WO1998044596A1 - Stacked electrical connector with visual indicators - Google Patents

Stacked electrical connector with visual indicators Download PDF

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Publication number
WO1998044596A1
WO1998044596A1 PCT/US1998/006547 US9806547W WO9844596A1 WO 1998044596 A1 WO1998044596 A1 WO 1998044596A1 US 9806547 W US9806547 W US 9806547W WO 9844596 A1 WO9844596 A1 WO 9844596A1
Authority
WO
WIPO (PCT)
Prior art keywords
leads
indicator
contacts
electrical connector
connector
Prior art date
Application number
PCT/US1998/006547
Other languages
French (fr)
Inventor
Michael P. Derstine
Albert D. Willette
Randy G. Simmons
Original Assignee
The Whitaker Corporation
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 The Whitaker Corporation filed Critical The Whitaker Corporation
Priority to AU69476/98A priority Critical patent/AU6947698A/en
Priority to GB9923320A priority patent/GB2338357B/en
Priority to JP54200998A priority patent/JP2001519077A/en
Publication of WO1998044596A1 publication Critical patent/WO1998044596A1/en

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/66Structural association with built-in electrical component
    • H01R13/717Structural association with built-in electrical component with built-in light source
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/66Structural association with built-in electrical component
    • H01R13/717Structural association with built-in electrical component with built-in light source
    • H01R13/7175Light emitting diodes (LEDs)
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R12/00Structural associations of a plurality of mutually-insulated electrical connecting elements, specially adapted for printed circuits, e.g. printed circuit boards [PCB], flat or ribbon cables, or like generally planar structures, e.g. terminal strips, terminal blocks; Coupling devices specially adapted for printed circuits, flat or ribbon cables, or like generally planar structures; Terminals specially adapted for contact with, or insertion into, printed circuits, flat or ribbon cables, or like generally planar structures
    • H01R12/70Coupling devices
    • H01R12/71Coupling devices for rigid printing circuits or like structures
    • H01R12/72Coupling devices for rigid printing circuits or like structures coupling with the edge of the rigid printed circuits or like structures
    • H01R12/722Coupling devices for rigid printing circuits or like structures coupling with the edge of the rigid printed circuits or like structures coupling devices mounted on the edge of the printed circuits
    • H01R12/727Coupling devices presenting arrays of contacts
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01RELECTRICALLY-CONDUCTIVE CONNECTIONS; STRUCTURAL ASSOCIATIONS OF A PLURALITY OF MUTUALLY-INSULATED ELECTRICAL CONNECTING ELEMENTS; COUPLING DEVICES; CURRENT COLLECTORS
    • H01R13/00Details of coupling devices of the kinds covered by groups H01R12/70 or H01R24/00 - H01R33/00
    • H01R13/66Structural association with built-in electrical component
    • H01R13/6608Structural association with built-in electrical component with built-in single component
    • H01R13/6641Structural association with built-in electrical component with built-in single component with diode

Definitions

  • This invention is related to electrical connectors and especially to electrical connectors used to connect cables to printed circuit board, such as serial devices that are connected to computers, computer networking devices, or peripherals. More specifically, this invention is related to modular jacks and to the use of LED's to provide a visual indication of the communication status for the circuit connected by the modular jack.
  • a simple visual indication provided by an LED located adjacent to an input/output connector is often desirable. For example, an indication that a device, or its input cable, has been properly wired or connected is helpful to insure proper installation.
  • a flashing LED is often useful as a means to show that communications is occurring on that circuit. This visual indicator can help a user diagnose a problem without requiring the assistance of a specialist. For example, the absence of a flashing indicator on a modem will show that communication has not been properly established or that a connection has been lost.
  • U.S. Patent 4,978,317 shows an RJ-45 jack with two light emitting diodes mounted on the mating face of the jack.
  • the LED's are mounted along the side of the jack mating opening opposite from which the mating ends of the terminals are attached.
  • the LED leads must extend around two sides of the jack and protrude from the printed circuit board mounting face of the jack. These LED leads appear to require a length that is greater than the length of leads typically employed for many through hole LED's. For multiple position or stacked jacks, the LED lead length would have to be even greater for a device constructed in this manner.
  • U.S. Patent 5,601,451 shows another approach in which the LED's are mounted adjacent to the printed circuit board. Clearly however, this approach is limited to a single position modular jack and does not offer a solution to providing multiple LED's for each of multiple jacks mounted in a stacked configuration or included in a single housing mounted on the edge of a printed circuit board.
  • Still another approach that has been suggested is the use of LED's mounted on upstanding flexible films that are mounted on a printed circuit board in front of the connector or jack. This requires the addition of a separate piece and requires the film be positioned in registry with the mating openings in a printed circuit board. Separately mounting component in this manner is further complicated when stacked connectors, employing jacks stacked one above the other, are employed.
  • the electrical connector of the instant invention includes an indicator, such as a light emitting diode on the front or mating face of the electrical connector.
  • an indicator such as a light emitting diode on the front or mating face of the electrical connector.
  • multiple LED's can be placed on the front of the connector. Each LED is positioned in a cavity on the connector, and the leads from the LED body extend into housing passages extending from the front of the connector. Each of these passages intersects a channel and contact terminals located in the channel establish an electrical connection at the intersection of rearwardly extending passages and upwardly extending channels .
  • This invention is especially useful for stacked electrical connectors in which individual connector mating openings are located one above the other in a single nonconductive connector housing. LED's are located beside each opening, and multiple LED's are positioned one above another in a column. In the preferred embodiment, two LED's are located beside each connector mating opening. One LED can indicate that the circuit is properly connected and the other LED can indicate when communication is taking place over the circuit .
  • the length of the LED leads varies progressively with the longest leads being located at the top of the column for the preferred embodiment.
  • the contacts that electrically connect the LED leads to an external component, such as a printed circuit board, also vary in length, with the longest contacts at the rear connected to the longest leads at the top.
  • the electrical connections formed at the intersection of the leads and contacts are then staggered from back to front with the contacts being positioned one behind another in a row.
  • the preferred embodiment of this invention is a modular jack with the LED indicators being located beside the modular jack openings and with the LED leads extending through passages beside the modular jack terminals.
  • the contacts are inserted into channel on the lower surface of the modular jack. These contacts can be partially inserted prior to insertion of the LED leads into rearwardly extending passages. After the LED leads are inserted, the contacts are pushed into their fully inserted position where they intersect and electrically terminate the LED leads.
  • the contacts include insulation displacement slots at the top, and these slots receive and engage the LED leads to form a gas tight electrical termination.
  • Figure 1 is an exploded perspective view of a stacked connector assembly including four RJ-45 modular jacks with two light emitting diodes for each modular jack positioned as status indicators on the front of the modular jack.
  • Figure 2 is a' front view of the stacked connector assembly shown in Figure 1.
  • Figure 3 is a bottom view of the stacked connector assembly showing the position of the terminal leads for the modular jacks and the LED contacts and solder tails extending from the LED contacts and showing the pattern of through hole solder leads or tails for connecting the connector assembly to a printed circuit board.
  • Figure 4 is a section view taken along section lines 4-4 in Figure 3. This section is taken through the longest printed circuit board contacts on each side of the stacked jacks.
  • Figure 5 is a section view taken along section lines 5-5 in Figure 2. This section shows all of the LED leads in corresponding passages that would extend into a single channel for one column of four LED's. The eight insulation displacement contacts at the intersection or termination to the LED leads are also shown .
  • Figure 6 is a detail view of the position of the
  • each individual jack 4 is included in this single connector assembly 2. Upper and lower jacks 4 are positioned side by side in two columns. In the preferred embodiment, each individual jack 4 is an eight position RJ-45 jacks of the type used for serial communication. A standard RJ-45 plug or male connector 6 is the compatible mating connector for each of these individual jacks 4.
  • Each of these modular jacks 4 include eight terminals 8 of conventional construction.
  • Each terminal 4 has a mating end 10 which forms a resilient spring for establishing electrical contact with conventional blades when mated with plug 6.
  • each of the terminals 12 is insert molded in a plastic body 14 as shown in Figures 3 and 4, and this body is in turn positioned in the integral nonconductive housing 16 with the mating ends 10 of the aligned terminals of each jack 4 positioned within a mating opening 20 configured to receive mating plug 6.
  • the four mating openings 20 are located on a laterally oriented mating face 18 in this right angle jack configuration.
  • the stacked modular jack 2 is intended to be mounted on the edge of a printed circuit board with a bottom or housing mounting face 22 extending perpendicular to the upright mating face 18.
  • the mating face 18 can then be positioned in a cutout in a vertical exterior wall of the device in which the stacked modular jack 2 is to be used.
  • the stacked modular jack 2 is conventional in construction.
  • This jack 2 however includes an array of visual indicators in the form of LED's 38 mounted on the front or mating face 18.
  • two LED's 38 are located beside each mating opening 20 and therefore beside each individual jack 4.
  • Two LED's 38 are mounted beside each individual jack 4.
  • Four LED's 38 are then positioned in two columns, each column being located on one side of the two stacked jacks.
  • Each LED 38 is mounted in a mounting cavity 26 extending inwardly from the mating face 18.
  • internal passages 28 extend from each LED mounting cavity 26 and penetrate the housing perpendicular to the mating face 18 and parallel to the mounting face 22.
  • Each internal passage 28 intersects a channel 34 that extends from the housing mounting face 22 generally parallel to the mating face 18. Channel 34 therefore extends at substantially right angles to the intersecting passages 28 in this right angle stacked modular jack 2.
  • Each internal passage 28 has a cross sectional area sufficient to receive the two leads 42 extending from the body or lens of LED 38. These passages are formed by core pins when the nonconductive housing 16 is molded, and in the preferred embodiment, each passage 28 has a rectangular cross section. Since four LED's are positioned in one column on the mating face 18, four separate individual passages are formed, one above the other. As shown in Figure 5, each passage 28 narrows at the rear with a central tapered section forming ramp surfaces 32 for capturing and aligning the ends of the LED leads 42 when these leads are inserted into the passages 28 from the front or mating face 18 of the nonconductive housing 16. The four internal passages 28 located one above another in a column all intersect a single channel 34 at the rear ends of each internal passage 28.
  • the passages 28 extend progressively further into the housing 16 with the shorter passage 28 being located at the bottom adjacent to the mounting face 22.
  • a single channel 34 merges or intersects four passages 28.
  • Each channel 34 can be formed by a single core pin when the housing 16 is molded.
  • each LED 38 has two leads 42, a longer anode lead 42' and a shorter cathode lead 42""
  • the longer lead 42' is positioned at the top and the shorter lead 42" when mounted in the respective internal passage so that the rear ends of the two corresponding leads are staggered, thus providing room for contacts 44 located in channel 34 to contact the appropriate lead 42 without contacting the other lead for a single LED.
  • the leads 42 for the other LED's 38 stacked in a single column are progressively longer with the shortest cathode lead 42" being located at the bottom of the connector 2 adjacent to the mounting face 22 and the longest anode lead 42 ' is located at the top of the connector 2.
  • the rear ends of the LED leads 42 are therefore staggered.
  • the staggered leads 42 can be fabricated by cutting the leads on a single LED size to length.
  • the cathodes are shorter than the anodes.
  • the LED anode lead is 27 mm and the cathode lead is 25.5 mm.
  • Standard LED's with progressively longer leads can be employed so that the leads are staggered.
  • anode leads are positioned above cathode leads in the preferred embodiment, this orientation can be reversed when the leads are cut to length.
  • Insulation displacement contacts 44 are positioned in channel 34. These contacts 44 each have an insulation displacement contact section or slot 48 located at the top. This slot 48 has a width and depth chosen to engage the ends of the corresponding lead 42 which the individual contact intersects.
  • the contacts 44 are stamped and formed from a resilient metal, such as phos bronze, that is suitable for establishing insulation displacement contacts.
  • Each flat contact 44 also has a solder tail 46 at its lower end with solder tails on adjacent contacts 44 staggered to provide additional spacing when the contacts 44 are soldered in printed circuit board through holes leading to traces 54 on printed circuit board 54.
  • the contacts 44 are positioned one behind each other in a row. Two adjacent contacts will terminate the anode and cathode lead of a single LED 38.
  • An anode contact 44 ' terminated to a anode lead 42 'of one LED 38 will be longer than the cathode contact 44" terminated to a corresponding cathode lead 42" of the same LED.
  • Adjacent pairs of contacts 44 will also be progressively shorter proceeding from the top rear to the bottom front as seen in Figure 5.
  • the electrical termination of leads 42 in insulation displacement slots 48 are therefore staggered, providing access, from below, for each contact 44 to the corresponding LED lead 42.
  • Each channel includes grooves 36 along opposite channel walls. The edges of the contacts 44 fit within these grooves 36 and the contacts 44 are supported in channels 34.
  • the stacked electrical connector 2 is assembled by first inserting the terminals 10, insert molded in body 14, into the molded nonconductive housing 16.
  • the contacts 44 are then inserted into the channels 34, from below, into a preloaded configuration in which the insulation displacement slots 48 at the top of the contacts 44 are recessed relative to the top of the channels 34 and spaced form the location at which the leads 42 will be inserted.
  • This preloaded position is shown in Figure 6.
  • the LED's 38 With the contacts 44 in this preloaded position, the LED's 38 are fully inserted, from the front or mating face, into the corresponding passages 28 until the ends of the leads are positioned above the contact slots 48 of corresponding contacts 44.
  • the ends of leads 42 will be positioned along a support rib 30 located at the rear of the passage 28 and the top of the channel 34.
  • This support rib 30 is narrower than the width of the slot 48 and the LED lead 42 and is molded and formed by a recess on the core pin that forms the channel 34. With the leads 42 properly positioned, the contacts 44 are pushed further into the channels 34 into their final positions so that the leads 42 are inserted into the corresponding slot 48 at the top of the respective contact 44.
  • the insulation displacement contact formed with the LED leads 42 not only establishes an electrical termination between the leads 42, but also mechanically retain the LED's in the LED cavities 26 without the need to apply an adhesive to the ' LED body 40.
  • the connector 2 can then be mounted on a printed circuit board 52. The rear ends 12 of the terminals 8 extend beyond the housing mounting face 22 as do the solder tails 46 on the ends of the contacts 44. Mounting posts 24 on the bottom of the housing 16 are then used to secure the connector 2 to the printed circuit board and the terminals 8 and contacts 44 can be soldered to pads surrounding the printed circuit board holes or to plated through holes in the printed circuit board.
  • the stacked connector 2 is representative of the connectors with which this invention can be employed, but the invention is not limited to use with stacked modular jacks.
  • this invention can be used with otherwise conventional pin headers soldered to printed circuit boards.
  • This invention can also be used with surface mount connectors and the solder tails on the contacts can also be surface mount solder tails.
  • the invention is also not limited to use with insulation displacement slots for terminating LED leads, and the leads could even be soldered to the contacts.
  • An example of another mechanical termination would be a poke in contact employed at the top of the contacts . When a poke in contact would be used, the contacts would be inserted into the housing and the leads would then be axially inserted into an opening in the terminals.
  • a tab in the contact opening would engage the LED lead, electrically terminating that lead.
  • Other equivalent versions of this invention would include a connector in which the channels are inserted from the top of the connector housing with the longer LED leads being located at the bottom of the assembly.
  • the LED's could also be inserted with the anode and cathode leads both located side by side in a horizontal plane. Each lead for the same LED could then be the same length and the corresponding contacts could then be the same length with the lead terminations being side by side.
  • this invention is not limited to the use of LED's as the indicators mounted on the housing. Other status indicators or sensors could also be mounted in this manner. Therefore the scope of this invention is defined by the following claims and is not limited to the representative embodiment depicted herein.

Abstract

A stacked electrical connector (2) including right angle RJ-45 modular jacks (4) positioned in columns also includes LED's (38) positioned on the front mating face (18) of the connector (2). Internal passages (28) extend from the mating face (18) of the jack housing (18) and intersect channels (34) extending to the bottom pcb mounting face (22) where the connector (2) and jacks (4) are soldered to a printed circuit board. LED leads (42) are located in the passages (28) and contacts (44) are located in channels (34). Insulation displacement slots (48) at the top of the contacts (44) terminate the leads (42). The termination points are staggered and the leads (42) in a column are of different lengths so that contacts (44) of different lengths can engage corresponding leads (42). LED's (38) can thus be positioned beside mating openings (20) on the front of the connector (2) to provide status indications.

Description

STACKED ELECTRICAL CONNECTOR WITH VISUAL INDICATORS
This invention is related to electrical connectors and especially to electrical connectors used to connect cables to printed circuit board, such as serial devices that are connected to computers, computer networking devices, or peripherals. More specifically, this invention is related to modular jacks and to the use of LED's to provide a visual indication of the communication status for the circuit connected by the modular jack.
There are a number of instances in which it may be desirable to have a simple indication of the status of an electrical connection to a computer, a computer peripheral , computer network or to instrumentation, telecommunications, inspection or a similar device or network. Indicators of this type are especially useful for products such as networking hubs, switches and routers. A simple visual indication provided by an LED located adjacent to an input/output connector is often desirable. For example, an indication that a device, or its input cable, has been properly wired or connected is helpful to insure proper installation. A flashing LED is often useful as a means to show that communications is occurring on that circuit. This visual indicator can help a user diagnose a problem without requiring the assistance of a specialist. For example, the absence of a flashing indicator on a modem will show that communication has not been properly established or that a connection has been lost.
One traditional approach to insuring that a device, a cable or a network has been properly wired, connected or assembled is the use of a standalone testing device. Elimination of this separate testing device by incorporating an LED or other indicator, visual or otherwise, in the component itself has advantages, not only during installation, but during operation of the device. However, the addition of LED's or other indicators to an already crowded device does pose space problems. One approach that has been suggested is to add the LED on the front or mating face of the electrical connector to save printed circuit board real estate.
Several patents show suggestions for incorporating LED's on the mating face of a modular jack, and especially on the front of an RJ-45 eight position modular jack. U.S. Patent 4,978,317 shows an RJ-45 jack with two light emitting diodes mounted on the mating face of the jack. In this patent the LED's are mounted along the side of the jack mating opening opposite from which the mating ends of the terminals are attached. To connect the LED's to a printed circuit board, mounted along an opposite surface of this single position jack housing, the LED leads must extend around two sides of the jack and protrude from the printed circuit board mounting face of the jack. These LED leads appear to require a length that is greater than the length of leads typically employed for many through hole LED's. For multiple position or stacked jacks, the LED lead length would have to be even greater for a device constructed in this manner.
U.S. Patent 5,601,451 shows another approach in which the LED's are mounted adjacent to the printed circuit board. Clearly however, this approach is limited to a single position modular jack and does not offer a solution to providing multiple LED's for each of multiple jacks mounted in a stacked configuration or included in a single housing mounted on the edge of a printed circuit board.
Another approach is the use of surface mount LED's located below a printed circuit board housing, but that approach requires that both surface mount components and through hole components be used on the same printed circuit board, if standard through hole modular jacks are to be employed. This approach can cause problems or can require additional care during the soldering operation to insure that satisfactory through hole and surface mount solder joints are established on the same board. Through hole jacks mounted above surface mount LED's can leave the surface mount joints unexposed, thus leading to unreliable solder joints. Dual processing for the through hole jack leads and the surface mount LED's would probably be necessary.
Still another approach that has been suggested is the use of LED's mounted on upstanding flexible films that are mounted on a printed circuit board in front of the connector or jack. This requires the addition of a separate piece and requires the film be positioned in registry with the mating openings in a printed circuit board. Separately mounting component in this manner is further complicated when stacked connectors, employing jacks stacked one above the other, are employed.
The electrical connector of the instant invention includes an indicator, such as a light emitting diode on the front or mating face of the electrical connector. In this invention multiple LED's can be placed on the front of the connector. Each LED is positioned in a cavity on the connector, and the leads from the LED body extend into housing passages extending from the front of the connector. Each of these passages intersects a channel and contact terminals located in the channel establish an electrical connection at the intersection of rearwardly extending passages and upwardly extending channels .
This invention is especially useful for stacked electrical connectors in which individual connector mating openings are located one above the other in a single nonconductive connector housing. LED's are located beside each opening, and multiple LED's are positioned one above another in a column. In the preferred embodiment, two LED's are located beside each connector mating opening. One LED can indicate that the circuit is properly connected and the other LED can indicate when communication is taking place over the circuit .
In this stacked configuration, the length of the LED leads varies progressively with the longest leads being located at the top of the column for the preferred embodiment. The contacts that electrically connect the LED leads to an external component, such as a printed circuit board, also vary in length, with the longest contacts at the rear connected to the longest leads at the top. The electrical connections formed at the intersection of the leads and contacts are then staggered from back to front with the contacts being positioned one behind another in a row.
The preferred embodiment of this invention is a modular jack with the LED indicators being located beside the modular jack openings and with the LED leads extending through passages beside the modular jack terminals. For right angle printed circuit board mounted modular jacks, the contacts are inserted into channel on the lower surface of the modular jack. These contacts can be partially inserted prior to insertion of the LED leads into rearwardly extending passages. After the LED leads are inserted, the contacts are pushed into their fully inserted position where they intersect and electrically terminate the LED leads. In the preferred embodiment, the contacts include insulation displacement slots at the top, and these slots receive and engage the LED leads to form a gas tight electrical termination.
Figure 1 is an exploded perspective view of a stacked connector assembly including four RJ-45 modular jacks with two light emitting diodes for each modular jack positioned as status indicators on the front of the modular jack. Figure 2 is a' front view of the stacked connector assembly shown in Figure 1.
Figure 3 is a bottom view of the stacked connector assembly showing the position of the terminal leads for the modular jacks and the LED contacts and solder tails extending from the LED contacts and showing the pattern of through hole solder leads or tails for connecting the connector assembly to a printed circuit board.
Figure 4 is a section view taken along section lines 4-4 in Figure 3. This section is taken through the longest printed circuit board contacts on each side of the stacked jacks.
Figure 5 is a section view taken along section lines 5-5 in Figure 2. This section shows all of the LED leads in corresponding passages that would extend into a single channel for one column of four LED's. The eight insulation displacement contacts at the intersection or termination to the LED leads are also shown . Figure 6 is a detail view of the position of the
LED leads and the LED lead support. In this figure the insulation displacement contact is shown in the preloaded position from which the contact will then be pushed up to establish an insulation displacement contact with the supported solder lead.
Although this invention can be employed with single modular jacks or other printed circuit mounted electrical connectors, it has additional advantages when employed with a stacked electrical connector, such as the four position stacked RJ-45 modular jack 2 shown in Figure 1. It could also be used with other jacks, such as an RJ-11. Four individual modular jacks 4 are included in this single connector assembly 2. Upper and lower jacks 4 are positioned side by side in two columns. In the preferred embodiment, each individual jack 4 is an eight position RJ-45 jacks of the type used for serial communication. A standard RJ-45 plug or male connector 6 is the compatible mating connector for each of these individual jacks 4.
Each of these modular jacks 4 include eight terminals 8 of conventional construction. Each terminal 4 has a mating end 10 which forms a resilient spring for establishing electrical contact with conventional blades when mated with plug 6. In the representative embodiment depicted herein, each of the terminals 12 is insert molded in a plastic body 14 as shown in Figures 3 and 4, and this body is in turn positioned in the integral nonconductive housing 16 with the mating ends 10 of the aligned terminals of each jack 4 positioned within a mating opening 20 configured to receive mating plug 6. The four mating openings 20 are located on a laterally oriented mating face 18 in this right angle jack configuration. The stacked modular jack 2 is intended to be mounted on the edge of a printed circuit board with a bottom or housing mounting face 22 extending perpendicular to the upright mating face 18. The mating face 18 can then be positioned in a cutout in a vertical exterior wall of the device in which the stacked modular jack 2 is to be used.
The stacked modular jack 2, as described thusfar, is conventional in construction. This jack 2 however includes an array of visual indicators in the form of LED's 38 mounted on the front or mating face 18. In this embodiment two LED's 38 are located beside each mating opening 20 and therefore beside each individual jack 4. Two LED's 38 are mounted beside each individual jack 4. Four LED's 38 are then positioned in two columns, each column being located on one side of the two stacked jacks. Each LED 38 is mounted in a mounting cavity 26 extending inwardly from the mating face 18. As best seen in Figure 5, internal passages 28 extend from each LED mounting cavity 26 and penetrate the housing perpendicular to the mating face 18 and parallel to the mounting face 22. Each internal passage 28 intersects a channel 34 that extends from the housing mounting face 22 generally parallel to the mating face 18. Channel 34 therefore extends at substantially right angles to the intersecting passages 28 in this right angle stacked modular jack 2.
Each internal passage 28 has a cross sectional area sufficient to receive the two leads 42 extending from the body or lens of LED 38. These passages are formed by core pins when the nonconductive housing 16 is molded, and in the preferred embodiment, each passage 28 has a rectangular cross section. Since four LED's are positioned in one column on the mating face 18, four separate individual passages are formed, one above the other. As shown in Figure 5, each passage 28 narrows at the rear with a central tapered section forming ramp surfaces 32 for capturing and aligning the ends of the LED leads 42 when these leads are inserted into the passages 28 from the front or mating face 18 of the nonconductive housing 16. The four internal passages 28 located one above another in a column all intersect a single channel 34 at the rear ends of each internal passage 28. As shown in Figure 5, the passages 28 extend progressively further into the housing 16 with the shorter passage 28 being located at the bottom adjacent to the mounting face 22. In the preferred embodiment a single channel 34 merges or intersects four passages 28. Each channel 34 can be formed by a single core pin when the housing 16 is molded.
As shown in Figure 5, each LED 38 has two leads 42, a longer anode lead 42' and a shorter cathode lead 42""
The longer lead 42' is positioned at the top and the shorter lead 42" when mounted in the respective internal passage so that the rear ends of the two corresponding leads are staggered, thus providing room for contacts 44 located in channel 34 to contact the appropriate lead 42 without contacting the other lead for a single LED. The leads 42 for the other LED's 38 stacked in a single column are progressively longer with the shortest cathode lead 42" being located at the bottom of the connector 2 adjacent to the mounting face 22 and the longest anode lead 42 ' is located at the top of the connector 2. The rear ends of the LED leads 42 are therefore staggered. The staggered leads 42 can be fabricated by cutting the leads on a single LED size to length. Different standard LED's can also be used since for standard LED's, the cathodes are shorter than the anodes. Commonly the LED anode lead is 27 mm and the cathode lead is 25.5 mm. Standard LED's with progressively longer leads can be employed so that the leads are staggered. Although anode leads are positioned above cathode leads in the preferred embodiment, this orientation can be reversed when the leads are cut to length.
Insulation displacement contacts 44 are positioned in channel 34. These contacts 44 each have an insulation displacement contact section or slot 48 located at the top. This slot 48 has a width and depth chosen to engage the ends of the corresponding lead 42 which the individual contact intersects. The contacts 44 are stamped and formed from a resilient metal, such as phos bronze, that is suitable for establishing insulation displacement contacts. Each flat contact 44 also has a solder tail 46 at its lower end with solder tails on adjacent contacts 44 staggered to provide additional spacing when the contacts 44 are soldered in printed circuit board through holes leading to traces 54 on printed circuit board 54. The contacts 44 are positioned one behind each other in a row. Two adjacent contacts will terminate the anode and cathode lead of a single LED 38. An anode contact 44 ' terminated to a anode lead 42 'of one LED 38 will be longer than the cathode contact 44" terminated to a corresponding cathode lead 42" of the same LED. Adjacent pairs of contacts 44 will also be progressively shorter proceeding from the top rear to the bottom front as seen in Figure 5. The electrical termination of leads 42 in insulation displacement slots 48 are therefore staggered, providing access, from below, for each contact 44 to the corresponding LED lead 42. Each channel includes grooves 36 along opposite channel walls. The edges of the contacts 44 fit within these grooves 36 and the contacts 44 are supported in channels 34. The stacked electrical connector 2 is assembled by first inserting the terminals 10, insert molded in body 14, into the molded nonconductive housing 16. The contacts 44 are then inserted into the channels 34, from below, into a preloaded configuration in which the insulation displacement slots 48 at the top of the contacts 44 are recessed relative to the top of the channels 34 and spaced form the location at which the leads 42 will be inserted. This preloaded position is shown in Figure 6. With the contacts 44 in this preloaded position, the LED's 38 are fully inserted, from the front or mating face, into the corresponding passages 28 until the ends of the leads are positioned above the contact slots 48 of corresponding contacts 44. As shown in Figure 6, the ends of leads 42 will be positioned along a support rib 30 located at the rear of the passage 28 and the top of the channel 34. This support rib 30 is narrower than the width of the slot 48 and the LED lead 42 and is molded and formed by a recess on the core pin that forms the channel 34. With the leads 42 properly positioned, the contacts 44 are pushed further into the channels 34 into their final positions so that the leads 42 are inserted into the corresponding slot 48 at the top of the respective contact 44. The insulation displacement contact formed with the LED leads 42 not only establishes an electrical termination between the leads 42, but also mechanically retain the LED's in the LED cavities 26 without the need to apply an adhesive to the' LED body 40. The connector 2 can then be mounted on a printed circuit board 52. The rear ends 12 of the terminals 8 extend beyond the housing mounting face 22 as do the solder tails 46 on the ends of the contacts 44. Mounting posts 24 on the bottom of the housing 16 are then used to secure the connector 2 to the printed circuit board and the terminals 8 and contacts 44 can be soldered to pads surrounding the printed circuit board holes or to plated through holes in the printed circuit board.
The stacked connector 2 is representative of the connectors with which this invention can be employed, but the invention is not limited to use with stacked modular jacks. For example, this invention can be used with otherwise conventional pin headers soldered to printed circuit boards. This invention can also be used with surface mount connectors and the solder tails on the contacts can also be surface mount solder tails. The invention is also not limited to use with insulation displacement slots for terminating LED leads, and the leads could even be soldered to the contacts. An example of another mechanical termination would be a poke in contact employed at the top of the contacts . When a poke in contact would be used, the contacts would be inserted into the housing and the leads would then be axially inserted into an opening in the terminals. A tab in the contact opening would engage the LED lead, electrically terminating that lead. Other equivalent versions of this invention would include a connector in which the channels are inserted from the top of the connector housing with the longer LED leads being located at the bottom of the assembly. The LED's could also be inserted with the anode and cathode leads both located side by side in a horizontal plane. Each lead for the same LED could then be the same length and the corresponding contacts could then be the same length with the lead terminations being side by side. Furthermore, this invention is not limited to the use of LED's as the indicators mounted on the housing. Other status indicators or sensors could also be mounted in this manner. Therefore the scope of this invention is defined by the following claims and is not limited to the representative embodiment depicted herein.

Claims

We Claim :
1. An electrical connector 2 matable with a compatible electrical connector 6, the first connector 2 including a plurality of terminals 8 positioned in a nonconductive housing 16, the housing 16 having a mating face 18 configured to mate with the compatible electrical connector 6, the first connector 2 also including at least one indicator 38 located on the mating face 18; the connector 2 being characterized in that the housing 16 includes at least one internal passage 28 extending rearwardly from the mating face 18, each indicator 38 being positioned with indicator leads 42 extending from the indicator 38 through the corresponding first passage 28, the connector 2 also including channel means 34 extending transversely to and intersecting the first passages 28 and opening onto a housing mounting face 18, contacts 44 being positioned in the channel means 34 and being electrically terminated to the indicator leads 42 , the contacts 44 extending to the housing mounting face 22.
2. The electrical connector of claim 1 wherein the mating face 18 extends at right angles relative to the mounting face 22 with the internal passages 28 extending parallel to the mounting face 22 and the channel means 34 extend parallel to the mating face 18.
3. The electrical connector of claim 3 wherein each indicator 38 comprises a light emitting diode and the contacts 44 comprise insulation displacement contacts with each indicator lead 42 being received in an insulation displacement contact slot 48 at the top of the contact 44.
4. The electrical connector of claim 3 wherein multiple light emitting diodes 38 are positioned in a column on the mating face 18.
5. The electrical connector of claim 4 wherein the length of the indicator leads 42 is progressively less for leads closer to the housing mating face 18.
6. The electrical connector of claim 1 comprising a stacked electrical connector 2 including multiple female electrical connectors 4 located in a nonconductive housing 16, each separate female electrical connector 4 having a mating opening 20 on a mating face 18 of the nonconductive housing 16, male electrical connectors 6 being insertable into a mating opening 20 to establish electrical contact with the corresponding female connector 4; indicators 38 being positioned adjacent each mating opening 20 with indicator leads 42 extending through the passage 28 in the nonconductive housing 16.
7. The stacked electrical connector of claim 6 wherein the intersection between indicator leads 42 and contacts 44 is staggered.
8. The electrical connector of claim 1 comprising a printed circuit board jack 4 matable with a plug 6, the jack 4 including a plurality of terminals 8 positioned within a nonconductive housing 16, each terminal 8 having a mating end 10 located adjacent to a mating face 18 of the jack 4, the contacts 44 comprising printed circuit board contacts extending through the channel 34 at right angles to the indicator leads 42 and contacting the indicator leads 42 at the intersection of the passage 28 and the channel 34 so that the indicator leads 42 can be connected to printed circuit board traces 54.
9. The electrical connector of claim 8 wherein each indicator 38 includes an anode lead 42' and a cathode lead 42'' and the jack 4 includes two contacts 44', 44 for each indicator, a first contact 44' engaging the anode lead 42 ' and a second contact 44 ' ' engaging the cathode lead 42 ' ' .
10. The electrical connector of claim 1 wherein a plurality of indicators 38 are positioned on the mating face 18, one passage 28 extending from the mating face 18 for each indicator 38 with a single channel 34 intersecting passages 38 for multiple indicators 38.
PCT/US1998/006547 1997-04-01 1998-04-01 Stacked electrical connector with visual indicators WO1998044596A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
AU69476/98A AU6947698A (en) 1997-04-01 1998-04-01 Stacked electrical connector with visual indicators
GB9923320A GB2338357B (en) 1997-04-01 1998-04-01 Stacked electrical connector with visual indicators
JP54200998A JP2001519077A (en) 1997-04-01 1998-04-01 Stacked electrical connectors with visual indicators

Applications Claiming Priority (2)

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US08/829,919 1997-04-01
US08/829,919 US5876240A (en) 1997-04-01 1997-04-01 Stacked electrical connector with visual indicators

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WO1998044596A1 true WO1998044596A1 (en) 1998-10-08

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US (1) US5876240A (en)
JP (1) JP2001519077A (en)
AU (1) AU6947698A (en)
GB (1) GB2338357B (en)
WO (1) WO1998044596A1 (en)

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US5876240A (en) 1999-03-02
GB2338357A (en) 1999-12-15
GB2338357B (en) 2001-11-07
GB9923320D0 (en) 1999-12-08
JP2001519077A (en) 2001-10-16
AU6947698A (en) 1998-10-22

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