Claims
- 1. A terminal block for connecting a conductive member to a conductive contact, said terminal block comprising:
- a base;
- a housing retained on said base, a cavity being defined between said base and said housing, said housing having at least one opening communicating with said cavity;
- a conductive contact at least partially retained in said cavity;
- an actuator moveably retained in said housing, said actuator defining at least one receiving port for receiving a conductive member, said actuator being moveable upwardly from a fist position generally adjacent said base to a second position in said cavity generally adjacent an upper portion of said housing, said first position being in close proximity to said conductive contact, said actuator being moveable from said first position to said second position to generally align said receiving port with at least a portion of said opening for receiving a conductive member through said opening into said receiving port, said actuator being moveable downwardly from said second position to said first position for engaging said conductive member with said conductive connector;
- an actuator driver coupled to said actuator for moving said actuator in said housing, said actuator driver being coupled to said actuator for providing a mechanical advantage in moving said actuator between said first and second positions; and
- an elastically displaceable dielectric material cured in said cavity encapsulating said conductive contact and actuator in said first position, movement of said actuator from said fist position to said second position causing at least a portion of said elastically displaceable dielectric material to be displaced out of said cavity of said housing, movement of said actuator from said second position to said first position causing said displaced portion of said elastically displaceable dielectric material to be returned to said cavity.
- 2. A terminal block according to claim 1, further comprising a resilient structure retained over at least said opening, said resilient structure being elastically expanded and contracting upon displacement and replacement, respectively, of said elastically displaceable dielectric material through said opening, said resilient structure protecting said elastically displaceable dielectric material from detrimental environmental effects.
- 3. A terminal block according to claim 1, said elastically displaceable dielectric material comprising a non-conductive gel.
- 4. A terminal block according to claim 1, wherein said actuator driver includes a threaded portion threadedly engaged with a corresponding treaded portion of said actuator, said actuator driver being rotated for producing generally axial displacement of said actuator between said first and second positions.
- 5. A terminal block according to claim 1, further comprising a head portion on said actuator driver being accessible externally of said housing for activating said actuator externally of said housing.
- 6. A terminal block according to claim 1, said actuator comprising a frame, said elastically displaceable dielectric material generally displaceable around said frame when moved between said first and second positions.
- 7. A terminal block according to claim 1 in which said base provides a foundation for supporting said conductive contact in said housing.
- 8. A terminal block according to claim 1, said conductive contact having a test point thereon, said housing defining a test port spaced apart from said opening, said test port providing access to said test point spaced apart from said opening.
- 9. A terminal block according to claim 10, further including a guide structure thereon for directing a testing member extending into said test port into engagement with said test point.
- 10. A terminal block according to claim 1, further comprising at least two openings associated with said actuator.
- 11. A terminal block according to claim 10, wherein said at least two openings associated with said actuator are D-shaped for accepting an F-drop wire therethrough.
- 12. A terminal block according to claim 1, further comprising an actuator guide channel positioned in said housing, said actuator guide channel receiving a portion of said actuator therein for guiding movement of said actuator within said housing.
- 13. A terminal block according to claim 1 in which at least a portion of the conductive contact extends through said base, and in which a potting compound contacts at least a part of said portion of the conductive contact extending through said base.
- 14. A terminal block according to claim 1, said housing having at least two openings on the same side of said housing for providing that both a tip and ring connection can be made into the same side of said housing.
- 15. A terminal block for engaging conductive members received by the terminal block with conductive contacts in the terminal block, said terminal block comprising:
- a housing having a cavity formed therein, said housing having a plurality of openings for receiving said conductive members into said housing;
- interconnection assemblies retained in said housing, said interconnection assemblies including: an actuator aligned with at least one of said openings in said housing and movable within said housing for securably engaging one or more conductive members with a corresponding one of said conductive contacts in said housing and an actuator driver for activating said actuator;
- at least one insulating portion disposed in said housing between neighboring interconnection assemblies, said insulating portions dividing said cavity into a plurality of interconnected sections, each interconnected section of said plurality of interconnected sections communicating with neighboring interconnected sections; and
- an elastically displaceable dielectric material cured in said cavity within and between each of said plurality of interconnected sections encapsulating at least a portion of said interconnection assemblies in said cavity.
- 16. A terminal block according to claim 15, each of said insulating portions defining a divider defining a passageway in said cavity for permitting displacement of said elastically displaceable dielectric material between said interconnected sections within said cavity in said housing.
- 17. A method as set forth in claim 16, further comprising the steps of:
- providing a resilient structure for protecting said elastically displaceable dielectric material from detrimental environmental effects;
- attaching said resilient structure to said housing over at least said opening;
- expanding said resilient structure away from said opening upon displacement of said elastically displaceable dielectric material through said opening; and
- contracting said resilient structure towards said opening upon replacement of said elastically displaceable dielectric material to said cavity through said opening.
- 18. A terminal block according to claim 15, said elastically displaceable dielectric material comprising non-conducting gel.
- 19. A terminal block according to claim 15, said actuator comprising a frame-like structure, said elastically displaceable dielectric material displaceable relative to said frame-like structure when said actuator driver is activated to move said actuator.
- 20. A terminal block according to claim 15, said conductive contact including a barrel shaped insulation displacement connector portion, said connector portion including a pair of arms defining a slot through which said conductive member is moved, said actuator including a stabilizing member extend through a passage defined by said conductive contact.
- 21. A method of engaging a conductive member with a conductive contact in a terminal block, said terminal block including a base, a housing retained on the base, a cavity being defined between said base and said housing, said housing having at least one opening communicating with said cavity, said conductive contact at least partially retained in said cavity, an actuator moveably retained in said housing, said actuator defining at least one receiving port, and an actuator driver coupled to said actuator for moving said actuator in said housing, said method comprising the steps of:
- depositing an uncured elastically displaceable dielectric material in said cavity so that said actuator and said conductive contact retained in said housing are immersed in said elastically displaceable dielectric material;
- curing said elastically displaceable dielectric material in said cavity so that said conductive contact and said actuator are encapsulated with elastically displaceable dielectric material, said curing being carried out with said actuator in a first position so that said actuator is encapsulated in said first position, said first position being generally adjacent said base;
- moving said actuator from said first position to a second position in said cavity to generally align said receiving port with said opening, said second position being generally adjacent an upper portion of said cavity, movement of said actuator from said first position to said second position causing at least a portion of said elastically displaceable dielectric material to be displaced out of said cavity of said housing;
- inserting said conductive member through said opening and into said receiving port;
- moving said actuator from said second position to said first position for engaging said conductive member with said conductive contact, movement of said actuator from said second position to said first position causing said displaced portion of said elastically displaceable dielectric material to be returned to said cavity.
- 22. A method of assembling a terminal block, said method comprising the steps of:
- providing a housing having openings therein, a base having at least one conductive contact thereon, and an actuator,
- covering said openings on an outside of said housing;
- placing said actuator in close proximity to said conductive contact;
- placing said conductive contact in said housing;
- depositing an uncured dielectric gel in said housing so that said conductive contact and said actuator retained in said housing are immersed in said uncured dielectric gel; and
- curing said dielectric gel so that said conductive contact and said actuator are encapsulated with dielectric gel, said curing being carried out with said actuator positioned in close proximity to said conductive contact so that said actuator is encapsulated with dielectric gel in close proximity to said conductive contact.
- 23. A method as set forth in claim 22, further comprising the steps of:
- providing an actuator driver for producing a mechanical advantage in moving said actuator in said housing;
- assembling said actuator driver to said actuator with said actuator being set in a first position;
- positioning said assembled actuator driver and actuator in said housing; and
- positioning said conductive contact in said housing to position said actuator in close proximity thereto.
- 24. A method as set forth in claim 22, further comprising the steps of:
- providing a sheet of resilient material;
- attaching said sheet of resilient material over at least said opening before depositing said uncured dielectric gel into said housing to prevent said uncured dielectric gel from leaking from said housing prior to curing.
- 25. A method of providing environmental protection for a conductive connection of a conductive member and a conductive structure in a terminal block, said terminal block including a base, a housing retained on said base, a cavity being defined between said base and said housing, said housing defining at least one opening for communicating with said cavity, a conductive contact at least partially retained in said cavity, an actuator moveably retained in said housing, an actuator driver coupled to said actuator for moving said actuator in said housing an elastically displaceable dielectric material cured in said cavity encapsulating said conductive contact and actuator in a first position, said first position being generally adjacent said base, said method comprising the steps of:
- operating said actuator drive to move said actuator upwardly from said first position to a second position in said cavity to receive said conductive member therein; said second position being generally adjacent an upper portion of said cavity, movement of said actuator from said first position to said second position causing at least a portion of said elastically displaceable dielectric material to be displaced out of said cavity of said housing;
- inserting said conductive member into said actuator; and
- operating said actuator driver to move said actuator downwardly from said second position to said first position for engaging said conductive member with said conductive contact; movement of said actuator from said second position to said first position causing said displaced portion of said elastically displaceable dielectric material to be returned to said cavity.
- 26. A method as set forth in claim 25, further comprising the steps of:
- providing a sheet of resilient material; and
- retaining said sheet of resilient material over at least said opening;
- said sheet of resilient material being expanded away from said opening when said elastically displaceable dielectric material is displaced through said opening, said sheet of resilient material contracting towards said opening when said displaced elastically displaceable dielectric material returns to said cavity through said opening.
CROSS REFERENCE
This patent application claims the benefit of priority of co-pending United States Provisional Application Ser. No. 60/028,859 filed Oct. 16, 1996.
US Referenced Citations (22)