Randomly-accessible electrical busbar with protective cover and associated mating connector
국가/구분 |
United States(US) Patent
등록
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국제특허분류(IPC7판) |
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출원번호 |
UP-0236006
(2008-09-23)
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등록번호 |
US-7699635
(2010-05-20)
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발명자
/ 주소 |
- Weaver, Thomas L.
- Winkler, Edward R.
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출원인 / 주소 |
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대리인 / 주소 |
Hope Baldauff Hartman LLC
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인용정보 |
피인용 횟수 :
5 인용 특허 :
8 |
초록
▼
Apparatus and systems described herein provide for a randomly-accessible electrical busbar with a protective cover and an associated mating connector. Both the busbar and the associated mating connector have multiple, electrically conductive bristles protruding from a surface. The busbar is protecte
Apparatus and systems described herein provide for a randomly-accessible electrical busbar with a protective cover and an associated mating connector. Both the busbar and the associated mating connector have multiple, electrically conductive bristles protruding from a surface. The busbar is protected by a nonconductive fabric cover to reduce the risk of a person from accidentally contacting the electrically conductive bristles. A connection is made between the mating connector and the busbar by the bristles of the mating connector penetrating the protective fabric cover and interdigitating with the bristles of the busbar.
대표청구항
▼
What is claimed is: 1. An electrical connection apparatus comprising: a busbar comprising an electrically conductive surface having a plurality of electrically conductive bristles disposed substantially perpendicular therefrom; a nonconductive fabric cover covering the plurality of electrically con
What is claimed is: 1. An electrical connection apparatus comprising: a busbar comprising an electrically conductive surface having a plurality of electrically conductive bristles disposed substantially perpendicular therefrom; a nonconductive fabric cover covering the plurality of electrically conductive bristles disposed from the electrically conductive surface of the busbar; and a mating connector comprising an electrically conductive surface having a plurality of electrically conductive bristles disposed substantially perpendicular therefrom, wherein a connection between the mating connector and the busbar is created by the plurality of electrically conductive bristles disposed from the electrically conductive surface of the mating connector penetrating through the nonconductive fabric cover and interdigitating with the plurality of electrically conductive bristles disposed from the electrically conductive surface of the busbar. 2. The apparatus of claim 1, wherein the busbar is of arbitrary size along a first dimension allowing a mating connector of fixed size to be connected to the busbar at any position along the first dimension of the busbar. 3. The apparatus of claim 2, wherein multiple mating connectors may be connected to the busbar at various positions along the first dimension of the busbar. 4. The apparatus of claim 1, wherein the nonconductive fabric cover is configured to reduce the risk of a contact between a person and the electrically conductive surface of the busbar or the plurality of electrically conductive bristles disposed from the electrically conductive surface of the busbar. 5. The apparatus of claim 1, wherein each of the plurality of electrically conductive bristles disposed from the electrically conductive surface of the mating connector is configured with a pointed end such that the bristle may penetrate the nonconductive fabric cover when a force is applied between the mating connector and the nonconductive fabric cover. 6. The apparatus of claim 5, wherein each of the plurality of electrically conductive bristles disposed from the electrically conductive surface of the busbar is configured with a blunt surface such that the bristle will not penetrate the nonconductive fabric cover when a force is applied between the nonconductive fabric cover and the busbar. 7. The apparatus of claim 1, wherein the plurality of electrically conductive bristles are made from beryllium copper, stainless steel, or conductive-polymer-coated carbon nanotubes. 8. The apparatus of claim 1, wherein the nonconductive fabric cover comprises a fabric woven from nonconductive polymeric fibers. 9. The apparatus of claim 8, wherein the nonconductive polymeric fibers comprise nylon, fiberglass, fluorinated ethylene propylene, or an ethylene-tetrafluoroethylene fluoropolymer. 10. A system for connecting an equipment module to a power bus, comprising: a mounting framework comprising a means for mounting the equipment module; a power bus attached to the mounting framework comprising an electrically conductive surface having a plurality of electrically conductive bristles disposed substantially perpendicular therefrom; a nonconductive fabric cover attached to the mounting framework covering the power bus; and a mating connector attached to the equipment module comprising an electrically conductive surface having a plurality of electrically conductive bristles disposed substantially perpendicular from therefrom, wherein when the equipment module is mounted to the mounting framework, the plurality of electrically conductive bristles disposed from the electrically conductive surface of the mating connector penetrate the nonconductive fabric cover and interdigitate with the plurality of electrically conductive bristles disposed from the electrically conductive surface of the power bus, establishing a connection between the power bus and the equipment module. 11. The system of claim 10, wherein the mounting framework and power bus are configured such that multiple equipment modules may be mounted and connected to the power bus at any position along the mounting framework. 12. The system of claim 10, wherein the nonconductive fabric cover is configured to reduce the risk of a contact between a person and the power bus. 13. The system of claim 10, wherein each of the plurality of electrically conductive bristles disposed from the electrically conductive surface of the mating connector is configured with a pointed end, such that the bristle may penetrate the nonconductive fabric cover when the equipment module is mounted to the mounting framework, and wherein each the plurality of electrically conductive bristles disposed from the electrically conductive surface of the power bus is configured with a blunt surface, such that the bristle will not penetrate the nonconductive fabric cover when the equipment module is mounted to the mounting framework. 14. An electrical connection apparatus comprising: a conductive fabric bus stretched between two conductive supporting members; a nonconductive fabric cover covering the conductive fabric bus; and a mating connector comprising an electrically conductive surface having a plurality of electrically conductive bristles disposed substantially perpendicular therefrom, wherein a connection between the mating connector and the conductive fabric bus is created by the plurality of electrically conductive bristles penetrating the nonconductive fabric cover and contacting the conductive fabric bus. 15. The apparatus of claim 14, wherein the conductive fabric bus comprises a fabric woven from conductive-polymer-coated carbon nanotubes or aluminum fibers. 16. The apparatus of claim 14, wherein the conductive fabric bus is of arbitrary size along a first dimension allowing a mating connector of fixed size to be connected to the conductive fabric bus at any position along the first dimension of the conductive fabric bus. 17. The apparatus of claim 16, wherein multiple mating connectors may be connected to the conductive fabric bus at various positions along the first dimension of the conductive fabric bus. 18. The apparatus of claim 14, wherein the nonconductive fabric cover is configured to reduce the risk of a contact between the conductive fabric bus and a person. 19. The apparatus of claim 14, wherein each of the plurality of electrically conductive bristles is configured with a pointed end such that the bristle may penetrate the nonconductive fabric cover and contact the conductive fabric bus when a force is applied between the mating connector and the conductive fabric bus. 20. The apparatus of claim 14, wherein the plurality of electrically conductive bristles are made from beryllium copper, stainless steel, or conductive-polymer-coated carbon nanotubes.
이 특허에 인용된 특허 (8)
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Burns Francis C. (Apalachin NY) Kaufman John J. (Windsor NY) King David E. (Endicott NY) Knight Alan D. (Newark Valley NY), Cone electrical contact.
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Hall James R. (Bainbridge NY) Whallon ; Jr. William P. (Unadilla NY), Electrical conductor having an integral electrical contact.
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Marsh Edward K. (Sidney NY), Electrical connector assembly.
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Niles Paul D. (Bainbridge NY) Whallon ; Jr. William P. (Unadilla NY) Normann Richard W. (Otego NY), Electrical connector assembly.
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Chen,Hsing, Micro-connector structure and fabricating method thereof.
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Urbish Glenn F. (Coral Springs FL) Pennisi Robert W. (Boca Raton FL) Mullen ; III William Boone (Boca Raton FL) Shisler Robert W. (Parkland FL) Ceraldi Richard A. (Austin TX), Multipoint electrical interconnection having deformable J-hooks.
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Urbish Glenn F. ; Pennisi Robert W. ; Mullen ; III William Boone ; Dorinski Dale W., Solderless electrical interconnection including metallized hook and loop fasteners.
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Yamamoto,Masataka, Wire harness including hook and loop shaped attaching members and a method of attaching a wire harness using the same.
이 특허를 인용한 특허 (5)
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Barnette, Jamaica L.; Clemo, Raymond M., Bus bar for power distribution on a printed circuit board.
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Shigihara, Masayoshi, Minute connector.
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Temblador, Richard; Carlson, John R.; Herrin, Jeffrey D.; Kummer, Randy D., Piercing connector for continuous flexible bus.
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Temblador, Richard; Carlson, John R.; Herrin, Jeffrey D.; Kummer, Randy D., Piercing connector for continuous flexible bus.
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Slipper, Michael E.; Wolfe, Tristan M.; Simmons, Daniel J., Slip ring having multiple brushes axially applied to a segmented busbar.
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