Quick demountable high-reliability radio-frequency coaxial connector
10965070 ยท 2021-03-30
Assignee
Inventors
- Ke Shi (Yixing, CN)
- GuoQiang Xu (Yixing, CN)
- YongKun Liu (Yixing, CN)
- WenBiao Dong (Yixing, CN)
- Kai Zhu (Yixing, CN)
- ChongHui Huang (Yixing, CN)
Cpc classification
H01R9/0524
ELECTRICITY
H01R13/5205
ELECTRICITY
International classification
Abstract
A quick demountable high-reliability radio-frequency coaxial connector including a front shell and a rear protective jacket, a cavity of the front shell is internally provided with a front insulator and a central conductor, a first locating hole of a central axial position of the front insulator, the center of the front end of the central conductor is provided with a front protrusion, the front protrusion is arranged towards the first locating hole, a penetration hole is formed in a central part of the axial tail of the central conductor, the axial tail is a necking conical structure, the inner diameter of the outer end of the necking conical structure is smaller than that of an inner conductor of a cable, and meanwhile, the inner diameter of the inner end of the necking conical structure is larger than that of the inner conductor of the cable.
Claims
1. A quick demountable high-reliability radio-frequency coaxial connector, comprising: a front shell comprising: a rear outer ring surface; a rear end inner ring surface; a cavity; a clamping inner concave ring groove forwardly concave and formed in an inner side of the rear end inner ring surface, wherein the clamping inner concave ring groove having a lock catch part being of a backward sharp corner structure; a front insulator provided in the cavity of the front shell, having a first locating hole formed in a central axial position of the front insulator; a central conductor provided in the cavity of the front shell, arranged with the front insulator in a front-rear sequence, comprising: a front end provided in the cavity, comprising a front protrusion provided at a center of the front end of the central conductor, arranged towards the first locating hole; an axial tail having an outer ring surface and being of a necking conical structure, comprising: a central part having a penetration hole formed therein; an outer end of the necking conical structure, having an inner diameter smaller than that of an inner conductor of a cable; an inner end of the necking conical structure, having an inner diameter larger than that of the inner conductor of the cable; open grooves uniformly distributed on the outer ring surface; a rear protective jacket having an inner cavity, and a front inner ring surface connected with the rear outer ring surface of the front shell by an interference fit; and a cable clamp assembly provided in the inner cavity of the rear protective jacket, having a front end clamping surface used for clamping an outer ring surface of an outer conductor of the cable to-be-connected, wherein the cable clamp assembly comprises: a base having an outer ring surface connected with a corresponding inner ring surface of the rear protective jacket by an interference fit, and having slotted holes in the outer ring surface; a cable clamp having: mounting hook structures at a rear end of the cable clamp, wherein the mounting hook structures are clamped in the slotted holes in the corresponding outer ring surface of the base; a first inner ring protrusion and a second inner ring protrusion provided at front and rear of an inner end ring surface of the cable clamp, wherein the first inner ring protrusion and the second inner ring protrusion are used for crimping corresponding troughs of the cable mounted in place; and a front end surface being a clamping surface corresponding to the corresponding clamping inner concave ring groove of the front shell.
2. The quick demountable high-reliability radio-frequency coaxial connector of claim 1, wherein the rear outer ring surface of the front shell having a stop protrusion, an inner side of the stop protrusion is sleeved with a first sealing ring having an outer ring surface, and the outer ring surface of the first sealing ring abuts to an inner ring surface of the rear protective jacket after the cable is connected in place.
3. The quick demountable high-reliability radio-frequency coaxial connector of claim 1, wherein the front protrusion is connected with the first locating hole by an interference fit in a mounting state.
4. The quick demountable high-reliability radio-frequency coaxial connector of claim 1, wherein the cable clamp is specifically of a circular ring structure formed by circumferentially splicing a plurality of lobes of cable clamp structures, and the mounting hook structures at the rear ends of the cable clamp structures are located in the corresponding slotted holes.
5. The quick demountable high-reliability radio-frequency coaxial connector of claim 4, wherein an inner wall of each of the cable clamp structures from a sectional view comprises a first protrusion, an inner concave section and a second protrusion which together form a clamping structure, the first protrusions of the plurality of cable clamp structures are combined to form the first inner ring protrusion, and the second protrusions of the plurality of cable clamp structures are combined to form the second inner ring protrusion.
6. The quick demountable high-reliability radio-frequency coaxial connector of claim 5, wherein the front end outer ring surface of the cable clamp is sleeved with a cable clamp fastening ring, and an outer ring surface formed by the cable clamp is pushed into an inner cavity at the rear end of the front shell after the cable is connected in place.
7. The quick demountable high-reliability radio-frequency coaxial connector of claim 4, wherein the front end outer ring surface of the cable clamp is sleeved with a cable clamp fastening ring, and an outer ring surface formed by the cable clamp is pushed into an inner cavity at the rear end of the front shell after the cable is connected in place.
8. The quick demountable high-reliability radio-frequency coaxial connector of claim 1, wherein the base comprises an axial rear protruded ring inserted into a mounting groove corresponding to a rear mounting sleeve, a sealing ring is arranged between the rear end of the axial rear protruded ring and the inner end wall of the mounting groove, and an inner ring surface of the sealing ring simultaneously sleeves an outer ring surface of a sheath of the to-be-connected cable in a working state.
9. The quick demountable high-reliability radio-frequency coaxial connector of claim 8, wherein a gap is remained between a rear end surface of a main body of the base and a corresponding locating end surface of the rear mounting sleeve during a pre-mounting process, a cross-section of a rear end inner ring surface of the axial rear protruded ring is a slope, and the rear end surface of the main body of the base and the locating end surface of the rear protective jacket are used as limiting surfaces in a crimping process, so that the sealing ring is deformed under force in the crimping process.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10) Reference numerals are designated to the following components:
(11) front shell 1, rear outer ring surface 11, clamping inner concave ring groove 12, sharp corner structure 13, stop protrusion 14, rear protective jacket 2, front inner ring surface 21, front insulator 3, first locating hole 31, central conductor 4, front protrusion 41, axial tail 42, open groove 43, penetration hole 44, cable clamp assembly 5, front end clamping surface 51, first sealing ring 6, base 7, slotted hole 71, axial rear protruded ring 72, sealing ring 73, slope 74, cable clamp 8, mounting hook structure 81, first inner ring protrusion 82, second inner ring protrusion 83, cable clamp structure 801, cable clamp fastening ring 9, cable 10, inner conductor 101 of cable and outer conductor 102.
DETAILED DESCRIPTION OF THE EMBODIMENTS
(12) A quick demountable high-reliability radio-frequency coaxial connector, referring to
(13) The inner side of a stop protrusion 14 on the rear outer ring surface 11 of the front shell 1 is sleeved with a first sealing ring 6, and an outer ring surface of the first sealing ring 6 abuts to an inner ring surface 21 of the rear protective jacket 2 after the cable 10 is connected in place so that in-place packaging is achieved.
(14) The front protrusion 41 is connected with the first locating hole 31 by an interference fit at a mounting state.
(15) The cable clamp assembly 5 comprises a base 7 and a cable clamp 8, an outer ring surface of the base 7 is connected with the corresponding inner ring surface of the rear protective jacket 2 by an interference fit, mounting hook structures 81 at the rear end of the cable clamp 8 are clamped in slotted holes 71 in the corresponding outer ring surface of the base 7, each of the front and rear of the inner end ring surface of the cable clamp 8 is provided with a first inner ring protrusion 82 and a second inner ring protrusion 83, the first inner ring protrusion 82 and the second inner ring protrusion 83 are used for crimping corresponding troughs of the cable mounted in place, and the front end surface of the cable clamp 8 is a clamping surface 51 corresponding to the clamping inner concave ring groove 12 of the front shell.
(16) The cable clamp 8 is specifically of a circular ring structure formed by circumferentially splicing a plurality of lobes of cable clamp structures 801, and mounting hook structures at the rear ends of the cable clamp structures 801 are located in corresponding slotted holes 71. In the specific embodiment, the four lobes of cable clamp structures 801 are circumferentially spliced to form the cable clamp 8 into a circular ring structure.
(17) The inner wall of each of the cable clamp structures 801 from a sectional view comprises a first protrusion, an inner concave section and a second protrusion which form a clamping structure, the first protrusions of the plurality of cable clamp structures 801 are combined to form the first inner ring protrusion 82, and the second protrusions of the plurality of cable clamp structures 801 are combined to form the second inner ring protrusion 83.
(18) The front end outer ring surface of the cable clamp 8 is sleeved with a cable clamp fastening ring 9, and an outer ring surface formed by the cable clamp 8 is pushed into an inner cavity at the rear end of the front shell 1 after the cable is connected in place.
(19) The base 7 comprises an axial rear protruded ring 72 inserted into a mounting groove corresponding to a rear mounting sleeve 2, a sealing ring 73 is arranged between the rear end of the axial rear protruded ring 72 and the inner end wall of the mounting groove, and an inner ring surface of the sealing ring 73 simultaneously sleeves an outer sheath ring surface of the to-be-connected cable 10 in a working state, so that the waterproof performance is achieved.
(20) A gap is remained between the rear end surface of a main body of the base 7 and the corresponding locating end surface of the rear mounting sleeve 2 during pre-mounting, a section of a rear end inner ring surface of the axial rear protruded ring 72 is a slope 74, and the rear end surface of the main body of the base 7 and the locating end surface of the rear protective jacket 2 are used as limiting surfaces in a crimping process, so that the sealing ring 73 is deformed under force in the crimping process to achieve a sealing effect.
(21) The working principle is as follows: firstly, the cable is subjected to wire stripping and is pre-mounted, then, the cable is inserted into a coaxial connector from a central hole of the rear protective jacket, the inner conductor of the cable has to be in the penetration hole of the axial tail of the central conductor, the inner conductor of the cable has to enter the penetration hole of the central conductor and be concentric therewith, next, the outer conductor of the cable abuts against the sharp corner structure in the crimping process, the outer conductor of the cable is extruded to bend and deform, and thus being overlapped and clamped between the front end clamping surface of the cable clamp assembly and the clamping inner concave ring groove, the cable displaces when a crimping force acting on the cable is large enough, meanwhile, the central conductor is driven along and pushed forwards, and thereby, the central conductor is driven to enter the first locating hole, so that the inner conductor of the cable is better fastened.
(22) The quick demountable high-reliability radio-frequency coaxial connector is mainly suitable for a cable with an inner conductor being of a copper pipe structure and has the following characteristics:
(23) 1. The connector is of an integrated structure after being completely mounted and is not needed to be separated in a construction process, and the cable is only needed to be pushed to a preset position.
(24) 2. The cable clamp is of a multi-lobed structure and is protected by a hook-like structure and an O-shaped ring to form a cable clamp assembly when being placed on the base, so that expansion and contraction in a cable placing process can be realized, in addition, the cable clamp is fixedly arranged on the rear shell, so that the cable clamp is prevented from dropping due to a positional limitation by the inner wall of the rear shell in a strutting process.
(25) 3. The cable clamp has a double-trough fixing function, by a semicircular groove formed in the surface of the cable clamp.
(26) 4. The inner conductor of the connector has a certain conicity so as to be capable of smoothly entering into the inner conductor of the cable, and the contact between the inner conductor of the connector and the inner conductor of the cable is elastic contact.
(27) 5. The cable can be pulled out at any time in a mounting process of the connector, so that scrapping of the connector caused by mounting problems can be avoided.
(28) 6. The crimping of the cable clamp to the outer conductor, is applied, such that the outer conductor is crimped into a dual-layer of copper strips, instead of former single-layer clamping, so as to be clamped more firmly.
(29) 7. The connector is mounted by crimping the front shell and the rear shell by an interference fit instead of a conventional screwed structure, and meanwhile, proved by tests, the tensile strength obtained by connecting with the cable is obviously higher than that of the conventional screwed structure.
(30) 8. An inner insulating support has high-strength horizontal and longitudinal performances and also meets the requirement for electrical properties of a radio-frequency connector.
(31) 9. The sealing ring at the tail end of the connector is compressed to deform in the crimping process and is in tight contact with the sheath of the cable so that a waterproof effect is achieved.
(32) Specific embodiments of the present disclosure are described in detail above, but contents are only suitable embodiments of the present disclosure and cannot be construed as a limitation of the present disclosure. Equivalent variations, improvements and the like made within the scope of the present disclosure should still fall into the scope of patent.