Claims
- 1. An electrical connector comprising:
a connector body having a passageway therethrough and comprising
a first layer adjacent the passageway and comprising a material having a relatively low resistivity, a second layer surrounding said first layer and comprising a material having a relatively high resistivity, and a third layer surrounding said second layer and comprising a material having a relatively low resistivity, at least one of said first, second and third layers comprising a thermoplastic elastomer (TPE) material; and a cold shrink core positioned within at least a portion of the passageway.
- 2. An electrical connector according to claim 1 wherein said cold shrink core comprises a carrier and a release member connected thereto so that said carrier maintains adjacent connector body portions in an expanded state until said release member is activated.
- 3. An electrical connector according to claim 1 wherein the passageway has first and second ends; and wherein said cold shrink core is positioned within at least one of the first and second ends of the passageway.
- 4. An electrical connector according to claim 1 wherein the passageway has first and second ends; and wherein said cold shrink core is positioned within only the second end of the passageway.
- 5. An electrical connector according to claim 1 wherein said second layer comprises an insulative TPE material.
- 6. An electrical connector according to claim 1 wherein each of said first and third layers comprises a semiconductive TPE material.
- 7. An electrical connector according to claim 1 wherein the passageway has first and second ends and a medial portion extending therebetween; and wherein said first layer is positioned along the medial portion of the passageway and is spaced inwardly from respective ends thereof.
- 8. An electrical connector according to claim 7 wherein the medial portion of the passageway has a bend therein.
- 9. An electrical connector according to claim 8 wherein said first layer comprises at least one outwardly extending rib adjacent the bend of the passageway to reduce electrical stress.
- 10. An electrical connector according to claim 8 wherein the first end of the passageway has an enlarged diameter to receive an electrical bushing insert therein.
- 11. An electrical connector according to claim 7 wherein said connector body has a tubular shape defining the passageway.
- 12. An electrical connector according to claim 11 wherein said second layer has an enlarged diameter adjacent the medial portion of the passageway.
- 13. An electrical connector according to claim 1 wherein said connector body adjacent at least one of the first and second ends of the passageway has a progressively increasing outer diameter.
- 14. An electrical connector according to claim 1 wherein said connector body adjacent at least one of the first and second ends of the passageway body has a progressively decreasing outer diameter.
- 15. An electrical connector according to claim 1 wherein said first layer has at least one predetermined property to reduce electrical stress thereon.
- 16. An electrical connector according to claim 1 wherein said first layer defines an innermost layer; and wherein said third layer defines an outermost layer.
- 17. An electrical connector according to claim 1 further comprising at least one pulling eye carried by said connector body.
- 18. An electrical connector according to claim 1 wherein said connector body is configured for at least 15 KV and 200 Amp operation.
- 19. An electrical connector according to claim 1 wherein each of said first and third layers has a resistivity less than about 108 Ω·cm; and wherein said third layer has a resistivity greater than about 108 Ω·cm.
- 20. An electrical connector comprising:
a connector body having a passageway therethrough, the passageway having first and second ends and a medial portion with at least one bend therein between the first and second ends, the first end of the passageway having an enlarged diameter to receive an electrical bushing insert therein, said connector body comprising
a first layer adjacent the bend and spaced inwardly from the first and second ends of the passageway, a second layer surrounding said first layer and comprising an insulative thermoplastic elastomer (TPE) material, and a third layer surrounding said second layer and comprising a semiconductive TPE material, a cold shrink core positioned within the second end of the passageway.
- 21. An electrical connector according to claim 20 wherein said cold shrink core comprises a carrier and a release member connected thereto so that said carrier maintains adjacent connector body portions in an expanded state until said release member is activated.
- 22. An electrical connector according to claim 20 wherein said first layer comprises a semiconductive TPE material.
- 23. An electrical connector according to claim 20 wherein said second layer comprises at least one outwardly extending rib adjacent the bend of the passageway to reduce electrical stress.
- 24. An electrical connector according to claim 20 wherein said first layer has at least one predetermined property to reduce electrical stress thereon.
- 25. An electrical connector according to claim 20 wherein said first layer defines an innermost layer; and wherein said third layer defines an outermost layer.
- 26. An electrical connector according to claim 20 further comprising at least one pulling eye carried by said connector body.
- 27. An electrical connector according to claim 20 wherein said connector body is configured for at least 15 KV and 200 Amp operation.
- 28. An electrical connector according to claim 20 wherein each of said first and third layers has a resistivity less than about 108 Ω·cm; and wherein said third layer has a resistivity greater than about 108 Ω·cm.
- 29. A method for making an electrical connector body having a passageway therethrough, the method comprising:
providing a first layer to define at least a medial portion of the passageway; overmolding a second layer surrounding the first layer and comprising an insulative thermoplastic elastomer (TPE) material having a relatively high resistivity; overmolding a third layer surrounding the second layer and comprising a material having a relatively low resistivity; and positioning a cold shrink core within at least a portion of the passageway to make the electrical connector body.
- 30. A method according to claim 29 wherein the cold shrink core comprises a carrier and a release member connected thereto so that the carrier maintains adjacent connector body portions in an expanded state until the release member is activated.
- 31. A method according to claim 29 wherein the passageway has first and second ends; and wherein positioning the cold shrink core comprises positioning the cold shrink core within at least one of the first and second ends of the passageway.
- 32. A method according to claim 29 wherein the passageway has first and second ends; and wherein positioning the cold shrink core comprises positioning the cold shrink core within only the second end of the passageway.
- 33. A method according to claim 29 wherein each of the first and third layers comprises a semiconductive TPE material.
- 34. A method according to claim 29 wherein providing the first layer comprises molding the first layer from a semiconductive TPE material.
- 35. A method according to claim 29 wherein overmolding the second and third layers comprises overmolding the second and third layers so that the first layer is positioned along the medial portion of the passageway and is spaced inwardly from respective ends thereof.
- 36. A method according to claim 35 wherein the medial portion of the passageway has a bend therein.
- 37. A method according to claim 35 wherein providing the first layer and overmolding the first and second layers defines the connector body to have a tubular shape defining the passageway.
- 38. A method according to claim 29 wherein providing the first layer comprises providing the first layer to have at least one predetermined property to reduce electrical stress thereon.
- 39. A method according to claim 29 wherein the first layer defines an innermost layer; and wherein the third layer defines an outermost layer.
- 40. A method according to claim 29 wherein the connector body is configured for at least 15 KV and 200 Amp operation.
- 41. A method according to claim 29 wherein each of the first and third layers has a resistivity less than about 108 Ω·cm; and wherein the third layer has a resistivity greater than about 108 Ω·cm.
RELATED APPLICATION
[0001] This application is based upon prior filed copending provisional application Serial No. 60/380,914 filed May 16, 2002, the entire subject matter of which is incorporated herein by reference in its entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60380914 |
May 2002 |
US |