Claims
- 1. An electrical connection assembly made by providing a terminal assembly including thermoplastic sections having confronting surfaces and a conductor receiving slot opening through the confronting surface of one of the sections and elongate spaced apart energy directors projecting from and extending along the confronting surface of another of the sections, stacking in electrical contacting engagement within the slot axially extending portions of a plurality of electrical conductors, determining the compressibility factor of the conductors axially extending portions forming the stack, forming the slot with a depth equal to the height of the stack less the compressibility factor, positioning the thermoplastic sections in juxtaposed stacked relationship to each other along the confronting surface with the energy directors extending across the slot in axially transverse relationship to the stacked conductors supported within the slot, applying compressive force to the thermoplastic sections to urge the confronting surfaces toward and into engagement with each other and cause the energy directors to apply compressive force to the stacked conductors supported within the slot, applying high frequency vibratory energy to the sections to soften the thermoplastic energy directors and the thermoplastic surface engaged by the energy directors and provide molten thermoplastic material at the interface between the sections while the sections are maintained under compression, and ceasing application of high frequency vibratory energy while the sections are maintained under compression allowing the molten thermoplastic material to solidify to form a weld retaining the sections in assembled relation to each other.
- 2. An in-line array of electrical connections made by forming a terminal assembly including thermoplastic sections having confronting surfaces and an in-line series of conductor receiving slots opening through the confronting surface of one of the sections and an elongated spaced apart energy directors projecting from and extending along the confronting surface of the other of the sections, stacking portions of a plurality of axially elongate wire conductors in each of the slots, determining the compressibility factor of the conductor portions stacked in each of the slots, forming each of the slots with a depth equal te the height of the stack of conductor portions stacked therein less the compressibility factor of the conductor portions forming the stack, positioning the thermoplastic seactions in juxtaposed stacked relationship to each other along the confronting surfaces with the energy directors extending across the slots in axially transverse relationship to the conductor portions stacked within the slots, applying compressive force to the thermoplastic sections to urge the confronting surfaces into engagement with each other and cause the energy directors to apply compressive force to the conductor portions stacked within the slots, applying high frequency vibratory energy to the sections to soften the thermoplastic energy directors and the thermoplastic surfaces engaged by the energy directors to provide molten thermoplastic material at the interface between the sections while the sections are maintained under compression and ceasing the application of high frequency vibratory energy while the sections are maintained under compression to allow the molten thermoplastic material to solidify to form a weld bonding the sections in assembly.
- 3. An electrical connection comprising a terminal assembly, said terminal assembly prior to being assembled including separate thermoplastic sections having confronting surfaces, a conductor receiving slot in one of said sections opening outwardly through the confronting surface of said one of said sections, and a plurality of elongate spaced apart thermoplastic energy directors projecting from and extending along the confronting surface of another of said sections, a plurality of electrical conductors having axially extending portions stacked in electrical contacting engagement within said slot, determining the compressibility factor of at least one of said conductors, forming said slot with a depth substantially equal to the height dimension of said stack less the compressibility factor of said one conductor, said axially extending portions including an axially extending outermost portion projecting outwardly for some distance from said slot and outwardly beyond said confronting surface of said one of said sections, said sections being stacked in juxtaposed relationship to each other along said confronting surfaces with said energy directors transversely bridging said slot and extending across and engaging said axially extending outermost portion, said terminal assembly being assembled by applying compressive force to said sections ur(ging said confronting surfaces toward engagement with each other and causing said energy directors to bear upon said axially extending outermost portion, applying compressive force at axially spaced apart locations to the stack, applying high frequency vibratory energy to said sections melting the thermoplastic energy directors and the thermoplastic surfaces engaged by said energy directors and allowing molten thermoplastic material to flow into said slot filling voids therein, and ceasing application of which frequency vibratory energy when said confronting surfaces have moved into engagement and while the sections are maintained under compression allowing said molten thermoplastic material to solidify welding said sections in assembly with each other and encapsulating in said thermoplastic material said axially extending portions in electrical contacting engagement with each other.
- 4. An electrical connection as set forth in claim 3 wherein said high frequency vibratory energy comprises ultrasonic vibratory energy.
- 5. An electrical connection as set forth in claim 3 wherein each of said energy directors has a generally triangular cross-section.
- 6. An electrical connection as set forth in claim 5 wherein said triangular cross-section includes an apex having an included angle of about 90 degrees.
- 7. An electrical connection as set forth in claim 3 wherein said conductor receiving slot has an inner end wall substantially complementing an associated portion of a conductor axially extending portion received within said slot in engagement with said inner end wall.
- 8. An electrical conductor as set forth in claim 7 wherein said conductor receiving slot has a width substantially equal to the width of an associated conductor axially extending portion received within said slot.
- 9. An electrical connection as set forth in claim 3 wherein at least one of said sections is formed from a fiber reinforced ultrasonically weldable polymer.
- 10. An electrical connection as set forth in claim 9 wherein said fiber reinforced ultrasonically weldable polymer comprises a mixture of thermoplastic polymer and chopped glass fiber.
- 11. An electrical connection as set forth in claim 10 wherein said compressibility factor is determined by providing a test material defining a test slot having a slot width substantially equal to the nominal width of said one conductor and an inner end substantially complementing an associated portion of said one conductor, positioning said one conductor within said inner end of said test slot, applying to said one conductor within said test slot a test force substantially equal to said compressive force, and determining the change in dimension of said one conductor in the direction in which said test force is applied.
- 12. An electrical connector as set forth in claim 11 wherein said compressibility factor of said one conductor is greater than said compressibility factor of another of said conductors and said conductors are stacked within said slot with said one conductor disposed at the bottom of said stack.
- 13. An electrical connection as set forth in claim 3 wherein one of said sections is supported in a fixture mounted on an ultrasonic welding machine and said compressive force and said high frequency vibratory energy is applied to said sections by the horn of said ultrasonic welding machine.
- 14. An electrical connection as set forth in claim 11 wherein at least one of said electrical conductors comprises a stranded wire conductor and said at least one stranded wire conductor is disposed at the bottom of said stack.
- 15. An electrical connection as set forth in claim 11 wherein said conductors are of differing hardness and said stack is formed with the axially extending portion of the softer of the conductors at the bottom of said stack.
- 16. An electrical connection as set forth in claim 3 wherein said compressive force is applied within a range from four to eleven pounds.
- 17. An electrical connection as set forth in claim 3 wherein said compressive force comprises about five pounds.
- 18. An electrical connector as set forth in claim 11 wherein said terminal assembly includes additional energy directors projecting therefrom at opposites sides of said slot and extending in generally parallel relation to the direction of slot extent.
- 19. An electrical connection as set forth in claim 18 wherein each of the energy directors has a generally triangular cross-section and an apex having an included angle of about sixty degrees.
- 20. An electrical connection as set forth in claim 11 wherein at least one of the conductors comprises an axially elongate insulated conductor and the insulation is stripped from said at least one conductor in axially spaced relation to the ends of said at least one conductor exposing an uninsulated portion of said at least one conductor and said axially extending portions including said uninsulated portion are stacked in electrical contacting engagement within said slot.
- 21. An electrical connection as set forth in claim 20 wherein said one of said thermoplastic sections has an outwardly open groove therein intersecting and opening into said slot and a part of the uninsulated portion is disposed within said groove.
- 22. An electrical connection as set forth in claim 11 wherein said conductors include a solid conductor having an arcuate cross-sectional configuration and an axially extending flat portion and said flat portion is disposed within said slot in engagement with another of said axially extending portions.
- 23. An electrical connection as set forth in claim 22 wherein said flat axially extending portion has a multiplicity of serrations thereon.
- 24. An in-line array of electrical connections comprising a terminal assembly, said terminal assembly prior to being assembled including separate thermoplastic sections having confronting surfaces, an in-line series of conductor receiving slots opening through the confronting surface of one of said thermoplastic sections, and elongate spaced apart energy directors projecting from and extending along said confronting surface of another of said thermoplastic sections, a plurality of associated electrical conductors having axially extending portions stacked in electrically contacting engagement in each of said slots and including an axially extending outermost portion having a part thereof exposed externally of its associated slot, determining the compressibility factor of at least one of the axially extending conductor portions stacked in each of said slots, and forming each of said slot with a depth equal to the height of the stack of axially extending conductor portions stacked therein less the compressibility factor of said at least one of said axially extending conductor portions, said one and said another of said thermoplastic sections being stacked in juxtaposed relationship to each other along said confronting surfaces with said energy directors on said another of said sections extending across said slots in axially transverse relationship to and in engagement with the exposed part of each of said outermost axially extending portions, said terminal assembly being assembled by applying compressive force to the thermoplastics sections urging the confronting surfaces toward and into engagement with each other and causing said energy directors to apply compressive force to the outermost axially extending portions, applying high frequency vibratory energy to said sections to melt said thermoplastic energy directors and the thermoplastic surfaces engaged by said energy directors to provide molten thermoplastic material at the interface between said confronting surfaces and to said slots while the sections are maintained under compression, and ceasing the application of high frequency vibratory energy to the sections while the sections are maintained under pressure allowing the molten thermoplastic material to solidify welding said confronting surfaces in assembly and at least partially encapsulating the resulting electrical connections within said slots.
- 25. An in-line array of electrical connections as set forth in claim 24 wherein each set of adjacent slots in said array has a barrier therebetween and the width of each said adjacent slots exceeds the width of said barrier.
- 26. An electrical connection comprising; a terminal assembly, and a plurality of electrical conductors, said terminal assembly prior to being assembled including separate thermoplastic sections having confronting surfaces and a conductor receiving slot opening outwardly through the confronting surface of one of said sections, said electrical conductors having axially extending portions stacked in electrically contacting engagement within said slot, said slot having an inner end wall substantially complementing an undeformed axially extending portion of an associated one of said conductors received within said slot, determining the compressibility factor of at least one of said axially extending portions, forming said conductor receiving slot with the depth of said slot equal to then height of the stack of said axially extending portions stacked therein less the compressibility factor of said at least one of said axially extending portions, said terminal assembly further including a plurality of elongate spaced apart energy directors projecting from and extending along the confronting surface of another of the sections, said terminal assembly being assembled by positioning said thermoplastic sections in juxtaposed stacked relationship to each other along said confronting surfaces with said energy directors extending across said slot in axially transverse relationship to the stacked axially extending conductor portions supported within said slot, applying compressive force to said thermoplastic sections to urge said confronting surfaces toward engagement with each other causing said energy directors to apply compressive force at axially spaced apart locations to said stacked axially extending conductor portions supported within said slot, applying high frequency vibratory energy to said sections to soften said energy directors and the thermoplastic surfaces engaged by said energy directors to provide molten thermoplastic material at the interface between said confronting surfaces while said sections are maintained under compression, and ceasing application of high frequency vibratory energy while maintaining said sections under compression allowing the molten thermoplastic material to solidify to integrally join said sections in assembly generally along said confronting surfaces and at least partially encapsulate said axially extending portions of said conductors in electrically conducting coengaqement with each other.
- 27. An electrical connection comprising a plurality of electrical conductors including at least one axially elongate insulated conductor, and a terminal assembly, said terminal assembly before being assembled including separate thermoplastic sections having confronting surfaces and a conductor receiving slot opening through the confronting surface of one of said sections, an outwardly open groove in said one of the sections intersecting and opening into said slot, and a plurality of elongate spaced apart energy directors projecting from and extending along the confronting surface of another of said sections, said at least one insulated conductor having insulation stripped therefrom in axially spaced relation to its ends to expose an axially extending portion of said at least one axially elongate insulated conductor, said electrical conductors being stacked in electrical contacting engagement with each other within said slot including an exposed axially extending portion of the at least one insulated conductor, determining the compressibility factor of at least one of said conductors stacked within said slot, forming said slot with a depth substantially equal to the height dimension of said stacked conductors less the compressiblity factor of said at least one of said conductors, a part of the exposed axially extending portion of said at least one insulated conductor being disposed within said groove, said terminal assembly being assembled by positioning said thermoplastic sections in juxtaposed stacked relationship to each other along said confronting surfaces with said energy directors extending across said slot in axially transverse relationship to the stacked conductors supported within said slot, applying compressive force to the thermoplastic sections to urge the confronting surfaces toward engagement with each other and cause the energy directors to apply compressive force at axially spaced apart locations to the stacked conductors supported within said slot, applying high frequency vibratory energy to said sections to soften the thermoplastic energy directors and the thermoplastic surfaces engaged by said energy directors to provide molten thermoplastic material at the interface between the sections, and ceasing application of high frequency vibratory energy while the sections are maintained under compression to allow the molten thermoplastic material to solidify integrally joining said sections in assembly with each other.
- 28. An electrical connection comprising a terminal assembly, said terminal assembly before being assembled including separate thermoplastic sections having confronting surfaces, a conductor receiving slot opening through the confronting surface of one of the sections, and a plurality of elongate spaced apart energy directors projecting from and extending along the confronting surface of another of the sections, a plurality of electrical conductors having axially extending portions stacked in electrical contacting engagement within said slot, said slot having a depth substantially equal to the height dimension of the stacked conductors less the compressibility factor of at least one of said conductors, and wherein said terminal assembly is assembled by positioning said thermoplastic sections in juxtaposed stacked relationship to each other along said confronting surfaces with said energy directors extending across said slot in axially transverse relationship to said stacked axially extending portions supported within said slot, applying compressive force to said thermoplastic sections to urge said confronting surfaces toward engagement with each other and cause said energy directors to apply compressive force at axially spaced apart locations to said stacked axially extending portions supported within the slot, applying high frequency vibratory energy to said sections to melt said thermoplastic energy directors and the thermoplastic surfaces engaged by the energy directors to provide molten thermoplastic material at the interface between said sections, and ceasing application of high frequency vibratory energy while said sections are maintained under compression to allow the molten thermoplastic material to solidify integrally joining the sections in assembly with each other.
- 29. An electrical connection as set forth in claim 28 wherein said compressibility factor is determined by providing a test material defining a test slot having a slot width substantially equal to the nominal width of the one conductor and in inner end substantially complementing an associated portion of the one conductor, positioning the cone conductor within the test slot, applying to the one conductor within the test slot a test force substantially equal to the compressive force, and determining the change in dimension of the one conductor in the direction of the applied test force.
- 30. A high density in-line array of electrical connections comprising a plurality ot electrical conductors, an elongate longitudinally extending terminal assembly said terminal assembly prior to being assembled including separate thermoplastic sections having confronting surfaces, a longitudinally extending in-line array of electrical conductor receiving slots opening outwardly through the confronting surface of one of the sections, and a plurality of integral longitudinally extending and transversely spaced apart energy directors projecting from the confronting surface of another of said sections, said electrical conductors having axially extending portions stacked in electrical contacting engagement with each other and within the slots and forming an in-line array of stacks of electrical conductors, each of the stacks including an outermost axially extending portion projecting outwardly for some distance from its associated slot and outwardly beyond the confronting surface of the one of the sections, determining the compressibility factor of each of said stacks, forming each of said slots with a depth equal to the height dimension of the stack received therein less the compressibility factor of the stack received therein, said terminal assembly being assembled by positioning said sections in juxtaposed stacked relationship to each other along confronting surfaces with the energy directors bridging the slots and extending across and in engagement with the axially extending outermost portion of each of the stacks, applying compressive force to the thermoplastic sections to urge the confronting surfaces toward engagement with each other bringing the energy directors to bear upon the outermost axially extending portion of each of the stacks and applying compressive force at axially spaced apart locations to the stacks, and applying high frequency vibratory energy to the sections while the sections are maintained under compression to substantially melt the thermoplastic energy directors including the portions of the energy directors welding the interface between the sections and allowing molten thermoplastic material to flow into the slots encapsulating coengaging axially extending portions of the conductors in electrical contacting engagement within the slots.
- 31. An electrical connection comprising a terminal assembly including separate thermoplastic sections having confronting surfaces, a conductor receiving slot opening through the confronting surface of one of the sections, a plurality of elongate spaced apart energy directors projecting from and extending along the confronting surface of another of the sections, and a plurality of electrical conductors having axially extending portions stacked in electrical contacting engagement within said slot, said slot having a depth substantially equal to the height dimension of the stacked conductors less the compressibility factor of at least one of said conductors, said thermoplastic sections being in juxtaposed relationship to each other along said confronting surfaces with said energy directors bridging said slot in axially transverse relationship to said stacked axially extending portions supported within said slot and bearing upon said axially extending portions.
Parent Case Info
This is a divisional of-pending application Ser. No. 08/393,843 filed on Feb. 24, 1995 now U.S. Pat. No. 5,857,259.
US Referenced Citations (10)
Divisions (1)
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Number |
Date |
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393843 |
Feb 1995 |
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