Claims
- 1. A connector system comprising:
a socket contact which extends along a first axis, the socket contact has a base and a plurality of tines which extend out from the base and are arranged around the first axis to define a passage with an open end; at least one biasing element that biases at least one of the plurality of tines towards the first axis; and a pin contact which can detachably engage in the passage with the at least one of the plurality of tines biased by the biasing element.
- 2. The system as set forth in claim 1 wherein the socket contact further comprises at least one securing mechanism which secures a position of the biasing element on at least one of the plurality of tines.
- 3. The system as set forth in claim 2 wherein the securing mechanism is at least one groove formed along an outer surface of at least one of the plurality of tines, the at least one biasing element is seated in the at least one groove.
- 4. The system as set forth in claim 1 wherein the at least one of the plurality of tines biased by the biasing element is substantially flexible.
- 5. The system as set forth in claim 4 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element are substantially rigid.
- 6. The system as set forth in claim 5 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater length then the at least one of the plurality of tines biased by the biasing element.
- 7. The system as set forth in claim 5 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater width then the at least one of the plurality of tines biased by the biasing element.
- 8. The system as set forth in claim 1 wherein the biasing element is a spring.
- 9. The system as set forth in claim 1 wherein the biasing element maintains normal biasing properties up to about 135 degrees C.
- 10. A socket contact comprising:
a base; a plurality of tines which extend out from the base and are arranged to define a passage with an open end; and at least one biasing element that biases at least one of the plurality of tines towards the first axis.
- 11. The contact as set forth in claim 10 further comprising at least one securing mechanism which secures a position of the biasing element on at least one of the plurality of tines.
- 12. The contact as set forth in claim 11 wherein the securing mechanism is at least one groove formed along an outer surface of at least one of the plurality of tines, the at least one biasing element is seated in the at least one groove.
- 13. The contact as set forth in claim 10 wherein the at least one of the plurality of tines biased by the biasing element is substantially flexible.
- 14. The contact as set forth in claim 13 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element are substantially rigid.
- 15. The contact as set forth in claim 14 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater length then the at least one of the plurality of tines biased by the biasing element.
- 16. The contact as set forth in claim 14 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater width then the at least one of the plurality of tines biased by the biasing element.
- 17. The contact as set forth in claim 10 wherein the biasing element is a spring.
- 18. The contact as set forth in claim 10 wherein the biasing element maintains normal biasing properties up to about 135 degrees C.
- 19. A method for making a connector system, the method comprising:
providing a socket contact which extends along a first axis, the socket contact has a base and a plurality of tines which extend out from the base and are arranged around the first axis to define a passage with an open end; biasing at least one of the plurality of tines towards the passage with at least one biasing element; and providing a pin contact which can detachably engage in the passage with the at least one of the plurality of tines biased by the biasing element.
- 20. The method as set forth in claim 19 wherein the socket contact further comprises securing a position of the biasing element on at least one of the plurality of tines with a securing mechanism.
- 21. The method as set forth in claim 20 wherein the securing mechanism is at least one groove formed along an outer surface of at least one of the plurality of tines, the at least one biasing element is seated in the at least one groove.
- 22. The method as set forth in claim 19 wherein the at least one of the plurality of tines biased by the biasing element is substantially flexible.
- 23. The method as set forth in claim 22 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element are substantially rigid.
- 24. The method as set forth in claim 23 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater length then the at least one of the plurality of tines biased by the biasing element.
- 25. The method as set forth in claim 23 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater width then the at least one of the plurality of tines biased by the biasing element.
- 26. The method as set forth in claim 19 wherein the biasing element is a spring.
- 27. The method as set forth in claim 19 wherein the biasing element maintains normal biasing properties up to about 135 degrees C.
- 28. A method for making a socket contact, the method comprising:
providing a plurality of tines which extend out from a base and are arranged to define a passage with an open end; and biasing at least one of the plurality of tines towards the passage with at least one biasing element.
- 29. The method as set forth in claim 28 further comprising securing a position of the biasing element on at least one of the plurality of tines with at least one securing mechanism.
- 30. The method as set forth in claim 29 wherein the securing mechanism is at least one groove formed along an outer surface of at least one of the plurality of tines, the at least one biasing element is seated in the at least one groove.
- 31. The method as set forth in claim 28 wherein the at least one of the plurality of tines biased by the biasing element is substantially flexible.
- 32. The method as set forth in claim 31 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element are substantially rigid.
- 33. The method as set forth in claim 32 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater length then the at least one of the plurality of tines biased by the biasing element.
- 34. The method as set forth in claim 32 wherein the remaining one or more of the plurality of tines which are not biased by the biasing element have a greater width then the at least one of the plurality of tines biased by the biasing element.
- 35. The method as set forth in claim 28 wherein the biasing element is a spring.
- 36. The method as set forth in claim 28 wherein the biasing element maintains normal biasing properties up to about 135 degrees C.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Patent Application Ser. No. 60/467,428 filed May 2, 2003 which is herein incorporated by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60467428 |
May 2003 |
US |