8204628B2 (en) * 2010-03-24 2012-06-19 Honeywell International Inc. Setpoint recovery with utility time of day pricing
US8727611B2 (en) 2010-11-19 2014-05-20 Nest Labs, Inc. System and method for integrating sensors in thermostats
US9104211B2 (en) 2010-11-19 2015-08-11 Google Inc. Temperature controller with model-based time to target calculation and display
US8918219B2 (en) 2010-11-19 2014-12-23 Google Inc. User friendly interface for control unit
US9489062B2 (en) 2010-09-14 2016-11-08 Google Inc. User interfaces for remote management and control of network-connected thermostats
US9459018B2 (en) 2010-11-19 2016-10-04 Google Inc. Systems and methods for energy-efficient control of an energy-consuming system
US9453655B2 (en) 2011-10-07 2016-09-27 Google Inc. Methods and graphical user interfaces for reporting performance information for an HVAC system controlled by a self-programming network-connected thermostat
US8850348B2 (en) 2010-12-31 2014-09-30 Google Inc. Dynamic device-associated feedback indicative of responsible device usage
US10346275B2 (en) 2010-11-19 2019-07-09 Google Llc Attributing causation for energy usage and setpoint changes with a network-connected thermostat
US8195313B1 (en) 2010-11-19 2012-06-05 Nest Labs, Inc. Thermostat user interface
US9092039B2 (en) 2010-11-19 2015-07-28 Google Inc. HVAC controller with user-friendly installation features with wire insertion detection
US11334034B2 (en) 2010-11-19 2022-05-17 Google Llc Energy efficiency promoting schedule learning algorithms for intelligent thermostat
US9256230B2 (en) 2010-11-19 2016-02-09 Google Inc. HVAC schedule establishment in an intelligent, network-connected thermostat
US9075419B2 (en) 2010-11-19 2015-07-07 Google Inc. Systems and methods for a graphical user interface of a controller for an energy-consuming system having spatially related discrete display elements
US10241527B2 (en) 2010-11-19 2019-03-26 Google Llc Thermostat graphical user interface
US9552002B2 (en) 2010-11-19 2017-01-24 Google Inc. Graphical user interface for setpoint creation and modification
WO2012112415A1 (en) * 2011-02-14 2012-08-23 Carrier Corporation System and method for establishing activity based environmental control
US9115908B2 (en) 2011-07-27 2015-08-25 Honeywell International Inc. Systems and methods for managing a programmable thermostat
USD666510S1 (en) 2011-08-17 2012-09-04 Honeywell International Inc. Thermostat housing
US20130085608A1 (en) * 2011-09-30 2013-04-04 Siemens Aktiengesellschaft System and method for providing a simulated window utilizing environmental controls operable within a building automation system
US9222693B2 (en) 2013-04-26 2015-12-29 Google Inc. Touchscreen device user interface for remote control of a thermostat
US8893032B2 (en) 2012-03-29 2014-11-18 Google Inc. User interfaces for HVAC schedule display and modification on smartphone or other space-limited touchscreen device
EP2769279B1 (en) 2011-10-21 2018-12-26 Google LLC Energy efficiency promoting schedule learning algorithms for intelligent thermostat
CN103890667B (en) 2011-10-21 2017-02-15 谷歌公司 User-friendly, network connected learning thermostat and related systems and methods
EP2769280B1 (en) 2011-10-21 2023-04-12 Google LLC Automated control-schedule acquisition within an intelligent controller
US8878854B2 (en) * 2011-12-13 2014-11-04 Lennox Industries Inc. Heating, ventilation and air conditioning system user interface having adjustable fonts and method of operation thereof
US20130147812A1 (en) * 2011-12-13 2013-06-13 Lennox Industries Inc. Heating, ventilation and air conditioning system user interface having proportional animation graphics and method of operation thereof
US9261863B2 (en) 2012-01-23 2016-02-16 Earth Networks, Inc. Optimizing and controlling the energy consumption of a building
US10354345B2 (en) 2012-01-23 2019-07-16 Whisker Labs, Inc. Optimizing and controlling the energy consumption of a building
US10222085B2 (en) 2012-02-29 2019-03-05 Carrier Corporation Energy recovery ventilator with reduced power consumption
CA2868844C (en) 2012-03-29 2021-07-06 Nest Labs, Inc. Processing and reporting usage information for an hvac system controlled by a network-connected thermostat
USD678084S1 (en) 2012-06-05 2013-03-19 Honeywell International Inc. Thermostat housing
US10345765B2 (en) 2012-09-14 2019-07-09 Ademco Inc. System and method of overriding a scheduled task in an intrusion system to reduce false alarms
US20140142763A1 (en) * 2012-11-21 2014-05-22 Energate Inc. Hold management in an environmental controller
EP2775369B1 (en) * 2013-03-08 2020-02-19 Siemens Schweiz AG Control and regulation of a room comfort value
US9446162B2 (en) * 2013-07-10 2016-09-20 Scentair Technologies, Llc Scent schedule based on relatedness of scent delivery devices in a scent delivery system
USD720633S1 (en) 2013-10-25 2015-01-06 Honeywell International Inc. Thermostat
EP3097534B1 (en) * 2014-01-24 2021-05-05 Schneider Electric Usa, Inc. Dynamic adaptable environment resource management controller apparatuses, methods and systems
JP2017528788A (en) * 2014-07-04 2017-09-28 コーニンクレッカ フィリップス エヌ ヴェKoninklijke Philips N.V. Air quality alarm system and method
CN107208919B (en) * 2015-04-02 2020-01-17 三菱电机株式会社 Air conditioning apparatus
US9702582B2 (en) 2015-10-12 2017-07-11 Ikorongo Technology, LLC Connected thermostat for controlling a climate system based on a desired usage profile in comparison to other connected thermostats controlling other climate systems
US10852018B1 (en) * 2016-06-21 2020-12-01 GoldCore Design Systems, LLC System and method for energy use control in an environmental control system
US10317100B2 (en) 2016-07-22 2019-06-11 Ademco Inc. Simplified schedule programming of an HVAC controller
US11668480B2 (en) 2016-09-09 2023-06-06 Trane International Inc. Sleep enhancement in an HVAC system
US10900687B2 (en) 2018-10-31 2021-01-26 Trane International Inc. Flexible scheduling HVAC graphical user interface and methods of use thereof
US11946565B2 (en) 2021-02-25 2024-04-02 Hayward Industries, Inc. Valve assembly
US11137780B1 (en) 2021-02-25 2021-10-05 Valve Technologies, LLC Fluid distribution manifold
US11204106B1 (en) 2021-02-25 2021-12-21 Valve Technologies, LLC Valve assembly
US11579635B2 (en) 2021-04-22 2023-02-14 Hayward Industries, Inc. Systems and methods for controlling operations of a fluid distribution system

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5230482A (en) * 1991-12-20 1993-07-27 Honeywell Inc. Electronic time thermostat with a temporary next period adjustment means
EP0559600A2 (en) * 1992-03-03 1993-09-08 United Technologies Electronic Controls, Inc. Residential heating and air conditioning control system
EP0636961A1 (en) * 1993-07-30 1995-02-01 Carrier Corporation Setback control for HVAC system
US6318639B1 (en) * 1999-10-15 2001-11-20 Emerson Electric Co. Thermostat with temporary fan on function

Family Cites Families (136)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4058253A (en) * 1975-03-19 1977-11-15 Michael E. Munk Method and apparatus for conservation of energy and containment and evacuation of smoke in a high rise building
US4089462A (en) 1976-02-19 1978-05-16 International Telephone & Telegraph Corporation Temperature control system including K-Factor adjustment
US4079366A (en) * 1976-05-20 1978-03-14 Gim Wong Electronic timer and thermoswitch device
US4206872A (en) * 1977-03-17 1980-06-10 Levine Michael R Electronic thermostat
US4289272A (en) 1978-03-31 1981-09-15 Matsushita Electric Industrial Co., Ltd. Temperature control apparatus
US4174807A (en) 1978-08-10 1979-11-20 Kimble George D Autocycling control circuit for heating and/or air conditioning systems
US4224615A (en) * 1978-09-14 1980-09-23 Texas Instruments Incorporated Method of using a liquid crystal display device as a data input device
US4298946A (en) 1978-12-18 1981-11-03 Texas Instruments Incorporated Electronically controlled programmable digital thermostat
US4264034A (en) * 1979-08-16 1981-04-28 Hyltin Tom M Digital thermostat
US4337822A (en) * 1979-08-16 1982-07-06 Hyltin Tom M Digital thermostat
US4308991A (en) * 1980-07-07 1982-01-05 Emerson Electric Co. Programmable electronic thermostat
US4386649A (en) * 1980-07-15 1983-06-07 Nuclear Systems, Inc. Programmable thermostatic control device
US4382544A (en) * 1980-08-08 1983-05-10 J. T. Stewart Associates, Inc. Energy management system with programmable thermostat
US4388692A (en) * 1980-09-03 1983-06-14 Texas Instruments Incorporated Electronically controlled programmable digital thermostat having variable threshold hysteresis with time
US4442972A (en) * 1981-09-14 1984-04-17 Texas Instruments Incorporated Electrically controlled programmable digital thermostat and method for regulating the operation of multistage heating and cooling systems
US4431134A (en) * 1982-11-08 1984-02-14 Microcomm Corporation Digital thermostat with protection against power interruption
US4479604A (en) * 1982-12-30 1984-10-30 Didner Robert S Zoned control system
US4717333A (en) * 1983-01-21 1988-01-05 Advanced Mechanical Technology, Inc. Burner ignition system
US4446913A (en) * 1983-07-05 1984-05-08 The Trane Company Auto changeover thermostat with means for handling temperature entry errors
DE3334117A1 (en) 1983-09-21 1985-04-04 Siemens Ag Method for inputting information items for process control with the aid of an input display interacting with an input pen
US4506827A (en) * 1983-10-17 1985-03-26 Johnson Service Company Battery powered thermostat
US4621336A (en) 1984-09-17 1986-11-04 Emerson Electric Co. Visual display of time schedule in a programmable thermostat
US4777350A (en) * 1984-10-09 1988-10-11 Ranco Electronics Division Heater with duty cycle controller
US4606401A (en) * 1985-03-08 1986-08-19 Honeywell, Inc. Programmable thermostat
US4622544A (en) 1985-05-13 1986-11-11 Lifeline Systems, Inc. Low battery indicator
JPS62266348A (en) * 1985-12-27 1987-11-19 Mitsubishi Electric Corp Air conditioner
US4725001A (en) * 1986-10-17 1988-02-16 Arnold D. Berkeley Electronic thermostat employing adaptive cycling
US4948040A (en) * 1987-06-11 1990-08-14 Mitsubishi Denki Kabushiki Kaisha Air conditioning system
US4918439A (en) * 1987-06-23 1990-04-17 Cl 9, Inc. Remote control device
US4837731A (en) * 1987-07-07 1989-06-06 Honeywell Incorporated System for time programming of states by communicating time data via a continuously rotatable potentiometer
JP2989607B2 (en) * 1988-03-30 1999-12-13 キヤノン株式会社 Information input device
US5012973A (en) * 1988-08-26 1991-05-07 Hunter Fan Company Window air conditioning unit having a built-in programmable thermostat with remote temperature sensor
US4881686A (en) 1988-10-13 1989-11-21 Hunter-Melnor, Inc. Temperature recovery display device for an electronic programmable thermostat
US5038851A (en) * 1988-10-13 1991-08-13 Hunter Fan Company Electronic programmable thermostat for a heating and cooling system with an oscillation control mechanism
US5161606A (en) 1988-12-09 1992-11-10 Arnold D. Berkeley Interactive electronic thermostat with minimum and maximum temperature thermal limit switches
US5065813A (en) 1988-12-09 1991-11-19 Arnold D. Berkeley Interactive electronic thermostat with installation assistance
US5086385A (en) * 1989-01-31 1992-02-04 Custom Command Systems Expandable home automation system
US5140310A (en) * 1989-11-29 1992-08-18 Motorola, Inc. Interrupting low battery indicator
US5289362A (en) * 1989-12-15 1994-02-22 Johnson Service Company Energy control system
JPH03245180A (en) * 1990-02-23 1991-10-31 Toshiba Corp Brightness controller for panel display
US5053752A (en) * 1990-02-26 1991-10-01 Jack Epstein Smoke detector and method using elongated flexible low battery condition indicator member
US5042997A (en) * 1990-07-27 1991-08-27 Rhodes James A Air control system providing healthful enclosed environment
JP3118819B2 (en) * 1990-08-24 2000-12-18 ソニー株式会社 Remote control system
US5259553A (en) * 1991-04-05 1993-11-09 Norm Pacific Automation Corp. Interior atmosphere control system
US5088645A (en) * 1991-06-24 1992-02-18 Ian Bell Self-programmable temperature control system for a heating and cooling system
US5279458A (en) * 1991-08-12 1994-01-18 Carrier Corporation Network management control
US5238184A (en) * 1991-09-30 1993-08-24 Honeywell Inc. Thermostat having simple battery level detection
US5170935A (en) 1991-11-27 1992-12-15 Massachusetts Institute Of Technology Adaptable control of HVAC systems
US5720658A (en) * 1992-02-11 1998-02-24 Belusa; Manfred L. Space pressurization control system for high containment laboratories
US5761083A (en) * 1992-03-25 1998-06-02 Brown, Jr.; Robert J. Energy management and home automation system
US5259445A (en) * 1992-07-13 1993-11-09 The Detroit Edison Company Control for dual heating system including a heat pump and furnace
US5257736A (en) * 1992-08-06 1993-11-02 Donald Roy Self-regulating air ventilation apparatus
US5329991A (en) * 1992-11-05 1994-07-19 Hunter Fan Company Pre-programmed electronic programmable thermostat
US5293755A (en) 1992-12-09 1994-03-15 Thomas Charles V Air conditioning load management control system
ES2142932T3 (en) 1993-01-05 2000-05-01 Honeywell Inc MULTIPLE PURPOSE USER INTERFACE.
US5818428A (en) * 1993-01-21 1998-10-06 Whirlpool Corporation Appliance control system with configurable interface
US6108614A (en) * 1993-01-22 2000-08-22 Diablo Research Corporation System and method for serial communication between a central unit and a plurality of remote units
US5251813A (en) * 1993-03-25 1993-10-12 Emerson Electric Co. Indication of low battery voltage condition by altering of temperature setpoint
US5344068A (en) * 1993-04-16 1994-09-06 Staefa Control System, Inc. Dynamically controlled environmental control system
EP0626635B1 (en) * 1993-05-24 2003-03-05 Sun Microsystems, Inc. Improved graphical user interface with method for interfacing to remote devices
US6116512A (en) * 1997-02-19 2000-09-12 Dushane; Steven D. Wireless programmable digital thermostat system
US5348078A (en) * 1993-07-08 1994-09-20 Steven D. Dushane Dwelling heating and air conditioning system
JP3106401B2 (en) 1993-07-26 2000-11-06 インターナショナル・ビジネス・マシーンズ・コーポレ−ション Information processing system
US5566879A (en) * 1993-12-06 1996-10-22 Comptel Domotique Inc. System for centralized controlling of a plurality of temperature regulating devices
US5395042A (en) * 1994-02-17 1995-03-07 Smart Systems International Apparatus and method for automatic climate control
US5482209A (en) * 1994-06-01 1996-01-09 Honeywell Inc. Method and means for programming a programmable electronic thermostat
US5526422A (en) * 1994-06-20 1996-06-11 At&T Corp. System and method for cleaning the display screen of a touch screen device
US5971597A (en) * 1995-03-29 1999-10-26 Hubbell Corporation Multifunction sensor and network sensor system
WO1997011448A1 (en) 1995-09-18 1997-03-27 Intellinet User interface for home automation system
US5570837A (en) 1995-10-18 1996-11-05 Emerson Electric Co. Programmable digital thermostat with means for enabling temporary connection of a battery thereto
US6121875A (en) * 1996-02-08 2000-09-19 Inform 2000 Monitoring and alerting system for buildings
AUPN912096A0 (en) * 1996-04-04 1996-05-02 Garrick, Corinne Marie Jeanette Fire detector silenceable low battery pre-alarm
AT404997B (en) 1996-04-17 1999-04-26 Erwin Hanazeder DEVICE FOR CONTROLLING A HEATING, IN PARTICULAR FOR A RESIDENTIAL HOUSE
US5735134A (en) * 1996-05-30 1998-04-07 Massachusetts Institute Of Technology Set point optimization in vapor compression cycles
US5782296A (en) * 1996-06-14 1998-07-21 Hunter Fan Company Auto-programmable electronic thermostat
US5673850A (en) * 1996-07-22 1997-10-07 Lux Products Corporation Programmable thermostat with rotary dial program setting
US6140987A (en) * 1996-09-18 2000-10-31 Intellinet, Inc. User interface for home automation system
US5901183A (en) * 1996-09-25 1999-05-04 Magellan Corporation Signal correlation technique for a receiver of a spread spectrum signal including a pseudo-random noise code that reduces errors when a multipath signal is present
US6192282B1 (en) * 1996-10-01 2001-02-20 Intelihome, Inc. Method and apparatus for improved building automation
US5947372A (en) * 1996-11-01 1999-09-07 Tiernan; Teresa Conaty Combined fuel level monitor and thermostat
US5902183A (en) * 1996-11-15 1999-05-11 D'souza; Melanius Process and apparatus for energy conservation in buildings using a computer controlled ventilation system
US6073110A (en) * 1997-07-22 2000-06-06 Siemens Building Technologies, Inc. Activity based equipment scheduling method and system
US5873519A (en) * 1997-08-19 1999-02-23 Heatcraft Inc. Electronic thermostat with multiple program options
US5924486A (en) * 1997-10-29 1999-07-20 Tecom, Inc. Environmental condition control and energy management system and method
US6059195A (en) * 1998-01-23 2000-05-09 Tridelta Industries, Inc. Integrated appliance control system
US5937942A (en) * 1998-03-17 1999-08-17 Hunter Fan Company Electronic programmable thermostat with temporary reset
US6032867A (en) * 1998-04-21 2000-03-07 Dushane; Steve Flat plate thermostat and wall mounting method
US6215405B1 (en) 1998-04-23 2001-04-10 Digital Security Controls Ltd. Programmable temperature sensor for security system
US6478084B1 (en) * 1998-04-24 2002-11-12 Steven Winter Associates, Inc. Energy saving thermostat with a variable deadband
US6208331B1 (en) * 1998-07-01 2001-03-27 Ericsson Inc. Cleaning touchscreens
US6196468B1 (en) * 1998-07-24 2001-03-06 Dennis Guy Young Air conditioning and heating environmental control sensing system
EP0985994A1 (en) 1998-09-11 2000-03-15 Electrowatt Technology Innovation AG Method and device for inputting process parameters
US6275166B1 (en) * 1999-01-19 2001-08-14 Architron Systems, Inc. RF remote appliance control/monitoring system
US6351693B1 (en) * 1999-01-22 2002-02-26 Honeywell International Inc. Computerized system for controlling thermostats
US6398118B1 (en) * 1999-01-29 2002-06-04 Howard B. Rosen Thermostat incorporating thin film carbon dioxide sensor and environmental control system
US6290140B1 (en) * 1999-03-04 2001-09-18 Energyiq Systems, Inc. Energy management system and method
GB2353184A (en) * 1999-08-13 2001-02-14 Nokia Mobile Phones Ltd Disabling a touch sensitive display screen when a call is established
US6310554B1 (en) * 1999-08-13 2001-10-30 Wade J. Carrell Severe weather detection apparatus and method of detecting and warning of severe weather conditions
US6236326B1 (en) * 1999-10-29 2001-05-22 Vtech Telecommunications, Ltd. Method and apparatus for intelligently signaling a battery charge condition in a wireless telephone
US6315211B1 (en) 1999-12-03 2001-11-13 Emerson Electric Co. Hardwired or battery powered digital thermostat
US20020011923A1 (en) 2000-01-13 2002-01-31 Thalia Products, Inc. Appliance Communication And Control System And Appliance For Use In Same
US6270651B1 (en) * 2000-02-04 2001-08-07 Abetif Essalik Gas component sensor
US6330806B1 (en) 2000-03-03 2001-12-18 York International Corporation System and method for controlling an HVAC system using a flash mini-card
US20010029585A1 (en) * 2000-03-13 2001-10-11 Theodore Simon Integrated security and communications system with secure communications link
NL1014792C2 (en) 2000-03-30 2001-10-02 Univ Delft Tech Interface unit.
US6580950B1 (en) * 2000-04-28 2003-06-17 Echelon Corporation Internet based home communications system
US6468290B1 (en) 2000-06-05 2002-10-22 Scimed Life Systems, Inc. Two-planar vena cava filter with self-centering capabilities
IT1315103B1 (en) * 2000-07-11 2003-02-03 Invensys Climate Controls Spa ELECTRONIC DEVICE FOR SETTING AND CONDITIONING ROOM TEMPERATURES AND RELATED SETTING METHOD
WO2002033327A1 (en) * 2000-10-16 2002-04-25 Daikin Industries,Ltd. Setback timer of air conditioner, air conditioning system, and method of setting setback timer display
US6595430B1 (en) * 2000-10-26 2003-07-22 Honeywell International Inc. Graphical user interface system for a thermal comfort controller
US6621507B1 (en) * 2000-11-03 2003-09-16 Honeywell International Inc. Multiple language user interface for thermal comfort controller
US6731992B1 (en) * 2000-11-22 2004-05-04 Atlantic Software, Inc. Remotely accessible energy control system
US6478233B1 (en) 2000-12-29 2002-11-12 Honeywell International Inc. Thermal comfort controller having an integral energy savings estimator
US20030034897A1 (en) * 2001-08-20 2003-02-20 Shamoon Charles G. Thermostat and remote control apparatus
US20030034898A1 (en) * 2001-08-20 2003-02-20 Shamoon Charles G. Thermostat and remote control system and method
US7269668B2 (en) * 2001-09-05 2007-09-11 Redford Darrell J Mobile, seamless, temporary, wireless network access apparatus and method
US6587338B2 (en) * 2001-12-13 2003-07-01 Carter Group, Inc. Electronic controller modules and methods for making and using same
US6824069B2 (en) * 2002-01-30 2004-11-30 Howard B. Rosen Programmable thermostat system employing a touch screen unit for intuitive interactive interface with a user
US6786421B2 (en) * 2002-01-30 2004-09-07 Howard Rosen Programmable thermostat including a feature for providing a running total for the cost of energy consumed during a given period for heating and/or cooling a conditioned space
US6789739B2 (en) * 2002-02-13 2004-09-14 Howard Rosen Thermostat system with location data
US6619555B2 (en) * 2002-02-13 2003-09-16 Howard B. Rosen Thermostat system communicating with a remote correspondent for receiving and displaying diverse information
US6581846B1 (en) * 2002-03-06 2003-06-24 Howard B. Rosen Thermostat including a vacation mode in which electrical devices within and proximate the conditioned space are operated by the thermostat to provide an occupied appearance
US20030216837A1 (en) * 2002-03-08 2003-11-20 Daniel Reich Artificial environment control system
CA2480551A1 (en) * 2002-03-28 2003-10-09 Robertshaw Controls Company Energy management system and method
US6578770B1 (en) * 2002-04-09 2003-06-17 Howard B. Rosen Thermostat incorporating a carbon dioxide sensor suitable for reading using potentiostat techniques, and environmental control system incorporating such thermostat
EP1372238B1 (en) * 2002-06-13 2018-06-06 Whirlpool Corporation Total home energy management system
US6622926B1 (en) * 2002-10-16 2003-09-23 Emerson Electric Co. Thermostat with air conditioning load management feature
US6783079B2 (en) * 2003-02-18 2004-08-31 Emerson Electric Co. Thermostat with one button programming feature
US6983889B2 (en) * 2003-03-21 2006-01-10 Home Comfort Zones, Inc. Forced-air zone climate control system for existing residential houses
US7146253B2 (en) * 2003-03-24 2006-12-05 Smartway Solutions, Inc. Device and method for interactive programming of a thermostat
US20040262410A1 (en) 2003-04-11 2004-12-30 Hull Gerry G. Graphical thermostat and sensor
US6988671B2 (en) * 2003-05-05 2006-01-24 Lux Products Corporation Programmable thermostat incorporating air quality protection
US6886754B2 (en) * 2003-06-03 2005-05-03 Tim Simon, Inc. Thermostat operable from various power sources
US7302642B2 (en) 2003-06-03 2007-11-27 Tim Simon, Inc. Thermostat with touch-screen display
US7010363B2 (en) * 2003-06-13 2006-03-07 Battelle Memorial Institute Electrical appliance energy consumption control methods and electrical energy consumption systems
US7000849B2 (en) * 2003-11-14 2006-02-21 Ranco Incorporated Of Delaware Thermostat with configurable service contact information and reminder timers

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5230482A (en) * 1991-12-20 1993-07-27 Honeywell Inc. Electronic time thermostat with a temporary next period adjustment means
EP0559600A2 (en) * 1992-03-03 1993-09-08 United Technologies Electronic Controls, Inc. Residential heating and air conditioning control system
EP0636961A1 (en) * 1993-07-30 1995-02-01 Carrier Corporation Setback control for HVAC system
US6318639B1 (en) * 1999-10-15 2001-11-20 Emerson Electric Co. Thermostat with temporary fan on function

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