Connector and coaxial cable with molecular bond interconnection

Information

  • Patent Grant
  • 11437767
  • Patent Number
    11,437,767
  • Date Filed
    Tuesday, January 26, 2021
    3 years ago
  • Date Issued
    Tuesday, September 6, 2022
    a year ago
Abstract
A coaxial connector in combination with a coaxial cable is provided with an inner conductor supported coaxial within an outer conductor, a polymer jacket surrounding the outer conductor. A unitary connector body with a bore is provided with an overbody surrounding an outer diameter of the connector body. The outer conductor is inserted within the bore. A molecular bond is formed between the outer conductor and the connector body and between the jacket and the overbody. An inner conductor end cap may also be provided coupled to the end of the inner conductor via a molecular bond.
Description
BACKGROUND
1. Field of the Invention

This invention relates to electrical cable connectors. More particularly, the invention relates to a coaxial connector interconnected with a coaxial cable via molecular bonding.


2. Description of Related Art

Coaxial cable connectors are used to terminate coaxial cables, for example, in communication systems requiring a high level of precision and reliability.


To create a secure mechanical and optimized electrical interconnection between a coaxial cable and connector, it is desirable to have generally uniform, circumferential contact between a leading edge of the coaxial cable outer conductor and the connector body. A flared end of the outer conductor may be clamped against an annular wedge surface of the connector body via a coupling body. Further, a conventional coaxial connector typically includes one or more separate environmental seals between the outer diameter of the outer conductor and the connector body and/or between the connector body and the jacket of the coaxial cable. Representative of this technology is commonly owned U.S. Pat. No. 6,793,529 issued Sep. 21, 2004 to Buenz. Although this type of connector is typically removable/re-useable, manufacturing and installation is complicated by the multiple separate internal elements required, interconnecting threads and related environmental seals.


Connectors configured for permanent interconnection with coaxial cables via solder and/or adhesive interconnection are also well known in the art. Representative of this technology is commonly owned U.S. Pat. No. 5,802,710 issued Sep. 8, 1998 to Bufanda et al. However, solder and/or adhesive interconnections may be difficult to apply with high levels of quality control, resulting in interconnections that may be less than satisfactory, for example when exposed to vibration and/or corrosion over time.


Passive Intermodulation Distortion, also referred to as PIM, is a form of electrical interference/signal transmission degradation that may occur with less than symmetrical interconnections and/or as electro-mechanical interconnections shift or degrade over time, for example due to mechanical stress, vibration, thermal cycling, oxidation formation and/or material degradation. PIM is an important interconnection quality characteristic, as PIM from a single low quality interconnection may degrade the electrical performance of an entire RF system.


Coaxial cables may be provided with connectors pre-attached. Such coaxial cables may be provided in custom or standardized lengths, for example for interconnections between equipment in close proximity to each other where the short cable portions are referred to as jumpers. To provide a coaxial cable with a high quality cable to connector interconnection may require either on-demand fabrication of the specified length of cable with the desired connection interface or stockpiling of an inventory of cables/jumpers in each length and interface that the consumer might be expected to request. On-demand fabrication and/or maintaining a large inventory of pre-assembled cable lengths, each with one of many possible connection interfaces, may increase delivery times and/or manufacturing/inventory costs.


Competition in the coaxial cable connector market has focused attention on improving electrical performance, interconnection quality consistency and long term reliability of the cable to connector interconnection. Further, reduction of overall costs, including materials, training and installation costs, is a significant factor for commercial success.


Therefore, it is an object of the invention to provide a coaxial connector and method of interconnection that overcomes deficiencies in the prior art.





BRIEF DESCRIPTION OF THE DRAWINGS

The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention, where like reference numbers in the drawing figures refer to the same feature or element and may not be described in detail for every drawing figure in which they appear and, together with a general description of the invention given above, and the detailed description of the embodiments given below, serve to explain the principles of the invention.



FIG. 1 is a schematic angled isometric view of an exemplary embodiment of a coaxial cable interconnected with a coaxial connector.



FIG. 2 is a schematic cut-away side view of FIG. 1, demonstrating the molecular bond of the outer conductor and connector body via laser weld.



FIG. 3 is a schematic angled isometric view of another exemplary embodiment of a coaxial cable interconnected with a coaxial connector.



FIG. 4 is a schematic partial cut-away view of a prepared coaxial cable end and inner conductor cap.



FIG. 5 is a close-up view of area B of FIG. 4.



FIG. 6 is a schematic cut-away side view of a coaxial connector interconnected with a coaxial connector, demonstrating the molecular bond of the outer conductor and connector body via spin weld.



FIG. 7 is a close-up view of area A of FIG. 6.



FIG. 8 is a schematic cut-away side view of a coaxial connector interconnected with a coaxial connector, demonstrating the molecular bond of the outer conductor and connector body via ultrasonic weld.



FIG. 9 is a close-up view of area C of FIG. 8.



FIG. 10 is a schematic isometric view of an exemplary embodiment of a connector adapter interconnected with a coaxial cable.



FIG. 11 is a schematic isometric view of an interface end, with a Type-N Male connector interface.



FIG. 12 is a schematic isometric view of an interface end, with a Type-N Female connector interface.



FIG. 13 is a schematic isometric view of an interface end with an angled 7/16 DIN-Male connector interface.



FIG. 14 is a schematic isometric partial cut-away view of FIG. 3.





DETAILED DESCRIPTION

Aluminum has been applied as a cost-effective alternative to copper for the conductors in coaxial cables. However, aluminum oxide surface coatings quickly form upon air-exposed aluminum surfaces. These aluminum oxide surface coatings may degrade traditional mechanical, solder and/or conductive adhesive interconnections.


The inventor has recognized that, in contrast to traditional mechanical, solder and/or conductive adhesive interconnections, a molecular bond type interconnection reduces aluminum oxide surface coating issues, PIM generation and improves long term interconnection reliability.


A “molecular bond” as utilized herein is defined as an interconnection in which the bonding interface between two elements utilizes exchange, intermingling, fusion or the like of material from each of two elements bonded together. The exchange, intermingling, fusion or the like of material from each of two elements generates an interface layer where the comingied materials combine into a composite material comprising material from each of the two elements being bonded together.


One skilled in the art will recognize that a molecular bond may be generated by application of heat sufficient to melt the bonding surfaces of each of two elements to be bonded together, such that the interface layer becomes molten and the two melted surfaces exchange material with one another. Then, the two elements are retained stationary with respect to one another, until the molten interface layer cools enough to solidify.


The resulting interconnection is contiguous across the interface layer, eliminating interconnection quality and/or degradation issues such as material creep, oxidation, galvanic corrosion, moisture infiltration and/or interconnection surface shift.


A molecular bond between the outer conductor 8 of a coaxial cable 9 and a connector body 4 of a coaxial connector 2 may be generated via application of heat to the desired interconnection surfaces between the outer conductor 8 and the connector body 4, for example via laser or friction welding. Friction welding may be applied, for example, as spin and/or ultrasonic type welding.


Even if the outer conductor 8 is molecular bonded to the connector body 4, it may be desirable to prevent moisture or the like from reaching and/or pooling against the outer diameter of the outer conductor 8, between the connector body 4 and the coaxial cable 9. Ingress paths between the connector body 4 and coaxial cable 9 at the cable end may be permanently sealed by applying a molecular bond between a polymer material overbody 30 of the coaxial connector 2 and a jacket 28 of the coaxial cable 9. The overbody 30, as shown for example in FIGS. 1 and 2, may be applied to the connector body 4 as an overmolding of polymeric material.


Depending upon the applied connection interface 31, demonstrated in several of the exemplary embodiments herein as a standard 7/16 DIN male interface, the overbody 30 may also provide connection interface structure, such as an alignment cylinder 38. The overbody 30 may also be provided dimensioned with an outer diameter cylindrical support surface 34 at the connector end 18 and further reinforcing support at the cable end 12, enabling reductions in the size of the connector body 4, thereby potentially reducing overall material costs. Tool flats 39 for retaining the coaxial connector 2 during interconnection with other cables and/or devices may be formed in the cylindrical support surface 34 by removing surface sections of the cylindrical support surface 34.


One skilled in the art will appreciate that connector end 18 and cable end 12 are applied herein as identifiers for respective ends of both the coaxial connector 2 and also of discrete elements of the coaxial connector 2 and apparatus, to identify same and their respective interconnecting surfaces according to their alignment along a longitudinal axis of the connector between a connector end 18 and a cable end 12.


The coupling nut 36 may be retained upon the support surface 34 and/or support ridges at the connector end 18 by an overbody flange 32. At the cable end 12, the coupling nut 36 may be retained upon the cylindrical support surface 34 and/or support ridges of the overbody 30 by applying one or more retention spurs 41 proximate the cable end of the cylindrical support surface 34. The retention spurs 41 may be angled with increasing diameter from the cable end 12 to the connector end 18, allowing the coupling nut 36 to be passed over them from the cable end 12 to the connector end 18, but then retained upon the cylindrical support surface 34 by a stop face provided at the connector end 18 of the retention spurs 41.


The overbody flange 32 may be securely keyed to a connector body flange 40 of the connector body 4 and thereby with the connector body 4 via one or more interlock apertures 42 such as holes, longitudinal knurls, grooves, notches or the like provided in the connector body flange 40 and/or outer diameter of the connector body 4, as shown for example in FIG. 1. Thereby, as the polymeric material of the overbody 30 flows into the one or more interlock apertures 42 during overmolding, upon curing the overbody 30 is permanently coupled to and rotationally interlocked with the connector body 4.


The cable end of the overbody 30 may be dimensioned with an inner diameter friction surface 44 proximate that of the coaxial cable jacket 28, that creates an interference fit with respect to an outer diameter of the jacket 28, enabling a molecular bond between the overbody 30 and the jacket 28, by friction welding rotation of the connector body 4 with respect to the outer conductor 8, thereby eliminating the need for environmental seals at the cable end 12 of the connector/cable interconnection.


The overbody 30 may provide a significant strength and protection characteristic to the mechanical interconnection. The overbody 30 may also have an extended cable portion proximate the cable end provided with a plurality of stress relief control apertures 46, for example as shown in FIG. 3. The stress relief control apertures 46 may be formed in a generally elliptical configuration with a major axis of the stress relief control apertures 46 arranged normal to the longitudinal axis of the coaxial connector 2. The stress relief control apertures 46 enable a flexible characteristic of the cable end of the overbody 30 that increases towards the cable end of the overbody 30. Thereby, the overbody 30 supports the interconnection between the coaxial cable 9 and the coaxial connector 2 without introducing a rigid end edge along which the connected coaxial cable 2 subjected to bending forces may otherwise buckle, which may increase both the overall strength and the flexibility characteristics of the interconnection.


The jacket 28 and and/or the inner diameter of the overbody 30 proximate the friction area 44 may be provided as a series of spaced apart annular peaks of a contour pattern such as a corrugation, or a stepped surface, to provide enhanced friction, allow voids for excess friction weld material flow and/or add key locking for additional strength. In one alternative, the overbody 30 may be overmolded upon the connector body 4 after interconnection with the outer conductor 8, the heat of the injected polymeric material bonding the overbody 30 with and/or sealing against the jacket 28 in a molecular bond if the heat of the injection molding is sufficient to melt at least the outer diameter surface of the jacket 28. In another alternative, the overbody may be molecular bonded to the jacket 28 via laser welding applied to the edge between the jacket 28 and the cable end of the overbody.


Where a molecular bond at this area is not critical, the overbody 30 may be sealed against the outer jacket 28 via interference fit and/or application of an adhesive/sealant.


Prior to interconnection, the leading end of the coaxial cable 9 may be prepared by cutting the coaxial cable 9 so that the inner conductor 24 extends from the outer conductor 8, for example as shown in FIGS. 4 and 5. Also, dielectric material 26 between the inner conductor 24 and outer conductor 8 may be stripped back and a length of the outer jacket 28 removed to expose desired lengths of each. The inner conductor 24 may be dimensioned to extend through the attached coaxial connector 2 for direct interconnection with a further coaxial connector 2 as a part of the connection interface 31. Alternatively, for example where the connection interface 31 selected requires an inner conductor profile that is not compatible with the inner conductor 24 of the selected coaxial cable 9 and/or where the material of the inner conductor 24 is an undesired inner conductor connector interface material, such as aluminum, the inner conductor 24 may be terminated by applying an inner conductor cap 20.


An inner conductor cap 20, for example formed from a metal such as brass, bronze or other desired metal, may be applied with a molecular bond to the end of the inner conductor 24, also by friction welding such as spin or ultrasonic welding. The inner conductor cap 20 may be provided with an inner conductor socket 21 at the cable end 12 and a desired inner conductor interface 22 at the connector end 18. The inner conductor socket 21 may be dimensioned to mate with a prepared end 23 of an inner conductor 24 of the coaxial cable 9. To apply the inner conductor cap 20, the end of the inner conductor 24 may be prepared to provide a pin profile corresponding to the selected socket geometry of the inner conductor cap 20. To allow material inter-flow during welding attachment, the socket geometry of the inner conductor cap 20 and/or the end of the inner conductor 24 may be formed to provide a material gap 25 when the inner conductor cap 20 is seated upon the prepared end 23 of the inner conductor 24.


A rotation key 27 may be provided upon the inner conductor cap 20, the rotation key 27 dimensioned to mate with a spin tool or a sonotrode for rotating and/or torsionally reciprocating the inner conductor cap 20, for molecular bond interconnection via spin or ultrasonic friction welding.


Alternatively, the inner conductor cap 20 may be applied via laser welding applied to a seam between the outer diameter of the inner conductor 24 and an outer diameter of the cable end 12 of the inner conductor cap 20.


A connector body 4 configured for a molecular bond between the outer conductor 8 and the connector body 4 via laser welding is demonstrated in FIGS. 1 and 2. The connector body 4 is slid over the prepared end of the coaxial cable 9 so that the outer conductor 8 is flush with the connector end 18 of the connector body bore 6, enabling application of a laser to the circumferential joint between the outer diameter of the outer conductor 8 and the inner diameter of the connector body bore 6 at the connector end 18.


Prior to applying the laser to the outer conductor 8 and connector body 4 joint, a molecular bond between the overbody 30 and the jacket 28 may be applied by spinning the connector body 4 and thereby a polymer overbody 30 applied to the outer diameter of the connector body 4 with respect to the coaxial cable 9. As the overbody 30 is rotated with respect to the jacket 28, the friction surface 44 is heated sufficient to generate a molten interface layer which fuses the overbody 30 and jacket 28 to one another in a circumferential molecular bond when the rotation is stopped and the molten interface layer allowed to cool.


With the overbody 30 and jacket 28 molecular bonded together, the laser may then be applied to the circumference of the outer conductor 8 and connector body 4 joint, either as a continuous laser weld or as a series of overlapping point welds until a circumferential molecular bond has been has been obtained between the connector body 4 and the outer conductor 8. Alternatively, the connector body bore 6 may be provided with an inward projecting shoulder proximate the connector end 18 of the connector body bore 6, that the outer conductor 8 is inserted into the connector body bore 6 to abut against and the laser applied at an angle upon the seam between the inner diameter of the outer conductor end and the inward projecting shoulder, from the connector end 18.


A molecular bond obtained between the outer conductor and the connector body via spin type friction welding is demonstrated in FIGS. 6 and 7. The bore of the connector body is provided with an inward projecting shoulder 11 angled toward a cable end 12 of the connector body 4 that forms an annular friction groove 15 open to the cable end 12. As best shown in FIG. 7, the friction groove 15 is dimensioned to receive a leading edge of the outer conductor 8 therein, a thickness of the outer conductor S preventing the outer conductor 8 from initially bottoming in the friction groove 15, forming an annular material chamber 16 between the leading edge of the outer conductor 8 and the bottom of the friction groove 15, when the outer conductor 8 is initially seated within the friction groove 15. Further, the bore sidewall 17 may be diametrically dimensioned to create a friction portion 22 proximate the friction groove 15. The friction portion 22 creates additional interference between the bore sidewall 20 and the outer diameter of the outer conductor 8, to increase friction during friction welding.


To initiate friction welding, the connector body 4 is rotated with respect to the outer conductor 8 during seating of the leading edge of the outer conductor 8 within the friction portion 22 and into the friction groove 15, under longitudinal pressure. During rotation, for example at a speed of 250 to 500 revolutions per minute, the friction between the leading edge and/or outer diameter of the outer conductor 8 and the friction portion 22 and/or friction groove 15 of the bore 6 generate sufficient heat to soften the leading edge and/or localized adjacent portions of the outer conductor 8 and connector body 4, forging them together as the sacrificial portion of the outer conductor 8 forms a plastic weld bead that flows into the material chamber 16 to fuse the outer conductor 8 and connector body 4 together in a molecular bond.


As described herein above, the overbody 30 may be similarly dimensioned with a friction surface 44 with respect to the jacket 28, to permit spin welding to simultaneously form a. molecular bond there between, as the rotation is applied to perform the spin welding to achieve the molecular bond between the outer conductor 8 and the connector body 4.


When spin welding is applied to simultaneously form a molecular bond between both the polymer overbody 30 and jacket 28 and the metallic outer conductor 8 and connector body 4, a connector outer circumference encapsulating and/or radial inward compressing spin welding apparatus may be applied, so that the polymer portions do not heat to a level where they soften/melt to the point where the centrifugal force generated by the rotation will separate them radially outward, before the metal portions also reach the desired welding temperature.


Alternatively, a molecular bond may be formed via ultrasonic welding by applying ultrasonic vibrations under pressure in a join zone between two parts desired to be welded together, resulting in local heat sufficient to plasticize adjacent surfaces that are then held in contact with one another until the interfiowed surfaces cool, completing the molecular bond. An ultrasonic weld may be applied with high precision via a sonotrode and/or simultaneous sonotrode ends to a point and/or extended surface. Where a point ultrasonic weld is applied, successive overlapping point welds may be applied to generate a continuous ultrasonic weld. Ultrasonic vibrations may be applied, for example, in a linear direction and/or reciprocating along an arc segment, known as torsional vibration.


Exemplary embodiments of an inner and outer conductor molecular bond coaxial connector 2 and coaxial cable interconnection via ultrasonic welding are demonstrated in FIGS. 8 and 9. As best shown in FIG. 8, a unitary connector body 4 is provided with a bore 6 dimensioned to receive the outer conductor 8 of the coaxial cable 9 therein. As best shown in FIG. 9, a flare seat 10 angled radially outward from the bore 6 toward a connector end 18 of the connector body 4 is open to the connector end of the coaxial connector 2 providing a mating surface to which a leading end flare 14 of the outer conductor 8 may be ultrasonically welded by an outer conductor sonotrode of an ultrasonic welder inserted to contact the leading end flare 14 from the connector end 18.


The cable end 12 of the coaxial cable 9 is inserted through the bore 6 and an annular flare operation is performed on a leading edge of the outer conductor 8. The resulting leading end flare 14 may be angled to correspond to the angle of the flare seat 10 with respect to a longitudinal axis of the coaxial connector 2. By performing the flare operation against the flare seat 10, the resulting leading end flare 14 can be formed with a direct correspondence to the flare seat angle. The flare operation may be performed utilizing the leading edge of an outer conductor sonotrode, provided with a conical cylindrical inner lip with a connector end diameter less than an inner diameter of the outer conductor 8, for initially engaging and flaring the leading edge of the outer conductor 8 against the flare seat 10.


The flaring operation may be performed with a separate flare tool or via advancing the outer conductor sonotrode to contact the leading edge of the head of the outer conductor 8, resulting in flaring the leading edge of the outer conductor 8 against the flare seat 10. Once flared, the outer conductor sonotrode is advanced (if not already so seated after flaring is completed) upon the leading end flare 14 and ultrasonic welding may be initiated.


Ultrasonic welding may be performed, for example, utilizing linear and/or torsional vibration. In linear vibration ultrasonic-type friction welding of the leading end flare 14 to the flare seat 10, a linear vibration is applied to a cable end side of the leading end flare 14, while the coaxial connector 2 and flare seat 10 there within are held static within the fixture. The linear vibration generates a friction heat which plasticizes the contact surfaces between the leading end flare 14 and the flare seat 10, forming a molecular bond upon cooling. Where linear vibration ultrasonic-type friction welding is utilized, a suitable frequency and linear displacement, such as between 20 and 40 KHz and 20-35 microns, selected for example with respect to a material characteristic, diameter and/or sidewall thickness of the outer conductor 8, may be applied.


In a further embodiment, as demonstrated in FIGS. 3 and 10-14, the connector body 4 and overbody 30 molecular bonds may be pre-applied upon the end of the coaxial cable 9 as a connector adapter 1 to provide a standard cable end termination upon which a desired interface end 5 may be applied to provide simplified batch manufacture and inventory that may be quickly finished with any of a variety of interface ends 5 with connection interfaces as required for each specific consumer demand. As demonstrated in the several embodiments herein above, the connector body 4 configured as a connector adapter 1 at the connector end 18 may be configured for molecular bonding with the outer conductor 8 via laser, spin or ultrasonic welding.


With the desired inner conductor cap 20 coupled to the inner conductor 24, preferably via a molecular bond as described herein above, the corresponding interface end 5 may be seated upon the mating surface 49 and ultrasonic welded. As shown for example in FIG. 10, the mating surface 49 may be provided with a diameter which decreases towards the connector end 18, such as a conical or a curved surface, enabling a self-aligning fit that may be progressively tightened by application of axial compression.


As best shown in FIG. 14, the selected interface end 5 seats upon a mating surface 49 provided on the connector end 18 of the connector adapter 1. The interface end 5 may be seated upon the mating surface 49, for example in a self aligning interference fit, until the connector end of the connector adapter 1 abuts a shoulder within the interface end bore and/or cable end of the connector adapter 1 abuts a stop shoulder 33 of the connector end of the overbody 30.


An annular seal groove 52 may be provided in the mating surface for a gasket 54 such as a polymer o-ring for environmentally sealing the interconnection of the connector adapter 1 and the selected interface end 5.


As the mating surfaces between the connector adapter 1 and the connector end 2 are located spaced away from the connector end 18 of the resulting assembly, radial ultrasonic welding is applied. A plurality of sonotrodes may be extended radially inward toward the outer diameter of the cable end 12 of the interface end 5 to apply the selected ultrasonic vibration to the joint area. Alternatively, a single sonotrode may be applied moving to address each of several designated arc portions of the outer diameter of the joint area or upon overlapping arc portions of the outer diameter of the joint area in sequential welding steps or in a continuous circumferential path along the join zone. Where the seal groove 52 and gasket 54 are present, even if a contiguous circumferential weld is not achieved, the interconnection remains environmentally sealed.


One skilled in the art will appreciate that molecular bonds have been demonstrated between the overbody 30 and jacket 28, the outer conductor 8 and the connector body 4, the inner conductor 24 and inner conductor cap 20 and connector adapter 1 and interface end 5. Each of these interconnections may be applied either alone or in combination with the others to achieve the desired balance of cost, reliability, speed of installation and versatility,


One skilled in the art will appreciate that the molecular bonds eliminate the need. for further environmental sealing, simplifying the coaxial connector 2 configuration and eliminating a requirement for multiple separate elements and/or discrete assembly. Because the localized melting of the laser, spin or ultrasonic welding processes utilized to form the molecular bond can break up any aluminum oxide surface coatings in the immediate weld area, no additional treatment may be required with respect to removing or otherwise managing the presence of aluminum oxide on the interconnection surfaces, enabling use of cost and weight efficient aluminum materials for the coaxial cable conductors and/or connector body. Finally, where a molecular bond is established at each electro-mechanical interconnection, PIM resulting from such interconnections may be significantly reduced and/or entirely eliminated.












TABLE OF PARTS
















1
connector adapter


2
coaxial connector


4
connector body


5
interface end


6
bore


8
outer conductor


9
coaxial cable


10
flare seat


11
inward projecting shoulder


12
cable end


14
leading end flare


15
friction groove


16
annular material chamber


17
bore sidewall


18
connector end


20
inner conductor cap


21
inner conductor socket


22
inner conductor interface


23
prepared end


24
inner conductor


25
material gap


26
dielectric material


27
rotation key


28
jacket


30
overbody


31
connection interface


32
overbody flange


34
support surface


36
coupling nut


38
alignment cylinder


39
tool flat


40
connector body flange


41
retention spur


42
interlock aperture


44
friction surface


46
stress relief control aperture


49
mating surface


52
seal groove


54
gasket









Where in the foregoing description reference has been made to materials, ratios, integers or components having known equivalents then such equivalents are herein incorporated as if individually set forth.


While the present invention has been illustrated by the description of the embodiments thereof, and while the embodiments have been described in considerable detail, it is not the intention of the applicant to restrict or in any way limit the scope of the appended claims to such detail. Additional advantages and modifications will readily appear to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details, representative apparatus, methods, and illustrative examples shown and described. Accordingly, departures may be made from such details without departure from the spirit or scope of applicant's general inventive concept. Further, it is to be appreciated that improvements and/or modifications may be made thereto without departing from the scope or spirit of the present invention as defined by the following claims.

Claims
  • 1. A method of forming a coaxial connector-cable assembly, comprising: (a) providing a coaxial cable including an inner conductor, an outer conductor surrounding the inner conductor, and a dielectric material separating the inner conductor from the outer conductor, each of the inner and outer conductors having an end portion;(b) providing an inner contact and a conductive intermediate circular member of a coaxial connector, the conductive intermediate circular member having a bore with an inner surface having an inner diameter;(c) welding a seam between the outer conductor of the cable and the inner surface of the bore of the conductive intermediate circular member:(d) positioning a conductive interface member to form an electrical path between the outer conductor of the cable and the interface member, the interface member circumferentially overlying at least a portion of the conductive intermediate circular member.
  • 2. The method defined in claim 1, wherein the seam directly contacts the end portion of the outer conductor.
  • 3. The method defined in claim 1, wherein the seam directly contacts the inner surface of the bore of the conductive intermediate circular member.
  • 4. The method defined in claim 1, wherein the welding step comprises laser welding the seam.
  • 5. The method defined in claim 1, wherein the bore has a first longitudinal axis, and wherein the interface member has a second longitudinal axis, and wherein the first and second longitudinal axes are substantially collinear.
  • 6. The method defined in claim 1, wherein step (d) is performed after step (c).
  • 7. The method defined in claim 1, wherein a coupling nut is attached to the interface member.
  • 8. The method defined in claim 1, wherein the interface member is attached to the conductive intermediate circular member.
  • 9. The method defined in claim 8, Wherein the interface member is attached to the conductive intermediate circular member: via an interference fit joint.
  • 10. The method defined in claim 1, wherein the conductive intermediate circular member is a sleeve member.
  • 11. A method of forming a coaxial connector-cable assembly, comprising: (a) providing a coaxial cable including an inner conductor, an outer conductor surrounding the inner conductor, and a dielectric material separating the iruier conductor from the outer conductor, each of the inner and outer conductors having an end portion;(b) providing an inner contact and an intermediate connector body of a coaxial connector, the intermiediate connector body having a bore with an inner surface having an inner diameter(c) welding a seam between the outer conductor of the cable and the inner surface of the bore of the intermediate connector body;(d) attaching via an interference fit a conductive interface member to the intermediate connector body to firm an electrical path between the outer conductor of the cable and the interface member, the interface member circumferentially overlying at least a portion of the intermediate connector body.
  • 12. The method defined in claim 11. wherein the seam directly contacts the end portion of the outer conductor.
  • 13. The method defined in claim 11, wherein the seam directly contacts the inner surface of the bore of the intermediate connector body.
  • 14. The method defined in claim 11, wherein the welding step comprises laser welding the seam.
  • 15. The method defined in claim 11, wherein the bore has a first longitudinal axis, and wherein the interface member has a second longitudinal axis, and wherein the first and second longitudinal axes are collinear.
  • 16. The method defined in claim 11, wherein step (d) is performed after step (c).
  • 17. The method defined in claim 11, wherein a coupling nut is attached to the interface member.
  • 18. A method of funning a coaxial connector-cable assembly, comprising: (a) providing a coaxial cable including an inner conductor, an outer conductor surrounding the inner conductor, and a dielectric material separating the inner conductor from the outer conductor, each of the inner and outer conductors having an end portion.(b) providing an inner contact and a conductive intermediate circular member of a coaxial connector, the conductive intermediate circular member having a bore with an inner surface having an inner diameter;(c) laser welding a seam between the outer conductor of the cable and the inner surface of the bore of the conductive intermediate circular member; then(d) positioning a conductive interface member to form an electrical path between the outer conductor of the cable and the interface member, the interface member circumferentially overlying at least a portion of the conductive intermediate circular member.
  • 19. The method defined in claim 18, wherein the seam directly contacts the end portion of the outer conductor.
  • 20. The method defined in claim 18, wherein the seam directly contacts the inner surface of the bore of the intermediate connector body.
  • 21. The method defined in claim 18, wherein the bore has a first longitudinal axis, and wherein the interface member has a second longitudinal axis, and wherein the first and second longitudinal axes are collinear.
  • 22. The method defined in claim 18, wherein a coupling nut is attached to the interface member.
  • 23. The method defined in claim 18, wherein the interface member is attached to the conductive intermediate circular member.
  • 24. The method defined in claim 23, wherein the interface member is attached to the conductive intermediate circular member via an interference fit joint.
  • 25. The method defined in claim 18, wherein the conductive intermediate circular member is a sleeve member.
CROSS REFERENCE TO RELATED APPLICATIONS

This application is continuation of commonly owned co-pending U.S. Utility patent application Ser. No. 15/443,690; titled “Coaxial Connector and Coaxial Cable with Welded Interconnection” filed Feb. 27, 2017, which is a continuation of commonly owned co-pending U.S. Utility patent application Ser. No. 14/520,749; titled “Connector and Coaxial Cable with Molecular Bond Interconnection” filed Oct. 22, 2014, which is a division of commonly owned co-pending U.S. Utility patent application Ser. No. 13/240,344, titled Connector and Coaxial Cable with Molecular Bond Interconnection” filed 22 Sep. 2011 by Kendrick Van Swearingen and James P. Fleming, hereby incorporated by reference in its entirety, which is a continuation-in-part of commonly owned co-pending U.S. Utility patent application Ser. No. 13/170,958, titled “Method and Apparatus For Radial Ultrasonic Welding Interconnected Coaxial Connector” filed Jun. 28, 2011 by Kendrick Van Swearingen, hereby incorporated by reference in its entirety. This application is also continuation-in-part of commonly owned U.S. Utility patent application Ser. No. 13/161,326, titled “Method and Apparatus for Coaxial Ultrasonic Welding Interconnection of Coaxial Connector and Coaxial Cable” filed Jun. 15, 2011 by Kendrick Van Swearingen, now issued as U.S. Pat. No. 8,365,404, hereby incorporated by reference in its entirety. This application is also continuation-in-part of commonly owned co-pending U.S. Utility patent application Ser. No. 13/070,934, titled “Cylindrical Surface Spin Weld Apparatus and Method of Use” filed Mar. 24, 2011 by Kendrick Van Swearingen, hereby incorporated by reference in its entirety. This application is also a continuation-in-part of commonly owned U.S. Utility patent application Ser. No. 12/980,013, titled “Ultrasonic Weld Coaxial Connector and Interconnection Method” filed Dec. 28, 2010 by Kendrick Van Swearingen and Nahid Islam, now issued as U.S. Pat. No. 8,453,320, hereby incorporated by reference in its entirety. This application is also a continuation-in-part of commonly owned U.S. Utility patent application Ser. No. 12/974,765, titled “Friction Weld Inner Conductor Cap and interconnection Method” filed Dec. 21, 2010 by Kendrick Van Swearingen and Ronald A. Vaccaro, now issued as U.S. Pat. No. 8,563,861, hereby incorporated by reference in its entirety. This application is also a continuation-in-part of commonly owned U.S. Utility patent application Ser. No. 12/962,943, titled “Friction Weld Coaxial Connector and Interconnection Method” filed Dec. 8, 2010 by Kendrick Van Swearingen, now issued as U.S. Pat. No. 8,302,296, hereby incorporated by reference in its entirety. This application is also a continuation-in-part of commonly owned. U.S. Utility patent application Ser. No. 12/951,558, titled “Laser Weld Coaxial Connector and Interconnection Method”, filed Nov. 22, 2010 by Ronald A. Vaccaro, Kendrick Van Swearingen, James P. Fleming, James J. Wlos and Nahid Islam, now issued as U.S. Pat. No. 8,826,525, hereby incorporated by reference in its entirety.

US Referenced Citations (235)
Number Name Date Kind
3089105 Alford May 1963 A
3142716 Gardener Jul 1964 A
3219557 Quintana Nov 1965 A
3245027 Ziegler, Jr. Apr 1966 A
3264602 Schwartz Aug 1966 A
3281756 Francis et al. Oct 1966 A
3295095 Kraus Dec 1966 A
3384703 Forney, Jr. May 1968 A
3453376 Ziegler, Jr. et al. Jul 1969 A
3497866 Patton, Jr. Feb 1970 A
3601776 Curl Aug 1971 A
3644878 Toedtman Feb 1972 A
3656092 Swengel, Sr. et al. Apr 1972 A
3665367 Keller et al. May 1972 A
3690088 Anderson et al. Sep 1972 A
3693238 Hoch et al. Sep 1972 A
3720805 Fitzgerald Mar 1973 A
3728781 Curtis et al. Apr 1973 A
3897896 Louw et al. Aug 1975 A
3897897 Satzler Aug 1975 A
3917497 Stickler Nov 1975 A
3949466 O'Brien et al. Apr 1976 A
3980976 Tadama et al. Sep 1976 A
4039244 Leachy Aug 1977 A
4046451 Juds et al. Sep 1977 A
4090898 Tuskos May 1978 A
4176909 Prunier Dec 1979 A
4226652 Berg Oct 1980 A
4235498 Snyder Nov 1980 A
4241973 Mayer et al. Dec 1980 A
4353761 Woerz et al. Oct 1982 A
4397515 Russell Aug 1983 A
4457795 Mason et al. Jul 1984 A
4521642 Vives Jun 1985 A
4534751 Fortuna et al. Aug 1985 A
4584037 Fortuna et al. Apr 1986 A
4715821 Axell Dec 1987 A
4741788 Clark et al. May 1988 A
4743331 Nuttall et al. May 1988 A
4746305 Nomura May 1988 A
4790375 Bridges et al. Dec 1988 A
4790775 David Dec 1988 A
4824400 Spinner Apr 1989 A
4846714 Welsby et al. Jul 1989 A
4867370 Welter et al. Sep 1989 A
4891015 Oldfield Jan 1990 A
4943245 Lincoln Jul 1990 A
5046952 Cohen et al. Sep 1991 A
5064485 Smith et al. Nov 1991 A
5074809 Rousseau Dec 1991 A
5076657 Toya et al. Dec 1991 A
5120237 Fussell Jun 1992 A
5120268 Gerrans Jun 1992 A
5137470 Doles Aug 1992 A
5137478 Graf et al. Aug 1992 A
5142763 Toya et al. Sep 1992 A
5154636 Vaccaro et al. Oct 1992 A
5167533 Rauwolf Dec 1992 A
5186644 Pawlicki et al. Feb 1993 A
5203079 Brinkman et al. Apr 1993 A
5284449 Vaccaro Feb 1994 A
5299939 Walker et al. Apr 1994 A
5354217 Gabel et al. Oct 1994 A
5385490 Demeter et al. Jan 1995 A
5435745 Booth Jul 1995 A
5464963 Hostler et al. Nov 1995 A
5474470 Hammond, Jr. Dec 1995 A
5486123 Miyazaki Jan 1996 A
5542861 Anhalt et al. Aug 1996 A
5545059 Nelson Aug 1996 A
5561900 Hosler, Sr. Oct 1996 A
5595499 Zander et al. Jan 1997 A
5700989 Dykhno et al. Dec 1997 A
5711686 O'Sullivan et al. Jan 1998 A
5722856 Fuchs et al. Mar 1998 A
5733145 Wood Mar 1998 A
5789725 McIntire et al. Aug 1998 A
5791919 Brisson et al. Aug 1998 A
5796315 Gordon et al. Aug 1998 A
5802710 Bufanda et al. Sep 1998 A
5802711 Card et al. Sep 1998 A
5823824 Mitamura et al. Oct 1998 A
5830009 Tettinger Nov 1998 A
5929728 Barnett et al. Jul 1999 A
5938474 Nelson Aug 1999 A
5994646 Broeksteeg et al. Nov 1999 A
6007378 Oeth Dec 1999 A
6024609 Kooiman et al. Feb 2000 A
6032835 Burt Mar 2000 A
6036237 Sweeney Mar 2000 A
6056577 Blanchet May 2000 A
6093043 Gray et al. Jul 2000 A
6105849 Mochizuki et al. Aug 2000 A
6126487 Rosenberger Oct 2000 A
6133532 Lundback et al. Oct 2000 A
6139354 Broussard Oct 2000 A
6148237 Das Nov 2000 A
6155212 McAlister Dec 2000 A
6173097 Throckmorton et al. Jan 2001 B1
6174200 Bigotto et al. Jan 2001 B1
6176716 Mercurio et al. Jan 2001 B1
6210222 Langham et al. Apr 2001 B1
6267621 Pitschi et al. Jul 2001 B1
6287301 Thompson et al. Sep 2001 B1
6332808 Kanda et al. Dec 2001 B1
6361364 Holland et al. Mar 2002 B1
6362428 Pennington Mar 2002 B1
6394187 Dickson et al. May 2002 B1
6407722 Bogner et al. Jun 2002 B1
6439924 Kooiman Aug 2002 B1
6471545 Hosler, Sr. Oct 2002 B1
6482036 Broussard Nov 2002 B1
6538203 Noelle et al. Mar 2003 B1
6588646 Loprire Jul 2003 B2
6607398 Henningsen Aug 2003 B2
6607399 Endo et al. Aug 2003 B2
6632118 Jacob Oct 2003 B2
6752668 Koch, Jr. Jun 2004 B2
6776620 Noda Aug 2004 B2
6786767 Fuks et al. Sep 2004 B1
6790080 Cannon Sep 2004 B2
6793095 Dulisse et al. Sep 2004 B1
6814625 Richmond et al. Nov 2004 B2
6824415 Wlos Nov 2004 B2
6827608 Hall et al. Dec 2004 B2
6832785 Zitkovic Dec 2004 B1
6837751 Vanden Wymelenberg et al. Jan 2005 B2
6908114 Moner Jun 2005 B2
6932644 Taylor Aug 2005 B1
6955562 Henningsen Oct 2005 B1
6974615 Hosaka et al. Dec 2005 B2
7044785 Harwath et al. May 2006 B2
7061829 Scott Jun 2006 B2
7077700 Henningsen Jul 2006 B2
7114990 Bence et al. Oct 2006 B2
7134190 Bungo et al. Nov 2006 B2
7144274 Taylor Dec 2006 B2
7198208 Dye et al. Apr 2007 B2
7217154 Harwath May 2007 B2
7275957 Wlos et al. Oct 2007 B1
7294023 Schneider Nov 2007 B2
7309247 Keating Dec 2007 B1
7335059 Vaccaro Feb 2008 B2
7347727 Wlos et al. Mar 2008 B2
7347738 Hsieh et al. Mar 2008 B2
7351101 Montena Apr 2008 B1
7374466 Onuma et al. May 2008 B2
7399069 Therien Jul 2008 B2
7435135 Wlos Oct 2008 B2
7448906 Islam Nov 2008 B1
7476114 Contreras Jan 2009 B1
7500873 Hart Mar 2009 B1
7520779 Arnaud et al. Apr 2009 B2
7588460 Malloy et al. Sep 2009 B2
7607942 Van Swearingen Oct 2009 B1
7632143 Islam Dec 2009 B1
7677812 Castagna et al. Mar 2010 B2
7705238 Van Swearingen Apr 2010 B2
7731529 Islam Jun 2010 B1
7753727 Islam et al. Jul 2010 B1
7754038 Ripplinger et al. Jul 2010 B2
7798847 Islam Sep 2010 B2
7798848 Islam Sep 2010 B2
7803018 Islam Sep 2010 B1
7806444 Blivet et al. Oct 2010 B2
7819302 Bolser et al. Oct 2010 B2
7819698 Islam Oct 2010 B2
7823763 Sachdev et al. Nov 2010 B2
8113879 Zraik Feb 2012 B1
8174132 Van Swearingen May 2012 B2
8302296 Van Swearingen Nov 2012 B2
8317539 Stein Nov 2012 B2
8388377 Zraik Mar 2013 B2
8453320 Van Swearingen et al. Jun 2013 B2
8469739 Rodrigues et al. Jun 2013 B2
8479383 Van Swearingen et al. Jul 2013 B2
8545263 Islam Oct 2013 B2
8597050 Flaherty et al. Dec 2013 B2
8622762 Van Swearingen et al. Jan 2014 B2
8690602 Flaherty Apr 2014 B2
8801460 Van Swearingen et al. Aug 2014 B2
8826525 Vaccaro et al. Sep 2014 B2
8887379 Van Swearingen et al. Nov 2014 B2
8887388 Van Swearingen et al. Nov 2014 B2
9889586 Van Swearingen et al. Feb 2018 B2
20030137372 Fehrenbach et al. Jul 2003 A1
20040082212 Cannon Apr 2004 A1
20040118590 Head Jun 2004 A1
20040196115 Fallon et al. Oct 2004 A1
20050118590 Piel Jun 2005 A1
20050181652 Montena et al. Aug 2005 A1
20050250371 Koga Nov 2005 A1
20050285702 Graczyk et al. Dec 2005 A1
20060137893 Sumi et al. Jun 2006 A1
20060199432 Taylor Sep 2006 A1
20070042642 Montena et al. Feb 2007 A1
20070141911 Yoshikawa et al. Jun 2007 A1
20070190868 De Cloet et al. Aug 2007 A1
20070224880 Wlos et al. Sep 2007 A1
20070259565 Holland Nov 2007 A1
20070272724 Christopherson, Jr. Nov 2007 A1
20090151975 Moe et al. Jun 2009 A1
20090218027 Moe Sep 2009 A1
20090232594 Ng et al. Sep 2009 A1
20100041271 Van Swearingen et al. Feb 2010 A1
20100124839 Montena May 2010 A1
20100130060 Islam May 2010 A1
20100190377 Islam Jul 2010 A1
20100190378 Islam Jul 2010 A1
20100233903 Islam Sep 2010 A1
20100254663 Hopkins Oct 2010 A1
20100288819 Huenig et al. Nov 2010 A1
20110028023 Mahoney Feb 2011 A1
20110201232 Islam Aug 2011 A1
20110239451 Montena et al. Oct 2011 A1
20120124827 Baldauf May 2012 A1
20120129375 Van Swearingen May 2012 A1
20120129383 Swearingen May 2012 A1
20120129384 Van May 2012 A1
20120129388 Vaccaro et al. May 2012 A1
20120129389 Van Swearingen May 2012 A1
20120129390 Van Swearingen et al. May 2012 A1
20120129391 Van Swearingen et al. May 2012 A1
20130023973 Richard et al. Jan 2013 A1
20130025121 Van Swearingen et al. Jan 2013 A1
20130084738 Van Swearingen et al. Apr 2013 A1
20130084740 Paynter et al. Apr 2013 A1
20130095695 Van Apr 2013 A1
20130244487 Van Swearingen et al. Sep 2013 A1
20140154921 Qi et al. Jun 2014 A1
20150229070 Van Swearingen Aug 2015 A1
20150340804 Van Swearingen et al. Nov 2015 A1
20170133769 Harwath et al. May 2017 A1
20170170612 Van Swearingen et al. Jun 2017 A1
20170338613 Van Swearingen Nov 2017 A1
Foreign Referenced Citations (27)
Number Date Country
1606200 Apr 2005 CN
1623254 Jun 2005 CN
101055948 Oct 2007 CN
201084845 Jul 2008 CN
101494326 Jul 2009 CN
102610973 Jul 2012 CN
4210547 Jun 1993 DE
4210547.1 Jun 1993 DE
0555933 Aug 1993 EP
0779676 Jun 1997 EP
1001496 May 2000 EP
1947661 Jul 2008 EP
1956687 Aug 2008 EP
2144338 Jan 2010 EP
2214265 Aug 2010 EP
2219267 Aug 2010 EP
2164172 Jul 1973 FR
2057781 Apr 1981 GB
2335804 Sep 1999 GB
H11329658 Nov 1999 JP
2000084680 Mar 2000 JP
2002310117 Oct 2002 JP
2008155238 Jul 2008 JP
9320382 Oct 1993 WO
9413040 Jun 1994 WO
2005104301 Nov 2005 WO
2009052691 Apr 2009 WO
Non-Patent Literature Citations (25)
Entry
“European Examination Report Corresponding to European Patent Application No. 11 843 870.4; dated: Aug. 18, 2016; 5 Pages”.
“European Examination Report corresponding to Patent Application No. 11 843 870.4; dated: Mar. 10, 2017”.
“Examination Report corresponding to European Application No. 11843870.4 dated Nov. 14, 2017”.
“Examination Report corresponding to European Application No. 13853093.6 dated Oct. 18, 2017”.
“Examination Report Corresponding to European Patent Application No. 11843118.8 dated Nov. 28, 2018”.
“Examination Report Corresponding to European Patent Application No. 11843870.4 dated Nov. 28, 2018”.
“International Search Report and Written Opinion Corresponding to International Application No. PCT/US2011/046054; dated Feb. 29, 2012”.
“International Search Report and Written Opinion Corresponding to International Application No. PCT/US2011/052907; dated Mar. 23, 2012”.
“International Search Report and Written Opinion for related PCT Application No. PCT/US2011/046048, dated Feb. 9, 2012”.
“International Search Report from related PCT filing PCT/US2011/046051, dated Feb. 9, 2012”.
“International Search Report from related PCT filing PCT/US2011/046052, dated Apr. 6, 2012”.
“Office Action corresponding to Chinese Application No. 201380057933.8 dated Jun. 30, 2016.”.
“Office Action corresponding to Indian Application No. 2277/DELNP/2015 dated Jan. 24, 2019”.
“Office Action corresponding to Indian Application No. 2354/DELNP/2014 dated Sep. 7, 2018”.
“Office Action corresponding to Indian Application No. 2355/DELNP/2014 dated Jan. 23, 2019”.
“Office Action corresponding to Indian Application No. 3490/DELNP/2015 dated May 27, 2019”.
“Office Action corresponding to Indian Application No. 3530/DELNP/2015 dated Jan. 22, 2019”.
“Office Action corresponding to Indian Application No. 3861/DELNP/2015 dated Jan. 31, 2019”.
“Office Action corresponding to Indian Application No. 3912/CHENP/2013 dated Aug. 27, 2018”.
“Office Action corresponding to Indian Application No. 3975/CHENP/2013 dated Nov. 13, 2018”.
“Office Action corresponding to Indian Application No. 4590/DELNP/2013 dated Dec. 1, 2018”.
“Office Action corresponding to Indian Application No. 4591/DELNP/2013 dated Aug. 7, 2018”.
“Office Action corresponding to Indian Application No. 4592/DELNP/2013 dated Jul. 23, 2018”.
“Office Action corresponding to Indian Application No. 4594/DELNP/2013 dated Sep. 27, 2018”.
Dupont , “General Design Principles for DuPont Engineering Polymers (Design guide—Module I)”, Internet Citation, 2000, page complete, XP007904729, Retrieved from the Internet: http://plastics.dupont.com/plastics/pdflit/americas/general/H76838.pdf [retrieved on May 16, 2008], Chapter 111; pp. 77-90.
Related Publications (1)
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20210159646 A1 May 2021 US
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Parent 13240344 Sep 2011 US
Child 14520749 US
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Parent 13161326 Jun 2011 US
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