Coaxial cable connector having electrical continuity member
09660398 ยท 2017-05-23
Assignee
Inventors
Cpc classification
H01R9/0524
ELECTRICITY
Y10T29/49208
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/49117
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/49123
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A coaxial cable connector comprising a connector body; a post engageable with the connector body, wherein the post includes a flange; a nut, axially rotatable with respect to the post and the connector body, the nut having a first end and an opposing second end, wherein the nut includes an internal lip, and wherein a second end portion of the nut corresponds to the portion of the nut extending from the second end of the nut to the side of the lip of the nut facing the first end of the nut at a point nearest the second end of the nut, and a first end portion of the nut corresponds to the portion of the nut extending from the first end of the nut to the same point nearest the second end of the nut of the same side of the lip facing the first end of the nut; and a continuity member disposed within the second end portion of the nut and contacting the post and the nut, so that the continuity member extends electrical grounding continuity through the post and the nut is provided.
Claims
1. A coaxial cable connector comprising: a body including a forward facing body surface, an outward facing body surface, and an inward facing body surface; a post including a first flange step, a second flange step smaller than the first flange step, and an axially extending post surface, the second flange step having a rearward facing continuity member engaging post surface, the rearward facing continuity member engaging post surface being configured to be spaced away from the forward facing body surface and extend along a direction parallel to the forward facing body surface so as to form an annular gap between the rearward facing continuity member engaging post surface and the forward facing body surface, the axially extending post surface being configured to extend along a direction parallel to the inward facing body surface, and the rearward facing continuity member engaging post surface being configured to exert an axial force toward the forward facing body surface such that the post and the body are configured to cooperatively engage a coaxial cable; a coupler including an inward lip having a post engaging coupler surface configured to engage the first flange step of the post and a rearward facing continuity engaging coupler surface, the coupler being configured to move between a first position, where the connector is fully tightened on an interface port and where the post engaging coupler surface is in electrical contact with the first flange step of the post, and a second position, where the connector is loosely tightened on the interface port and where the post engaging coupler surface is not in electrical contact with the first flange step of the post; a continuity member configured to be anchored in the annular gap formed between the rearward facing continuity member engaging post surface and the forward facing body surface so as to maintain continuous physical and electrical contact with the rearward facing continuity member engaging post surface during operation of the connector, including when the connector is in the first position and when the connector is in the second position; wherein the connector is configured to anchor the continuity member in the annular gap even when the connector is in a pre-installed state, where the connector has not yet engaged the interface port and where the connector has not yet engaged a coaxial cable; wherein the coupler is configured to be coupled to an interface port; wherein the annular gap is located rearward from post engaging coupler surface of the inward lip of the coupler; wherein forward comprises a direction toward the interface port and rearward comprises a direction away from the interface port; and wherein the continuity member is configured to maintain continuous physical and electrical contact with the rearward facing continuity engaging coupler surface continuously during operation of the connector, including when the coupler moves between the first and second positions, when the connector is in the first position, and even when the connector is the second position.
2. The connector of claim 1, wherein the continuity member is configured to be sandwiched between the rearward facing continuity member engaging post surface of the second flange step of the post and the forward facing body surface of the body when the connector is in the pre-installed state.
3. The connector of claim 1, wherein the continuity member is configured to be clamped between the rearward facing continuity member engaging post surface of the second flange step of the post and the forward facing body surface of the body when the connector is in the pre-installed state.
4. The connector of claim 1, wherein the continuity member is configured to maintain the rearward facing continuity member engaging post surface and the forward facing body surface in an axially aligned position when the rearward facing continuity member engaging post surface exerts the axial force toward the forward facing body surface and when the post and the body cooperatively engage the coaxial cable.
5. The connector of claim 1, wherein the connector is loosely tightened when the post engaging coupler surface is not in electrical contact with the first flange step of the post.
6. The connector of claim 1, wherein the continuous physical and electrical contact with the rearward facing continuity engaging post surface comprises an electrical grounding continuity path that remains continuous over time during operation of the connector, even when the post and the coupler are in intermittent physical and electrical contact with one another during operation of the connector.
7. The connector of claim 1, wherein the continuous physical and electrical contact with the rearward facing continuity engaging post surface comprises an electrical grounding continuity path that is not intermittent when the connector is loosely assembled.
8. The connector of claim 1, wherein the continuous physical and electrical contact with the rearward facing continuity engaging post surface comprises an electrical grounding continuity path that is not intermittent when the post and the coupler are not in electrical contact with one another.
9. The connector of claim 1, wherein the continuous physical and electrical contact with the rearward facing continuity engaging post surface comprises an electrical grounding continuity path that is not intermittent when the post and the coupler are not in direct electrical contact with one another.
10. The connector of claim 1, wherein the continuous physical and electrical contact with the rearward facing continuity engaging post surface comprises an electrical grounding continuity path that is not interrupted when the connector is loosely assembled.
11. The connector of claim 1, wherein the continuous physical and electrical contact with the rearward facing continuity engaging post surface comprises an electrical grounding continuity path that is not interrupted during operation of the connector even when the post and the coupler are in intermittent physical and electrical contact with one another.
12. The connector of claim 1, wherein the continuity member is configured to be anchored between the rearward facing continuity member engaging post surface of the post and the forward facing body surface of the body so as to make non-intermittent electrical contact with rearward facing continuity member engaging post surface of the post during operation of the connector.
13. The connector of claim 1, wherein the rearward facing continuity member engaging post surface of the post and the forward facing body surface of the body are configured to face one another.
14. The connector of claim 1, wherein the rearward facing continuity member engaging post surface of the post and the forward facing body surface of the body are configured to form complementary opposing surfaces.
15. The connector of claim 1, wherein the continuous physical and electrical contact with the rearward facing continuity member engaging post surface comprises an electrical continuity path that is not intermittent during operation of the connector.
16. The connector of claim 1, wherein the continuity member comprises a post contact portion and a body contact portion that form an anchored portion sandwiched between the rearward facing continuity member engaging post surface and the forward facing body surface of the body, the anchored portion being configured to be secured in a fixed axial position relative to the post and relative to the body, and the continuity member comprises a coupler contact portion that forms a non-anchored portion configured to move relative to the anchored portion of the continuity member and to move relative to the post and the body when the connector is assembled.
17. The connector of claim 1, wherein the continuity member comprises a post contact portion that does not extend along an axial direction.
18. The connector of claim 1, wherein the continuity member comprises a post contact portion that is not configured to make axial lengthwise contact with the post.
19. The connector of claim 1, wherein the continuity member includes a post contact portion and a body contact portion, and the rearward facing continuity member engaging post surface of the post and the forward facing body surface of the body are configured to face each other and lengthwise fit the post contact portion and the body contact portion of the continuity member between the rearward facing continuity member engaging post surface of the post and the forward facing body surface of the body so as to axially secure the post contact portion and the body contact portion of the continuity member relative to the post and the body when the connector is assembled.
20. The connector of claim 1, wherein the rearward facing continuity engaging post surface of the post and the forward facing body surface of the body comprise opposing complementary surfaces that face each other.
21. The connector of claim 1, wherein the rearward facing continuity engaging post surface of the post and the forward facing body surface of the body are not perpendicular to each other.
22. The connector of claim 1, wherein the continuity member includes a resilient flexible portion configured to arch out from a plane of a post contact portion of the continuity member along a curved path.
23. The connector of claim 1, wherein the continuity member includes a post contact portion, a body contact portion, a first resilient arcuate portion, and a second resilient arcuate portion radially spaced from the first resilient arcuate portion, and the first and second resilient arcuate portions each extend between two radially spaced portions of the post contact portion and the body contact portion.
24. The connector of claim 1, wherein the connector is fully tightened on the interface port when the post contacts the interface port.
25. The connector of claim 1, wherein the connector is loosely tightened on the interface port when the post does not contact the interface port, and where the coupler is in contact with the interface port.
26. The connector of claim 1, wherein the continuity member is configured to be sandwiched against the rearward facing continuity member engaging post surface of the second flange step of the post when the connector is assembled.
27. The connector of claim 1, wherein the continuity member is configured to be sandwiched against the rearward facing continuity member engaging post surface of the second flange step of the post during operation of the connector.
28. The connector of claim 1, wherein the continuity member is configured to be sandwiched against the rearward facing continuity member engaging post surface of the second flange step of the post when the connector is in the pre-installed state.
29. The connector of claim 1, wherein the continuity member includes a base surface and a biasing surface extending from the base surface, the biasing surface being configured to exert an axial force against the coupler so as to maintain a continuity ground path between the continuity member and the rearward facing continuity engaging coupler surface of the coupler during operation of the connector, and wherein the continuity ground path maintained during operation of the connector comprises maintaining the ground path over time, including when the coupler moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely tightened on the interface port.
30. The connector of claim 29, wherein the base surface of the continuity member is configured to be anchored in the annular gap so as to maintain a continuous ground path between the continuity member and the rearward facing continuity member engaging post surface at all times during operation of the connector, and wherein at all times during operation of the connector comprises when the coupler moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely tightened on the interface port.
31. The connector of claim 1, wherein the continuity member comprises a post contact portion that extends along a radial direction and has a radial length so as to make radial lengthwise contact with the rearward facing continuity member engaging post surface of the post.
32. The connector of claim 31, wherein the radial lengthwise contact does not comprise a point contact.
33. The connector of claim 1, wherein the continuity member includes a post contact portion and an arched portion extending out of a plane of the post contact portion.
34. The connector of claim 33, wherein the arched portion is curved.
35. The connector of claim 33, wherein the arched portion is not straight.
36. The connector of claim 33, wherein the arched portion is C-shaped.
37. The connector of claim 33, wherein the arched portion is not L-shaped.
38. The connector of claim 1, wherein the continuity member includes a base portion having a first surface and a second surface, the first surface configured to face toward the rearward facing continuity member engaging post surface of the second flange step of the post so as to remain sandwiched against the rearward facing continuity member engaging post surface of the second flange step of the post during operation of the connector, and the second surface configured to face toward the forward facing body surface during operation of the connector.
39. The connector of claim 38, wherein the forward facing body surface is capable of being away spaced from the first surface of the base portion of the continuity member during operation of the connector.
40. A coaxial cable connector comprising: a body member including a forward facing body surface, an outward facing body surface, and an inward facing body surface; a post member including a first flange step, and a second flange step smaller than the first flange step, the second flange step having a rearward facing continuity member engaging post surface, the connector being configured to form a gap between the rearward facing continuity member engaging post surface and the forward facing body surface when the connector is assembled; a coupler member including an inward lip having a post engaging coupler surface configured to engage the first flange step of the post member and a rearward facing continuity engaging coupler surface of the coupler member, the coupler member being configured to move between a first position, where the connector is fully tightened on an interface port and where the post engaging coupler surface of the inward lip of the coupler member is in electrical contact with the first flange step of the post member, and a second position, where the connector is loosely tightened on the interface port and where the post engaging coupler surface of the inward lip of the coupler member is not in electrical contact with the first flange step of the post member; a continuity member configured to be anchored in the gap formed between the rearward facing continuity member engaging post surface and the forward facing body surface so as to maintain physical and electrical contact with the rearward facing continuity member engaging post surface non-intermittently during operation of the connector, including when the connector is fully tightened on the interface port, and when the connector is loosely tightened on the interface port; wherein the connector is configured to anchor the continuity member in the gap even when the connector is in a pre-installed state, where the connector has not yet engaged the interface port and where the connector has not yet engaged a coaxial cable; wherein the coupler member is configured to be coupled to an interface port; wherein the gap is located rearward from the post engaging coupler surface of the inward lip of the coupler member; wherein forward comprises a direction toward the interface port and rearward comprises a direction away from the interface port; wherein the continuity member is configured to maintain physical and electrical contact with the rearward facing continuity engaging coupler surface of the coupler member during operation of the connector; and wherein during operation of the connector comprises when the coupler member moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely tightened on the interface port.
41. The connector of claim 40, wherein the continuity member is configured to be sandwiched between the rearward facing continuity member engaging post surface and the forward facing body surface when the connector is assembled.
42. The connector of claim 40, wherein the rearward facing continuity member engaging post surface is configured to exert an axial force toward the forward facing body surface such that the post and the body cooperatively engage the coaxial cable when the connector is installed on the coaxial cable, and the continuity member is configured to maintain the rearward facing continuity member engaging post surface and the forward facing body surface in an axially aligned position when the rearward facing continuity member engaging post surface exerts the axial force toward the forward facing body surface, when the post and the body cooperatively engage the coaxial cable, and when the connector is installed on the coaxial cable.
43. The connector of claim 40, wherein the physical and electrical contact with the rearward facing continuity engaging post surface is continuous and not intermittent during operation of the connector even when the connector is loosely assembled on the interface port.
44. The connector of claim 40, wherein the connector is loosely tightened on the interface port when the post engaging coupler surface is not in electrical contact with the first flange step of the post member.
45. The connector of claim 40, wherein the physical and electrical contact with the rearward facing continuity member engaging post surface comprises an electrical grounding continuity path that remains continuous and not intermittent during operation of the connector, even when the post and the coupler are in intermittent physical and electrical contact with one another.
46. The connector of claim 40, wherein the rearward facing continuity member engaging post surface of the post member and the forward facing body surface of the body member are configured to face one another.
47. The connector of claim 40, wherein the rearward facing continuity member engaging post surface of the post member and the forward facing body surface of the body member are configured to form complementary opposing surfaces.
48. The connector of claim 40, wherein the physical and electrical contact with the rearward facing continuity member engaging post surface comprises an electrical continuity path that is continuous, uninterrupted, and not intermittent during operation of the connector.
49. The connector of claim 40, wherein the continuity member comprises a post contact portion that extends along a radial direction and has a radial length so as to make radial lengthwise contact with the rearward facing continuity member engaging post surface of the post member.
50. The connector of claim 40, wherein the continuity member comprises a post contact portion that does not extend along an axial direction.
51. The connector of claim 40, wherein the continuity member comprises a post contact portion that is not configured to make axial lengthwise contact with the post.
52. The connector of claim 40, wherein the continuity member includes a post contact portion and a body contact portion, and the rearward facing continuity member engaging post surface and the forward facing body surface are configured to face each other and lengthwise fit the post contact portion and the body contact portion of the continuity member between the rearward facing continuity member engaging post surface and the forward facing body surface so as to axially secure the post contact portion and the body contact portion relative to the post member and the body member when the connector is assembled.
53. The connector of claim 40, wherein the rearward facing continuity engaging post surface and the forward facing body surface comprise opposing complementary surfaces that face each other.
54. The connector of claim 40, wherein the rearward facing continuity engaging post surface and the forward facing body surface are not perpendicular to each other.
55. The connector of claim 40, wherein the continuity member includes a resilient flexible portion configured to arch out from a plane of a post contact portion of the continuity member along a curved path.
56. The connector of claim 40, wherein the continuity member includes a post contact portion, a body contact portion, a first resilient arcuate portion, and a second resilient arcuate portion radially spaced from the first resilient arcuate portion, and the first and second resilient arcuate portions each extend between two radially spaced portions of the post contact portion and the body contact portion.
57. The connector of claim 40, wherein the continuity member is configured to be sandwiched against the rearward facing continuity member engaging post surface during operation of the connector.
58. The connector of claim 40, wherein the continuity member is configured to be sandwiched against the rearward facing continuity member engaging post surface when the connector is in the pre-installed state, where the connector has not yet engaged the interface port and where the connector has not yet engaged the coaxial cable.
59. The connector of claim 40, wherein the continuity member is configured to be clamped between the rearward facing continuity member engaging post surface and the forward facing body surface when the connector is assembled.
60. The connector of claim 40, wherein the rearward facing continuity member engaging post surface and the forward facing body surface of the body member are parallel to one another when the connector is assembled.
61. The connector of claim 40, wherein the continuity member includes a base surface and a biasing surface extending from the base surface, the biasing surface being configured to exert an axial force against the coupler member so as to maintain a continuity ground path between the continuity member and the rearward facing continuity engaging coupler surface of the coupler member during operation of the connector, and wherein during operation of the connector comprises when the coupler moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely tightened on the interface port.
62. The connector of claim 61, wherein the base surface of the continuity member is configured to be anchored in the gap formed between the rearward facing continuity member engaging post surface and the forward facing body surface so as to maintain a continuity ground path between the continuity member and the rearward facing continuity member engaging post surface constantly over time during operation of the connector, and wherein during operation of the connector comprises when the coupler moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely tightened on the interface port.
63. The connector of claim 40, wherein the continuity member includes a post contact portion and a body contact portion that form an anchored portion sandwiched between the rearward facing continuity member engaging post surface and the forward facing body surface, the anchored portion being configured to be secured in a fixed axial position relative to the post member and relative to the body member, and the continuity member also includes a coupler contact portion that forms a non-anchored portion configured to move relative to the anchored portion of the continuity member and to move relative to the post member and the body member when the connector is assembled.
64. The connector of claim 63, wherein the radial lengthwise contact does not comprise a point contact.
65. The connector of claim 40, wherein the continuity member includes a post contact portion and an arched portion extending out of a plane of the post contact portion.
66. The connector of claim 65, wherein the arched portion is curved.
67. The connector of claim 40, wherein the continuity member includes a base portion having a first surface and a second surface, the first surface configured to face toward the rearward facing continuity member engaging post surface so as to remain sandwiched against the rearward facing continuity member engaging post surface during operation of the connector, and the second surface configured to face toward the forward facing body surface during operation of the connector.
68. The connector of claim 67, wherein the forward facing body surface is capable of being away spaced from the first surface of the base portion of the continuity member during operation of the connector.
69. A coaxial cable connector comprising: a body means including a forward facing body surface, an outward facing body surface, and an inward facing body surface; a post means including a first flange step, and a second flange step smaller than the first flange step, the second flange step having a rearward facing continuity means engaging post surface, the post means and body means being configured for forming a gap between the rearward facing continuity means engaging post surface and the forward facing body surface when the connector is assembled; a coupler means including an inward lip having a post engaging coupler surface configured to engage the first flange step of the post means and a rearward facing continuity engaging coupler surface of the coupler means, the coupler means being configured for moving between a first position, where the connector is fully tightened on an interface port and where the post engaging coupler surface of the inward lip of the coupler means is in electrical contact with the first flange step of the post means, and a second position, where the connector is loosely tightened on the interface port and where the post engaging coupler surface of the inward lip of the coupler means is not in electrical contact with the first flange step of the post means; a continuity means configured for being anchored in the gap formed between the rearward facing continuity means engaging post surface and the forward facing body surface so as to continuously and non-intermittently maintain physical and electrical contact with the rearward facing continuity means engaging post surface during operation of the connector, including when the connector is fully tightened on the interface port, and when the connector is loosely tightened on the interface port; wherein the connector is configured to anchor the continuity means in the gap even when the connector is in a pre-installed state, where the connector has not yet engaged an interface port and where the connector has not yet engaged a coaxial cable; wherein the coupler means is configured to be coupled to an interface port; wherein the gap is located rearward from post engaging coupler surface of the inward lip of the coupler means; wherein forward comprises a direction toward the interface port and rearward comprises a direction away from the interface port; wherein the continuity means is configured for maintaining physical and electrical contact with the rearward facing continuity engaging coupler surface of the coupler means non-intermittently during operation of the connector; and wherein non-intermittently during operation of the connector comprises when the coupler means moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely tightened on the interface port.
70. The connector of claim 69, wherein the continuity means is configured to be sandwiched against the rearward facing continuity means engaging post surface non-intermittently during operation of the connector and even when the connector is in the pre-installed state, where the connector has not yet engaged the interface port and where the connector has not yet engaged the coaxial cable.
71. The connector of claim 69, wherein the continuity means is configured for being clamped between the rearward facing continuity means engaging post surface and the forward facing body surface.
72. The connector of claim 71, wherein the rearward facing continuity means engaging post surface and the forward facing body surface of the body means are parallel to one another when the connector is assembled.
73. The connector of claim 69, wherein the rearward facing continuity means engaging post surface is configured to exert an axial force toward the forward facing body surface such that the post means and the body means cooperatively engage the coaxial cable when the connector is installed on the coaxial cable, and the continuity means is configured to maintain the rearward facing continuity means engaging post surface and the forward facing body surface in an axially aligned position when the rearward facing continuity means engaging post surface exerts the axial force toward the forward facing body surface, when the post means and the body means cooperatively engage the coaxial cable, and when the connector is installed on the coaxial cable.
74. The connector of claim 69, wherein the physical and electrical contact with the rearward facing continuity means engaging post surface is continuous and not intermittent even when the connector is loosely assembled.
75. The connector of claim 69, wherein the connector is loosely tightened on the interface port when the post engaging coupler surface is not in electrical contact with the first flange step of the post means.
76. The connector of claim 69, wherein the physical and electrical contact with the rearward facing continuity means engaging post surface comprises an electrical grounding continuity path that remains continuous and not intermittent during operation of the connector, and wherein continuous and not intermittent during operation of the connector comprises even when the post means and the coupler means are in intermittent physical and electrical contact with one another.
77. The connector of claim 69, wherein the rearward facing continuity means engaging post surface and the forward facing body surface are configured to face one another.
78. The connector of claim 69, wherein the physical and electrical contact with the rearward facing continuity means engaging post surface comprises an electrical continuity path that is continuous, uninterrupted, and not intermittent during operation of the connector.
79. The connector of claim 69, wherein the continuity means includes a post contact portion and a body contact portion that form an anchored portion sandwiched between the rearward facing continuity means engaging post surface and the forward facing body surface, the anchored portion being configured to be secured in a fixed axial position relative to the post means and relative to the body means, and the continuity means also includes a coupler contact portion that forms a non-anchored portion configured to move relative to the anchored portion of the continuity means and to move relative to the post means and the body means when the connector is assembled.
80. The connector of claim 69, wherein the continuity means comprises a post contact portion that does not extend along an axial direction.
81. The connector of claim 69, wherein the continuity means comprises a post contact portion that is not configured to make axial lengthwise contact with the post means.
82. The connector of claim 69, wherein the continuity means includes a post contact portion and a body contact portion, and the rearward facing continuity means engaging post surface and the forward facing body surface are configured to face each other and lengthwise fit the post contact portion and the body contact portion of the continuity means between the rearward facing continuity means engaging post surface and the forward facing body surface so as to axially secure the post contact portion and the body contact portion of the continuity means relative to the post means and the body means when the connector is assembled.
83. The connector of claim 69, wherein the rearward facing continuity means engaging post surface and the forward facing body surface comprise opposing complementary surfaces that face each other.
84. The connector of claim 69, wherein the rearward facing continuity means engaging post surface and the forward facing body surface are not perpendicular to each other.
85. The connector of claim 69, wherein the continuity means includes a resilient flexible portion configured to arch out from a plane of a post contact portion of the continuity means along a curved path.
86. The connector of claim 69, wherein the continuity means includes a post contact portion, a body contact portion, a first resilient arcuate portion, and a second resilient arcuate portion radially spaced from the first resilient arcuate portion, and the first and second resilient arcuate portions each extend between two radially spaced portions of the post contact portion and the body contact portion.
87. The connector of claim 69, wherein the continuity means further includes a collar means for clamping the continuity means between an inward facing surface of the body means and an outward facing surface of the post means.
88. The connector of claim 69, wherein the continuity means further includes a collar, and wherein the post means and the body means define a continuity collar groove means for clamping the collar of the continuity means between the post means and the body means when the connector is assembled.
89. The connector of claim 69, wherein the continuity means does not include a collar.
90. The connector of claim 69, wherein the continuity means comprises a forward facing post means engaging surface inwardly extending to a first edge, a rearward facing body means engaging surface inwardly extending to a second edge, and an inward facing surface extending between the first and second edges, and wherein the inward facing surface is located forward from the forward facing body surface of the body means.
91. The connector of claim 69, wherein the continuity means includes a base surface and a biasing surface extending from the base surface, the biasing surface being configured to exert an axial force against the coupler means so as to maintain a continuity ground path between the continuity means and the rearward facing continuity engaging coupler surface of the coupler means continuously over time during operation of the connector, and wherein during operation of the connector comprises when the coupler means moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely on the interface port.
92. The connector of claim 91, wherein the base surface of the continuity means is configured to be anchored in the gap formed between the rearward facing continuity means engaging post surface and the forward facing body surface so as to maintain a continuity ground path between the continuity means and the rearward facing continuity means engaging post surface during operation of the connector, including when the coupler moves between the first and second positions, when the connector is fully tightened on the interface port, and even when the connector is loosely tightened on the interface port.
93. The connector of claim 69, wherein the continuity means comprises a post contact portion that extends along a radial direction and has a radial length so as to make radial lengthwise contact with the rearward facing continuity means engaging post surface of the post means.
94. The connector of claim 93, wherein the radial lengthwise contact does not comprise a point contact.
95. The connector of claim 69, wherein the continuity means includes a post contact portion and an arched portion extending out of a plane of the post contact portion.
96. The connector of claim 95, wherein the arched portion is curved.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(54) Although certain embodiments of the present invention are shown and described in detail, it should be understood that various changes and modifications may be made without departing from the scope of the appended claims. The scope of the present invention will in no way be limited to the number of constituting components, the materials thereof, the shapes thereof, the relative arrangement thereof, etc., and are disclosed simply as an example of embodiments of the present invention.
(55) As a preface to the detailed description, it should be noted that, as used in this specification and the appended claims, the singular forms a, an and the include plural referents, unless the context clearly dictates otherwise.
(56) Referring to the drawings,
(57) Referring further to
(58) Referring still further to
(59) The threaded nut 30 of embodiments of a coaxial cable connector 100 has a first forward end 31 and opposing second rearward end 32. The threaded nut 30 may comprise internal threading 33 extending axially from the edge of first forward end 31 a distance sufficient to provide operably effective threadable contact with the external threads 23 of a standard coaxial cable interface port 20 (as shown, by way of example, in
(60) Referring still to
(61) Embodiments of a coaxial cable connector, such as connector 100, may include a connector body 50. The connector body 50 may comprise a first end 51 and opposing second end 52. Moreover, the connector body may include a post mounting portion 57 proximate or otherwise near the first end 51 of the body 50, the post mounting portion 57 configured to securely locate the body 50 relative to a portion of the outer surface of post 40, so that the connector body 50 is axially secured with respect to the post 40, in a manner that prevents the two components from moving with respect to each other in a direction parallel to the axis of the connector 100. The internal surface of the post mounting portion 57 may include an engagement feature 54 that facilitates the secure location of a continuity member 70 with respect to the connector body 50 and/or the post 40, by physically engaging the continuity member 70 when assembled within the connector 100. The engagement feature 54 may simply be an annular detent or ridge having a different diameter than the rest of the post mounting portion 57. However other features such as grooves, ridges, protrusions, slots, holes, keyways, bumps, nubs, dimples, crests, rims, or other like structural features may be included to facilitate or possibly assist the positional retention of embodiments of electrical continuity member 70 with respect to the connector body 50. Nevertheless, embodiments of a continuity member 70 may also reside in a secure position with respect to the connector body 50 simply through press-fitting and friction-fitting forces engendered by corresponding tolerances, when the various coaxial cable connector 100 components are operably assembled, or otherwise physically aligned and attached together. In addition, the connector body 50 may include an outer annular recess 58 located proximate or near the first end 51 of the connector body 50. Furthermore, the connector body 50 may include a semi-rigid, yet compliant outer surface 55, wherein an inner surface opposing the outer surface 55 may be configured to form an annular seal when the second end 52 is deformably compressed against a received coaxial cable 10 by operation of a fastener member 60. The connector body 50 may include an external annular detent 53 located proximate or close to the second end 52 of the connector body 50. Further still, the connector body 50 may include internal surface features 59, such as annular serrations formed near or proximate the internal surface of the second end 52 of the connector body 50 and configured to enhance frictional restraint and gripping of an inserted and received coaxial cable 10, through tooth-like interaction with the cable. The connector body 50 may be formed of materials such as plastics, polymers, bendable metals or composite materials that facilitate a semi-rigid, yet compliant outer surface 55. Further, the connector body 50 may be formed of conductive or non-conductive materials or a combination thereof. Manufacture of the connector body 50 may include casting, extruding, cutting, turning, drilling, knurling, injection molding, spraying, blow molding, component overmolding, combinations thereof, or other fabrication methods that may provide efficient production of the component.
(62) With further reference to
(63) The manner in which the coaxial cable connector 100 may be fastened to a received coaxial cable 10 (such as shown, by way of example, in
(64) Turning now to
(65) Embodiments of a continuity member 70 may be formed, shaped, fashioned, or otherwise manufactured via any operable process that will render a workable component, wherein the manufacturing processes utilized to make the continuity member may vary depending on the structural configuration of the continuity member. For example, a continuity member 70 having a through-slit 73 may be formed from a sheet of material that may be stamped and then bent into an operable shape, that allows the continuity member 70 to function as it was intended. The stamping may accommodate various operable features of the continuity member 70. For instance, the securing member 75, such as tabs 75a-c, may be cut during the stamping process. Moreover, the flange cutout 76 may also be rendered during a stamping process. Those in the art should appreciate that various other surface features may be provided on the continuity member 70 through stamping or by other manufacturing and shaping means. Accordingly, it is contemplated that features of the continuity member 70 may be provided to mechanically interlock or interleave, or otherwise operably physically engage complimentary and corresponding features of embodiments of a nut 30, complimentary and corresponding features of embodiments of a post 40, and/or complimentary and corresponding features of embodiments of a connector body 50. The flange cutout 76 may help facilitate bending that may be necessary to form a flange-like nut contact member 74. However, as is depicted in
(66) With continued reference to the drawings,
(67) The continuity member 70 should be configured and positioned so that, when the coaxial cable connector 100 is assembled, the continuity member 70 resides rearward a second end portion 37 of the nut 30, wherein the second end portion 37 starts at a side 35 of the lip 34 of the nut facing the first end 31 of the nut 30 and extends rearward to the second end 32 of the nut 30. The location or the continuity member 70 within a connector 100 relative to the second end portion 37 of the nut being disposed axially rearward of a surface 35 of the internal lip 34 of the nut 30 that faces the flange 44 of the post 40. The second end portion 37 of the nut 30 extends from the second rearward end 32 of the nut 30 to the axial location of the nut 30 that corresponds to the point of the forward facing side 35 of the internal lip 34 that faces the first forward end 31 of the nut 30 that is also nearest the second end 32 of the nut 30. Accordingly, the first end portion 38 of the nut 30 extends from the first end 31 of the nut 30 to that same point of the forward facing side 35 of the lip 34 that faces the first forward end 31 of the nut 30 that is nearest the second end 32 of the nut 30. For convenience, dashed line 39 shown in
(68)
(69) When assembled, as in
(70) With continued reference to the drawings,
(71) Turning now to
(72) With continued reference to the drawings,
(73) Referring still further to the drawings,
(74) With still further reference to the drawings,
(75) With an eye still toward the drawings and with particular respect to
(76) When in operation, an electrical continuity member 970 should maintain electrical contact with both the post 940 and the nut 930, as the nut 930 operably moves rotationally about an axis with respect to the rest of the coaxial cable connector 900 components, such as the post 940, the connector body 950 and the fastener member 960. Thus, when the connector 900 is fastened with a coaxial cable 10, a continuous electrical shield may extend from the outer grounding sheath 14 of the cable 10, through the post 940 and the electrical continuity member 970 to the nut or coupler 930, which coupler 930 ultimately may be fastened to an interface port (see, for example port 20 of
(77) Turning further to the drawings,
(78) When operably assembled within an embodiment of a coaxial cable connector 1000, electrical continuity member embodiments 1070 utilize a bent configuration of the flexible portions 1079a-b, so that the nut contact tabs 1078a-b associated with the nut contact portions 1074a-b of the continuity member 1070 make physical and electrical contact with a surface of the nut 1030, wherein the contacted surface of the nut 1030 resides rearward of the forward facing surface 1035 of the inward lip 1034 of nut 1030, and rearward of the start (at surface 1035) of the second end portion 1037 of the nut 1030. For convenience, dashed line 1039 (similar, for example, to dashed line 39 shown in
(79) Referring still to the drawings,
(80) An embodiment of an electrical continuity member 1170 may comprise a simple continuous band, which, when assembled within embodiments of a coaxial cable connector 1100, encircles a portion of the post 1140, and is in turn surrounded by the second end portion 1137 of the nut 1130. The band-like continuity member 1170 resides rearward a second end portion 1137 of the nut that starts at a side 1135 of the lip 1134 of the nut 1130 facing the first end 1131 of the nut 1130 and extends rearward to the second end 1132 of the nut. The simple band-like embodiment of an electrical continuity member 1170 is thin enough that it occupies an annular space between the second end portion 1137 of the nut 1130 and the post 1140, without causing the post 1140 and nut 1130 to bind when rotationally moved with respect to one another. The nut 1130 is free to rotate, and has some freedom for slidable axial movement, with respect to the connector body 1150. The band-like embodiment of an electrical continuity member 1170 can make contact with both the nut 1130 and the post 1140, because it is not perfectly circular (see, for example,
(81) Referencing the drawings still further, it is noted that
(82) The electrical continuity member 1270 may optionally have nut contact tabs 1278a-b, which tabs 1278a-b may enhance the member's 1270 ability to make consistent operable contact with a surface of the nut 1230. As depicted, the tabs 1278a-b comprise a simple bulbous round protrusion extending from the nut contact portion. However, other shapes and geometric design may be utilized to accomplish the advantages obtained through the inclusion of nut contact tabs 1278a-b. The opposite side of the tabs 1278a-b may correspond to circular detents or dimples 1278a1-b1. These oppositely structured features 1278a1-b1 may be a result of common manufacturing processes, such as the natural bending of metallic material during a stamping or pressing process possibly utilized to create a nut contact tab 1278.
(83) As depicted, embodiments of an electrical continuity member 1270 include a cylindrical section extending axially in a lengthwise direction toward the second end 1272 of the continuity member 1270, the cylindrical section comprising a post contact portion 1277, the post contact portions 1277 configured so as to make axially lengthwise contact with the post 1240. Those skilled in the art should appreciated that other geometric configurations may be utilized for the post contact portion 1277, as long as the electrical continuity member 1270 is provided so as to make consistent physical and electrical contact with the post 1240 when assembled in a coaxial cable connector 1200.
(84) The continuity member 1270 should be configured and positioned so that, when the coaxial cable connector 1200 is assembled, the continuity member 1270 resides rearward the start of a second end portion 1237 of the nut 1230, wherein the second end portion 1237 begins at a side 1235 of the lip 1234 of the nut 1230 facing the first end 1231 of the nut 1230 and extends rearward to the second end 1232 of the nut 1230. The continuity member 1270 contacts the nut 1230 in a location relative to a second end portion 1237 of the nut 1230. The second end portion 1237 of the nut 1230 extends from the second end 1232 of the nut 1230 to the axial location of the nut 1230 that corresponds to the point of the forward facing side 1235 of the internal lip 1234 that faces the first forward end 1231 of the nut 1230 that is also nearest the second rearward end 1232 of the nut 1230. Accordingly, the first end portion 1238 of the nut 1230 extends from the first end 1231 of the nut 1230 to that same point of the side of the lip 1234 that faces the first end 1231 of the nut 1230 that is nearest the second end 1232 of the nut 1230. For convenience, dashed line 1239 (see
(85) Various other component features of a coaxial cable connector 1200 may be included with a connector 1200. For example, the connector body 1250 may include an internal detent 1256 positioned to help accommodate the operable location of the electrical continuity member 1270 as located between the post 1240, the body 1250, and the nut 1230. Moreover, the connector body 1250 may include a post mounting portion 1257 proximate the first end 1251 of the body 1250, the post mounting portion 1257 configured to securely locate the body 1250 relative to a portion 1247 of the outer surface of post 1240, so that the connector body 1250 is axially secured with respect to the post 1240. Notably, the nut 1230, as located with respect to the electrical continuity member 1270 and the post 1240, does not touch the body. A body sealing member 1280 may be positioned proximate the second end portion of the nut 1230 and snugly around the connector body 1250, so as to form a seal in the space therebetween.
(86) With respect to
(87) While this invention has been described in conjunction with the specific embodiments outlined above, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art. Accordingly, the preferred embodiments of the invention as set forth above are intended to be illustrative, not limiting. Various changes may be made without departing from the spirit and scope of the invention as defined in the following claims. The claims provide the scope of the coverage of the invention and should not be limited to the specific examples.