The present invention relates to electrical contacts. In one particular aspect, the present invention relates to an insulation displacement element within a connector assembly for use in making an electrical connection with an electrical element.
In a telecommunications context, connector blocks are connected to cables that feed subscribers while other connector blocks are connected to cables to the central office. To make the electrical connection between the subscriber block and the central office block, jumper wires are inserted to complete the electrical circuit. Typically jumper wires can be connected, disconnected, and reconnected several times as the consumer's needs change.
An insulation displacement connector, or IDC, element is used to make the electrical connection to a wire or electrical conductor. The IDC element displaces the insulation from a portion of the electrical conductor when the electrical conductor is inserted into a slot within the IDC element so the IDC element makes electrical connection to the electrical conductor. Once the electrical conductor is inserted within the slot with the insulation displaced, electrical contact is made between the conductive surface of the IDC element and the conductive core of the electrical conductor.
Occasionally, it may be desirable to place a second electrical conductor within an IDC element to make the jumper connection. However, when the IDC element has a single, uniform slot, a greater force is required to insert the second wire because the first wire encounters significant resistance when inserted further into the slot. Additionally, when the first wire is inserted further into the slot, undesirable bending outward of the IDC element may occur. The outward bending may interfere with making a proper connection between the IDC element and second electrical conductor.
The present invention provides an electrically coupled insulation displacement system. The electrically coupled insulation displacement system comprises a first contact and a second contact. The first contact includes a first insulation displacement slot therein having an open end and a closed end. The first insulation displacement slot has a first portion having a width adjacent the open end and a second portion having a width intermediate the first portion and the closed end, the first portion has a larger width than the second portion. The second contact includes a second insulation displacement slot therein having an open end and a closed end. The second insulation displacement slot has a first portion having a width adjacent the open end and a second portion having a width intermediate the first portion and the closed end, the first portion has a smaller width than the second portion.
While the above-identified figures set forth several embodiments of the invention, other embodiments are also contemplated, as noted in the discussion. In all cases, this disclosure presents the invention by way of representation and not limitation. It should be understood that numerous other modifications and embodiments can be devised by those skilled in the art, which fall within the spirit and scope of the principals of this invention. The figures may not be drawn to scale. Like reference numbers have been used throughout the figures to denote like parts.
The base unit 102 comprises an insulated housing with a series of receiving slots 110 for connection with the connector unit 104. Lock slots on a rear side of the base unit 102 receive lock projections 122 of the connector unit 104 to lock the connector unit 104 to the base unit 102.
Located within the base unit 102 are a plurality of electrical elements 114 (see
The connector unit 104 comprises an insulated housing with a series of alignment projections 120 for connection into the receiving slots 110 of the base unit 102. The lock projections 122 project outwardly and downwardly from the rear side of the connector unit 104 and lock within the lock slots on the rear side of the base unit 102 to lock the connector unit 104 to the base unit 102.
Each cap 106 is independently pivotally mounted onto the connector unit 104, relative to a respective housing 130. Each cap 106 comprises a first pivot projection 170 and a second coaxial pivot projection 172 (see
The connector unit 104 shown in
The connector assembly 100 may be constructed, for example, of an engineering plastic such as, but not limited to: Valox® 325 a polybutylene terephthalate (PBT) polymer, available from GE Plastics of Pittsfield, Mass.; Lexan® 500R a polycarbonate resin, flame retardant, 10% glass fiber reinforced grade available from GE Plastics of Pittsfield, Mass.; Mackrolon® 9415 a polycarbonate resin, flame retardant, 10% glass fiber reinforced grade available from Bayer Plastics Division of Pittsburgh, Pa.; or Mackrolon® 9425 a polycarbonate resin, flame retardant, 20% glass fiber reinforced grade available from Bayer Plastics Division of Pittsburgh, Pa.
The caps 106 may be constructed, for example, of an engineering plastic such as, but not limited to: Ultem® 1100 a polyether imide resin available from GE Plastics of Pittsfield, Mass.; Valox® 420 SEO a polybutylene terephthalate (PBT) resin flame retardant, 30% glass fiber reinforced available from GE Plastics of Pittsfield, Mass.; IXEF® 1501 a polyarylamide resin, flame retardant, 30% glass fiber reinforced grade available from Solvay Advanced Polymers, LLC of Alpharetta, Ga.; or IXEF® 1521 a polyarylamide resin, flame retardant, 50% glass fiber reinforced grade available from Solvay Advanced Polymers, LLC of Alpharetta, Ga.
Each housing 130 comprises a front wall 131, a first side wall 132, a second side wall 133, and a base 134. The housing 130 is formed to have a first section 135 and a second section 137. Separating the first section 135 from the second section 137 is a test probe slot 152.
Along the front wall 131 is a first wire groove 140 and a second wire groove 142, which allow entry of the electrical conductors into the housing 130 (see
Along the first side wall 132 is a first hinge slot 148, and along the second side all 133 is a second hinge slot 150 (see
The base 134 of the housing 130 includes the test probe slot 152, that essentially separates the first section 135 of the housing 130 from the second section 137 of the housing 130. The test probe slot 152 may be divided into two portions with the first allowing for testing of the electrical connections on the first section 135 of the housing 130 and the second allowing for testing of the electrical connections on the second section 137 of the housing 130. Test probes as are known in the art are inserted into the test probe slot 152 (see, e.g.,
As seen in
Extending into the pivot portion 166 is a first recess 174 and second recess 176. The recesses 174, 174 may be a through hole extending through the entire pivot portion 166 of the cap 106, or may extend through only a portion of the pivot portion 166 of the cap 106. The first recess 174 is aligned with the first section 135 of the housing 130, and the second recess 176 is aligned with the second section 137 of the housing 130. Each recess 174, 176 receives electrical conductors passing through the housing 130. Although the first recess 174 and second recess 176 are shown as parallel recesses through the pivot portion 166, it is within the scope of the present invention that the first recess 174 and second recess 176 may not be parallel to one another.
The cover portion 168 of the cap 106 is movable from an open position (
A resilient latch 188, which is capable of flexing relative to the cover portion 168 of the cap 106, is located on the cover portion 168 of the cap 106. When the cap 106 is closed, the resilient latch 188 flexes so that the latch projection 190 on the resilient latch 188 can enter the latch opening 146 on the front wall 131 of the housing 130. When the latch projection 190 is engaged with the latch opening 146, the cap 106 is secured to the housing 130 and will not open. To open the cap 106, a release lever 192 on the resilient latch 188 is pressed rearwardly to disengage the latch projection 190 from the latch opening 146. Then, the cap 106 can be pivoted open, as shown in
The first IDC element 300 and a first blade 162 is located at the base 134 of the first section 135 of the housing 130. The first blade 162 is located adjacent the pivot portion 166 of the cap 106. A first support 163 is shaped to support and cradle an electrical conductor when inserted into the housing 130. The first support 163 is positioned in front of the first blade 162 to provided structural support to the blade 162. When the cap 106 is closed and pressing down on the electrical conductor, the first support 163 supports the electrical conductor so that the first blade 162 can properly and effectively cut the electrical conductor. Then, the first blade 162 enters the first indent 162a on the cap 106.
The second IDC element 301 and a second blade 164 is located at the base 134 of the second section 137 of the housing 130. The second blade 164 is located adjacent the pivot portion 166 of the cap 106. A second support 165 is shaped to support and cradle an electrical conductor when inserted into the housing 130. The second support 165 is positioned in front of the second blade 164 to provided structural support to the blade 164. When the cap 106 is closed and pressing down on the electrical conductor, the second support 165 supports the electrical conductor so that the second blade 164 can properly and effectively cut the electrical conductor. Then, the second blade enters the second indent 164a on the cap 106.
The first blade 162 and second blade 164 may be constructed of a metallic material and have a slightly sharpened edge, as is more clearly shown in
It is preferable to insert a single electrical conductor into each section 135, 137 of the housing 130 and into the recesses 174, 176, respectively, to be cut by the blades 162, 164, respectively. However, in some instances two electrical conductors may be inserted into each section 135, 137 of the housing 130 and into the recesses 174, 176, respectively, to be cut by the blades 162, 164, respectively. Further, the first blade 162 and second blade 164 shown in
Staggering the first IDC element 300 and second IDC element 301 minimizes the force needed to be applied to the cap 106 to properly close the cap 106 and engage all electrical conductors in each IDC element, because the electrical conductors are not being forced into their respective IDC elements at the same time during closure. Instead, the electrical conductor for the IDC element closest to the pivot portion 166 of the cap 106 (IDC element 301) is pressed into engagement first, and the electrical conductor at the IDC element farthest from the pivot portion 166 of the cap 106 (IDC element 300) is pressed into engagement last. Further, the cutting of the electrical conductors during cap closure (at each blade 162, 164) can occur during insertion but prior to final insertion is reached or can occur before the electrical conductors are inserted into their respective IDC elements 301, 300, which further minimizes the forces needed to close the cap 106 while making the proper connections.
Although the first IDC element 300 and second IDC element 301 are shown staggered relative to the pivot axis 173, the first IDC element 300 and second IDC element 301 may be uniformly arranged within the housing. Further, the first IDC element 300 and second IDC element 301 may have different heights relative to the base 134 of the housing 130 such that electrical conductors will first be inserted in to the higher IDC element, and then into the lower IDC element. Again, this sequencing of inserting the electrical conductors into the IDC elements minimizes the forces needed to close the cap 106 while making the proper connections.
Further description of the housing and insertion of the electrical conductors within the IDC is described in U.S. patent application 10/941,441 titled “CONNECTOR ASSEMBLY FOR HOUSING INSULATION DISPLACEMENT ELEMENTS” filed on even date herewith, the disclosure of which is hereby incorporated by reference.
Although
Extending below and biased from the bridging section 304 is a resilient tail 305. A raised tab 306 projecting from the tail 305 helps make an electrical connection to another electrical element. When the first IDC element 300 is placed in the first section 135 of the housing 130, the tail 305 extends in a direction towards the test probe slot 152 (see
As seen in
As seen in
Although not shown independently as in
In use, the first electrical conductor 200 is placed within the first section 135 of the housing and into the first recess 174. The first electrical conductor is first inserted into the insulation displacement slots 311 and 321 of the first and second contacts 302, 303, respectively, by closing the cap 106. The first electrical conductor 200 first rests within and makes contact with the narrow portion 322 of the second insulation displacement slot 321 and passes through the wide portion 312 of the first insulation displacement slot 311. Inside slot edges 318 and 320 of the first leg 317 and second leg 319 of the second contact 303 displace a portion of an insulation sheath 202 covering the first electrical conductor 200 such that the conductive core 204 of the first electrical conductor 200 electrically contacts the legs 317, 319 of the second contact 303. However, the first IDC element 300 is capable of supporting two electrical conductors.
After the first electrical conductor 200 is inserted into the insulation displacement slots 311 and 321, the second electrical conductor 206 is inserted within the first section 135 of the housing 130 and on top of the first electrical conductor 200, which is already in contact with the first and second contacts 302, 303. The first electrical conductor 200 is thus pressed further down into the insulation displacement slots 311 and 321 such that the first electrical conductor 200 makes contact with the narrow portion 314 of the first insulation displacement slot 311 and passes through the wide portion 324 of the second insulation displacement slot 321. Inside slot edges 308 and 310 of the first leg 307 and second leg 309 of the first contact 302 displace a portion of the insulation sheath 202 covering the first electrical conductor 200 such that the conductive core 204 now electrically contacts the legs 307, 309 of the first contact 302.
As the second electrical conductor 206 is inserted into insulation displacement slots 311 and 321, pressing the first electrical conductor 200 downward, the second electrical conductor 206 makes contact with the narrow portion 322 of the second insulation displacement slot 321 and passes through the wide portion 312 of the first insulation displacement slot 311. Inside slot edges 318 and 320 of the first leg 317 and second leg 319 of the second contact 303 displace a portion of an insulation sheath 208 covering the second electrical conductor 206 such that the conductive core 210 electrically contacts the legs 317, 319 of the second contact 303.
It is preferable that the first electrical conductor 200 is inserted into the contacts 302, 303 first. Then, once inserted, the cap 106 is reopened and the second electrical conductor 206 is inserted into the contacts 302, 303. However, it maybe possible to insert both the first electrical conductor 200 and second electrical conductor 206 simultaneously with the cap 106.
The wide portion 312 of the first contact 302 creates a larger space for the second electrical conductor 206 to enter. This wide portion 312 prevents stresses within the first contact 302 from exerting a force, which may bend the first leg 307 and second leg 309 outward and may minimize contact between the conductive core 204 of the first conductor 200 and the legs 307, 309. Similarly, the wide portion 324 of the second contact 303 creates a larger space for the first electrical conductor 200 to enter when pressed downward by the second electrical conductor 206. This wide portion 324 prevents stresses within the second contact 303 from exerting a force, which may bend the first leg 317 and second leg 319 outward and may minimize contact between the conductive core 210 of the second conductor 206 and the legs 317, 319. Even in cases of very large or very small electrical conductors, the wide portions 312, 324 will tend to minimize the tendency of stressing within the first and second contacts 302, 303, which may ultimately effect the electrical connections made between the contacts 302, 303 and the electrical conductors 200, 206.
The narrow portion 314 of the first contact 302 creates a small space for the first electrical conductor 200 such that even if electrical contact is not made at the wide portion 324 of the second contact 303, contact will be made with the first electrical conductor 200 at the narrow portion 314 of the first contact 302. Further, even if bending occurs in the first contact 302, because the first electrical conductor 200 is within the narrow portion 314, the second electrical conductor 206 makes electrical contact at the narrow portion 322 of the second contact 303.
The inside slot edges reduce the forces necessary to insert the electrical conductors within the first contact 302 and second contact 303. The inside slot edges may be formed on both legs, as shown in
The first leg 307 and second leg 309 of the first contact 302 is shown as angled opposite to the first leg 317 and second leg 319 of the second contact 303. However, the legs 307, 309 of the first contact 302 and legs 317, 319 of the second contact may be angled in any suitable orientation to create one or two inside slot edges.
Once the first and second electrical conductors 200, 206 are inserted within the first and second contacts 302, 302 as shown in
Any standard telephone jumper wire with PCV insulation may be used as the electrical conductor. The wires may be, but are not limited to: 22 AWG (round tinned copper wire nominal diameter 0.025 inches (0.65 mm) with nominal PVC insulation thickness of 0.0093 inches (0.023 mm)); 24 AWG (rounded tinned copper wire nominal diameter 0.020 inches (0.5 mm) with nominal PVC insulation thickness of 0.010 inches (0.025 mm); 26 AWG (rounded tinned copper wire nominal diameter 0.016 inches (0.4 mm) with nominal PVC insulation thickness of 0.010 inches (0.025 mm).
The first contact 402 includes a first leg 407 and a second leg 409 separated from one another to form a first insulation displacement slot 411. The second contact 403 includes a first leg 417 and a second leg 419 separated from one another to form a second insulation displacement slot 421. The first insulation displacement slot 411 and second insulation displacement slot 421 may have wide portions and narrow portions similar to the first IDC element 300 shown in
As compared with the embodiment shown in
Although not shown, the alternative IDC element 400 may be laterally angled as shown in
Although
Although the present invention has been described with reference to preferred embodiments, workers skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the invention.
| Number | Name | Date | Kind |
|---|---|---|---|
| 3617983 | Patton | Nov 1971 | A |
| 3702456 | Patton | Nov 1972 | A |
| 3845455 | Shoemaker | Oct 1974 | A |
| 3854114 | Kloth et al. | Dec 1974 | A |
| 4017140 | Reavis, Jr. et al. | Apr 1977 | A |
| 4046446 | Reavis, Jr. | Sep 1977 | A |
| 4192570 | Van Horn | Mar 1980 | A |
| 4508411 | Hughes et al. | Apr 1985 | A |
| 4533196 | Forberg et al. | Aug 1985 | A |
| 4541679 | Fiedler et al. | Sep 1985 | A |
| 4795363 | Scherer et al. | Jan 1989 | A |
| 4815988 | Scherer | Mar 1989 | A |
| 4932894 | Scherer | Jun 1990 | A |
| 4995829 | Geib et al. | Feb 1991 | A |
| 5178558 | Knox et al. | Jan 1993 | A |
| 5199899 | Ittah | Apr 1993 | A |
| 5281163 | Knox et al. | Jan 1994 | A |
| 5435747 | Franckx et al. | Jul 1995 | A |
| 5449299 | Shimirak et al. | Sep 1995 | A |
| 5504654 | Knox et al. | Apr 1996 | A |
| 5549489 | Baggett et al. | Aug 1996 | A |
| RE35325 | Wass et al. | Sep 1996 | E |
| 5556296 | Dussausse et al. | Sep 1996 | A |
| 5575689 | Baggett et al. | Nov 1996 | A |
| 5664963 | Yamamoto et al. | Sep 1997 | A |
| 5762518 | Tanigawa et al. | Jun 1998 | A |
| 5785548 | Capper et al. | Jul 1998 | A |
| 5797759 | Mattis et al. | Aug 1998 | A |
| 5836791 | Waas et al. | Nov 1998 | A |
| 5967826 | Letailleur | Oct 1999 | A |
| 6015312 | Escane | Jan 2000 | A |
| 6089902 | Daoud | Jul 2000 | A |
| 6099343 | Bonvallat et al. | Aug 2000 | A |
| 6152760 | Reeser | Nov 2000 | A |
| 6159036 | Daoud | Dec 2000 | A |
| 6188560 | Waas | Feb 2001 | B1 |
| 6193556 | Escane | Feb 2001 | B1 |
| 6222717 | Waas et al. | Apr 2001 | B1 |
| 6254420 | Letailleur et al. | Jul 2001 | B1 |
| 6254421 | Denovich et al. | Jul 2001 | B1 |
| 6406324 | Duesterhoeft et al. | Jun 2002 | B1 |
| 6582247 | Siemon | Jun 2003 | B1 |
| 6604956 | Ruiz et al. | Aug 2003 | B1 |
| 6676430 | Conorich | Jan 2004 | B1 |
| 6811430 | Carrico et al. | Nov 2004 | B1 |
| 6893280 | Thompson et al. | May 2005 | B1 |
| 20020094715 | Pepe et al. | Jul 2002 | A1 |
| 20030049961 | Tricaud et al. | Mar 2003 | A1 |
| 20030156389 | Busse et al. | Aug 2003 | A1 |
| Number | Date | Country |
|---|---|---|
| 33 13 654 | Oct 1984 | DE |
| 43 19 565 | Jul 1994 | DE |
| 0 073 740 | Jun 1985 | EP |
| 0 310 339 | Apr 1989 | EP |
| 0 271 413 | May 1992 | EP |
| 0 778 637 | Jun 1997 | EP |
| 0 718 915 | Jul 1997 | EP |
| 0 878 866 | Nov 1998 | EP |
| 2 730 096 | Aug 1996 | FR |
| 2 129 628 | May 1984 | GB |
| 2 149 231 | Jun 1985 | GB |
| 2 293 696 | Apr 1996 | GB |
| WO 9904454 | Jan 1999 | WO |
| WO 9904455 | Jan 1999 | WO |
| WO 0157957 | Aug 2001 | WO |
| Number | Date | Country | |
|---|---|---|---|
| 20060057883 A1 | Mar 2006 | US |