This application is based on and claims priority from Japanese Patent Application No. 2021-157713, filed on Sep. 28, 2021, with the Japan Patent Office, the disclosure of which is incorporated herein in its entirety by reference.
The present disclosure relates to a connector.
A connector is disclosed in Japanese Patent Laid-open Publication No. 2018-512707. In this connector, a second conductor component attached to the leading end of a coaxial cable is connected to a first conductor component. The second conductor component includes an outer conductor and an inner conductor held at a central position within the outer conductor by an insulating component. No description is given regarding the structure for holding the inner conductor. Japanese Patent Laid-open Publication No. 2006-128032 describes that a lance is provided in a socket contact, and the lance is locked to a locking hole of a connector housing.
The technology of Japanese Patent Laid-open Publication No. 2006-128032 can be applied as the structure for holding the inner conductor in Japanese Patent Laid-open Publication No. 2018-512707. However, since the lance is supported in a cantilevered manner, a gap may be formed around the lance, and the impedance may decrease.
In view of this, an object of the present disclosure is to provide technology capable of suppressing a decrease in the impedance of the inner conductor.
A connector according to the present disclosure includes: an inner conductor; an outer conductor configured to surround the inner conductor; and a dielectric arranged between the inner conductor and the outer conductor, wherein the dielectric includes: a cavity extending in a predetermined direction, and a locking hole formed in an inner peripheral face of the cavity, the inner conductor includes: an inner conductor body arranged in the cavity, and a locking portion that bulges from the inner conductor body and is configured to enter and be locked to the locking hole, and the locking portion extends in the predetermined direction and is shaped as a double-supported beam whose upper and lower end portions are supported by the inner conductor body.
According to the present disclosure, it is possible to suppress a decrease in the impedance of the inner conductor.
The foregoing summary is illustrative only and is not intended to be in any way limiting. In addition to the illustrative aspects, embodiments, and features described above, further aspects, embodiments, and features will become apparent by reference to the drawings and the following detailed description.
In the following detailed description, reference is made to the accompanying drawings, which form a part hereof. The illustrative embodiments described in the detailed description, drawings, and claims are not meant to be limiting. Other embodiments may be utilized, and other changes may be made, without departing from the spirit or scope of the subject matter presented here.
Description of Embodiments of Present Disclosure
First, embodiments of the present disclosure will be listed and described.
(1) A connector according to the present disclosure includes: an inner conductor; an outer conductor configured to surround the inner conductor; and a dielectric arranged between the inner conductor and the outer conductor, wherein the dielectric includes: a cavity extending in a predetermined direction, and a locking hole formed in an inner peripheral face of the cavity, the inner conductor includes: an inner conductor body arranged in the cavity, and a locking portion that bulges from the inner conductor body and is configured to enter and be locked to the locking hole, and the locking portion extends in the predetermined direction and is shaped as a double-supported beam whose upper and lower end portions are supported by the inner conductor body.
According to this connector, due to the locking portion being locked to the locking hole, it is possible to suppress the case where the inner conductor comes out of the dielectric. Moreover, the locking portion is shaped as a double-sided beam whose upper and lower end portions are supported by the inner conductor body. For this reason, according to this connector, a decrease in the impedance of the inner conductor can be suppressed more than in the case of a configuration in which the locking portion is a normal lance.
(2) It is preferable that the locking portion is curved.
According to this configuration, it is possible to reduce the insertion force required when inserting the inner conductor into the dielectric.
(3) It is preferable that the connector further includes a second inner conductor configured to be electrically connected to the inner conductor, an entry hole is formed in an inner peripheral face of the cavity at a position corresponding to the locking hole, the second inner conductor is arranged in the entry hole, and the locking hole and the entry hole are arranged coaxially with each other via the cavity.
According to this configuration, the locking hole and the entry hole can be punched out at the same time using the same straight die.
(4) It is preferable that the locking portion includes a protruding face bulging from the inner conductor body, and a receding face formed on a reverse side of the protruding face, and in a state where the second inner conductor is normally connected to the inner conductor, a leading end of the second inner conductor is arranged inward of the receding face.
According to this configuration, if the inner conductor is in a partially-inserted state, the leading end of the second inner conductor abuts on the inner conductor. For this reason, it can be easily determined whether or not the inner conductor is in a partially-inserted state.
(5) It is preferable that a guide groove is formed in an inner peripheral face of the cavity, and the guide groove extends along the predetermined direction and is in communication with the locking hole.
According to this configuration, the locking portion of the inner conductor inserted into the cavity can be guided to the locking hole by the guide groove.
Detailed Description of Embodiments of Present Disclosure
Specific examples of the present disclosure will be described below with reference to the drawings. It should be noted that the present invention is not limited to these examples, but rather is indicated by the scope of claims, and is intended to include all modifications within a meaning and scope equivalent to the scope of claims.
Overview of Connector 10
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Configuration of Housing 11
The housing 11 is electrically insulating and is made of a synthetic resin. The housing 11 is L-shaped as shown in
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Configuration of First Inner Conductor 21
The first inner conductor 21 corresponds to an example of the “inner conductor” of the present invention. The first inner conductor 21 is a plate-shaped member, and is formed by bending a metal plate. As shown in
The first inner conductor body 23 corresponds to an example of the “inner conductor body” of the present invention. As shown in
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Configuration of First Outer Conductor 41
The first outer conductor 41 is a member formed with a tubular shape by casting or cutting. “Formed with a tubular shape by casting or cutting” means perform the step of formation with a tubular shape by performing casting or cutting, and does not mean formation with a tubular shape by bending a metal plate that has been cut. Note that casting also includes die casting. As shown in
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The conductor-side fitting hole 45 is formed inside the accommodation portion 43 as shown in
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Configuration of First Dielectric 61
The first dielectric 61 corresponds to an example of the “dielectric” of the present invention. As shown in
The cavity 63 extends along the up-down direction as shown in
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Configuration of Second Inner Conductor 22
The second inner conductor 22 is a plate-shaped member, and is formed by bending a metal plate. The second inner conductor 22 extends in the front-rear direction as shown in
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Configuration of Second Outer Conductor 42
The second outer conductor 42 is a plate-shaped member, and is formed by bending a metal plate. The second outer conductor 42 surrounds the second inner conductor 22 as shown in
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Configuration of Second Dielectric 62
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Other Configurations
The sleeve 70 shown in
Assembly of Connector 10
The following description is given mainly with reference to
The first inner conductor 21 is inserted into the cavity 63 of the first dielectric 61 from below. The first inner conductor 21 is inserted into the cavity 63 in such a manner that the stabilizer 25 is fitted into the stabilizer fitting groove 67 of the first dielectric 61. In the process of inserting the first inner conductor 21 into the cavity 63, the locking portion 24 of the first inner conductor 21 is fitted into the guide groove 66 formed in the inner peripheral surface of the cavity 63, and slides upward along the guide groove 66. When fitted in the guide groove 66, the locking portion 24 undergoes bending deformation due to receiving reaction force from the bottom face of the guide groove 66. When the first inner conductor 21 has been inserted to the normal insertion position, the locking portion 24 enters the locking hole 64 in communication with the guide groove 66 due to elastic return force. As a result, the first inner conductor 21 is locked to the first dielectric 61 and is restricted from coming downward out of the cavity 63. In the state where the locking portion 24 has entered the locking hole 64, the opening between the pair of first connection portions 31 faces the entry hole 65 of the first dielectric 61.
The first dielectric 61 is inserted into the first outer conductor 41 from below. When the first dielectric 61 has been inserted to the normal insertion position, the entry hole 65 is aligned with the conductor-side fitting hole 45 of the first outer conductor 41 in the front-rear direction. The outer peripheral surface of the tubular portion 44 of the first outer conductor 41 is covered by the exposed shield layer 83 and crimped by the sleeve 70. As a result, the first outer conductor 41 is electrically connected to the shield layer 83 of the electric wire 80.
The first outer conductor 41 is inserted into the housing body 12 of the housing 11 from below. When the first outer conductor 41 has been inserted to the normal insertion position, the conductor-side fitting hole 45 of the first outer conductor 41 is aligned with the fitting hole 13 of the housing 11 in the front-rear direction, and the conductor-side fitting groove 46 of the first outer conductor 41 is aligned with the fitting groove 14 of the housing 11 in the front-rear direction. As shown in
The second inner conductor 22 is inserted into the second dielectric 62 from behind. When the second inner conductor 22 has been inserted to the normal insertion position, movement of the second inner conductor 22 in the front-rear direction relative to the second dielectric 62 is restricted by the inner-conductor-side protruding portions 37 and the retaining projections 38. The second dielectric 62 is inserted into the second outer conductor 42 from behind. The second dielectric 62 restricted from moving forward upon abutting against the front stop portion 53 of the second outer conductor 42. The second outer conductor 42 is fitted into the fitting hole 13 of the housing 11 from the front side in such a manner that the protruding portions 52 fit into the fitting groove 14 of the housing 11. As the fitting of the second outer conductor 42 progresses, the second outer conductor 42 is fitted into the conductor-side fitting hole 45 of the first outer conductor 41, and the protruding portions 52 of the second outer conductor 42 are fitted into the conductor-side fitting groove 46 of the first outer conductor 41.
In the process in which the second outer conductor 42 is fitted into the conductor-side fitting hole 45 in the accommodation portion 43, the second lock portions 51 are pressed by the first lock portions 47 so as to undergo bending deformation in the inward direction. As the fitting progresses further, the first lock portions 47 are fitted into the lock holes 55 of the second lock portion 51, and the second lock portions 51 return to their original shape due to elastic return force. As a result, the second lock portions 51 are locked to the first lock portions 47.
When the second lock portions 51 are locked to the first lock portions 47, the second outer conductor 42 is coupled to the first outer conductor 41. The first outer conductor 41 is configured so as not to come out from the inside of the housing body 12 to the fitting hole 13. For this reason, even if the second outer conductor 42 that is coupled to the first outer conductor 41 is pulled in the direction of coming out of the fitting hole 13, the first outer conductor 41 is caught in the housing body 12. In other words, in the state where the second lock portions 51 are locked to the first lock portions 47, the second outer conductor 42 is retained in the fitting hole 13.
In the process in which the second outer conductor 42 is fitted into the conductor-side fitting hole 45 in the accommodation portion 43, the second connection portion 36 of the second inner conductor 22 enters the entry hole 65 of the first dielectric 61, and moves forward while spreading apart the pair of first connection portions 31. In the state where the second inner conductor 22 has been normally connected to the first inner conductor 21, the second inner conductor 22 is sandwiched between the pair of first connection portions 31 of the first inner conductor 21, and the leading end of the second connection portion 36 of the second inner conductor 22 is arranged inward of the receding face 24B. At this time, the leading end of the second connection portion 36 of the second inner conductor 22 does not come into contact with the receding face 24B.
Note that a later-described second outer conductor 42B, which is different from the second outer conductor 42, can be fitted into the accommodation portion 43 of the first outer conductor 41. In other words, the connector 10 is configured such that any one of a plurality of types of second outer conductors (in the present embodiment, either the second outer conductor 42 or the second outer conductor 42B) can be coupled to the first outer conductor 41. The second outer conductor 42B includes an outer conductor body 50B, second lock portions 51B, protruding portions 52B, and partner connection portions 54B.
The outer conductor body 50B is shaped as a tube (more specifically, a cylinder) that extends in the front-rear direction. The second lock portions 51B are arranged rearward of the outer conductor body 50B.
The second lock portions 51B are respectively provided on the left and right sides of the second outer conductor 42B. A second lock hole 55B is formed in each of the second lock portions 51B. The second lock portions 51B have the same shape as the second lock portions 51.
The protruding portions 52B are provided on the outer peripheral surface of the outer conductor body 50B. The protruding portions 52B project upward from the upper end portion of the outer peripheral surface of the outer conductor body 50B. The protruding portions 52B have the same shape as the protruding portions 52.
The partner connection portions 54B are supported in a cantilevered manner by the front end of the outer conductor body 50B, and are shaped so as to project forward. A plurality of (six in the present embodiment) partner connection portions 54B are provided at equal intervals in the circumferential direction. The partner connection portions 54B can undergo bending deformation. The partner connection portions 54B elastically come into contact with the partner outer conductor 93 (see
The guiding faces 56B are formed at the front end portions of the partner connection portions MB. The guiding faces 56B are inclined radially inward while extending rearward. The guiding faces 56B guide the partner outer conductor 93 inward in the radial direction of the partner connection portions 54B. The radially inward sides of the partner connection portions MB are electrically connected to the partner outer conductor 93.
In other words, the second lock portions 51 and the second lock portions 51B have the same shape as each other, and are shaped so as to be locked to the first lock portions 47. For this reason, when either the second outer conductor 42 or the second outer conductor 42B is selected and fitted into the accommodation portion 43 of the first outer conductor 41, the second lock portions of the fitted second outer conductor are locked to the first lock portions 47 of the first outer conductor 41, and the second outer conductor is coupled to the first outer conductor 41. As a result, the second outer conductor is electrically connected to the first outer conductor 41. On the other hand, the partner connection portions 54 and the partner connection portions 54B have different shapes from each other, and are shaped so as to be connected to partner connection portions that have different shapes from each other. For this reason, the partner connector that corresponds to the second outer conductor that is coupled to the first outer conductor 41 can be fitted to the connector 10.
Effects of Connector 10
The first outer conductor 41 of the connector 10 is a member formed with a tubular shape by casting or cutting, and therefore the first outer conductor 41 can be formed so as to suppress the formation of a gap, thus making it possible to improve the shielding performance of the first outer conductor 41.
Here, if the second outer conductor 42 is also a member formed with a tubular shape by casting or cutting, both the first outer conductor 41 and the second outer conductor 42 do not easily deform, and thus can conceivably be coupled to each other by press fitting. However, in the case of coupling by press fitting, the dimensional tolerance between the first outer conductor 41 and the second outer conductor 42 needs to be reduced in order to ensure electrical connection reliability, which may increase difficulty in manufacturing the first outer conductor 41 and the second outer conductor 42. In view of this, according to the connector 10, the second outer conductor 42 is a plate-shaped member and includes the second lock portions 51 that can undergo bending deformation. Therefore, if the second lock portions 51 undergo bending deformation in order to become locked to the first lock portions 47 of the first outer conductor 41, the dimensional tolerance between the first outer conductor 41 and the second outer conductor 42 can be large, the first outer conductor 41 and the second outer conductor 42 can be manufactured easily, and it is possible to realize coupling with high electrical connection reliability. Also, due to being plate-shaped, the second outer conductor 42 can be manufactured at low cost.
Moreover, a portion of the second outer conductor 42 enters the accommodation portion 43, thus making it possible to reduce the height of the connector 10 in the direction in which the second outer conductor 42 projects from the first outer conductor 41.
Also, the second lock portions 51 of the second outer conductor 42 are arranged at positions that close the through holes 48 when the second outer conductor 42 is fitted to the accommodation portion 43. This therefore makes it possible to suppress a decrease in the shielding performance of the first outer conductor 41 and the second outer conductor 42.
Also, the second outer conductor 42 includes the partner connection portions 54 that come into contact with the partner outer conductor of the partner connector 90. For this reason, according to the connector 10, it is possible to improve the electrical connection reliability between the second outer conductor 42 and the partner outer conductor 93. Also, due to the second outer conductor 42 being a plate-shaped member, it is possible to easily form the partner connection portions 54 that are capable of elastic contact.
Also, the connector 10 has a configuration in which either one of the two types of second outer conductor 42 and 42B can be selected and coupled to the first outer conductor 41, and the two types of second outer conductors 42 and 42B respectively include the partner connection portions 54 and 54B that have different shapes from each other. This therefore makes it possible to manufacture a plurality of types of connectors that can be fitted to various types of partner outer conductors while also including the same first outer conductor 41.
Also, in the connector 10, the locking portion 24 is locked to the locking hole 64, thus suppressing the case where the first inner conductor 21 comes off from the first dielectric 61. Moreover, the locking portion 24 is shaped as a double-supported beam whose upper and lower end portions are supported by the first inner conductor body 23. For this reason, according to this connector 10, a decrease in the impedance of the first inner conductor 21 can be suppressed more than in the case of a configuration in which the locking portion is a lance.
Also, the locking portion 24 is curved. For this reason, according to the connector 10, it is possible to reduce the insertion force required when inserting the first inner conductor 21 into the first dielectric 61.
Also, the locking hole 64 and the entry hole 65 of the first dielectric 61 are arranged coaxially with each other via the cavity 63. For this reason, the locking hole 64 and the entry hole 65 can be punched out at the same time using the same straight die during manufacturing of the connector 10.
Also, in a state where the second inner conductor 22 is normally connected to the first inner conductor 21, the leading end of the second connection portion 36 of the second inner conductor 22 is arranged inward of the receding face 24B. For this reason, if the first inner conductor 21 is in a partially-inserted state, the leading end of the second connection portion 36 is abutted against the first inner conductor 21. Therefore, it can be easily determined whether or not the first inner conductor 21 is in the partially-inserted state. In particular, in the present embodiment, in the state where the leading end of the second inner conductor 22 is abutted against the first inner conductor 21, the second lock portions 51 of the second outer conductor 42 do not become locked to the first lock portions 47 of the first outer conductor 41. For this reason, based on this non-locked state, it is possible to more easily determine that the first inner conductor 21 is in the partially-inserted state.
Also, the guide groove 66 is formed on the inner peripheral surface of the cavity 63, and the guide groove 66 extends along the up-down direction and is in communication with the locking hole 64. For this reason, according to the connector 10, while being inserted into the cavity 63, the locking portion 24 of the first inner conductor 21 can be guided to the locking hole 64 by the guide groove 66.
Also, in the state where the first outer conductor 41 is located at the normal insertion position, the first lock portions 47 of the connector 10 are arranged so as to face the back side in the fitting direction of the second outer conductor 42 in the fitting hole 13. The second lock portions 51 then become locked to the first lock portions 47. In the state where the second lock portions 51 are locked to the first lock portions 47, the second outer conductor 42 is retained in the fitting hole 13. In opposite terms, according to this connector 10, if the first outer conductor 41 is in the partially-inserted state, the positions of the second lock portions 51 and the first lock portions 47 are not aligned with each other, and thus the second lock portions 51 do not become locked to the first lock portions 47, and the second outer conductor can come out of the fitting hole. For this reason, according to this connector 10, it is possible to suppress the case where the first outer conductor 41 and the second outer conductor 42 become locked to each other while in the partially-inserted state.
Also, the housing 11 includes the fitting groove 14 that is formed in the inner peripheral surface of the fitting hole 13 and extends along the fitting direction of the second outer conductor 42, and the second outer conductor 42 includes the protruding portions 52 that fit into the fitting groove 14 in the process of fitting to the first outer conductor 41. For this reason, according to the connector 10, the second outer conductor 42 can be positioned relative to the housing 11 in the circumferential direction.
Also, the housing 11 is L-shaped and does not including a housing lock portion by which the first outer conductor 41 and the second outer conductor 42 are locked to the housing 11, and therefore the first outer conductor 41 and the second outer conductor 42 can easily separate from the housing 11 when not coupled to each other. Therefore, according to this configuration, it is easy to check whether or not the first outer conductor 41 and the second outer conductor 42 are correctly coupled.
Also, in the connector 10, in the state where the second lock portions 51 are locked to the first lock portions 47, the protruding portions 52 of the second outer conductor 42 are fitted into the conductor-side fitting groove 46 of the first outer conductor 41, and therefore the second outer conductor 42 can be positioned relative to the first outer conductor 41 in the circumferential direction.
Also, the shield layer 83 of the electric wire 80 is electrically connected to the first outer conductor 41. The first outer conductor 41 is electrically connected to the second outer conductor 42, and the partner outer conductor 93 of the partner connector 90 is electrically connected to the second outer conductor 42. The second outer conductor 42 extends in a direction intersecting (more specifically, orthogonal to) the extending direction of the first outer conductor 41. For this reason, according to this connector 10, it is possible to change the route in the direction intersecting the extending direction of the electric wire 80.
Other Embodiments of Present Disclosure
The embodiments disclosed in the present embodiment are illustrative in all respects and not intended to be construed as limiting.
(1) Although the connector is L-shaped in the above embodiment, the connector does not need to be L-shaped. For example, the connector may be I-shaped (have a straight shape).
(2) Although the second outer conductor closes the through hole of the first outer conductor in the above embodiment, a configuration is possible in which the second outer conductor does not close the through hole.
(3) Although the partner connection portion is configured to come into elastic contact with the partner outer conductor in the above embodiment, the partner connection portion does not need to come into elastic contact with the partner outer conductor.
(4) Although the entry hole is arranged coaxially with the locking hole in the above embodiment, the entry hole and the locking hole do not need to be arranged coaxially.
(5) Although the leading end of the second inner conductor is arranged inward of the receding face of the locking portion in the first inner conductor in the above embodiment, the leading end of the second inner conductor does not need to be arranged inward of the receding face. For example, the leading end of the second inner conductor may be arranged outward of (forward of) the open end of the receding face.
(6) Although the leading end of the second inner conductor does not come into contact with the receding face of the locking portion of the first inner conductor in the above embodiment, the leading end of the second inner conductor may come into contact with the receding face.
(7) Although the guide groove is formed on the inner peripheral surface of the cavity in the above embodiment, a configuration is possible in which the guide groove is not formed.
(8) Although the electric wire is a coaxial cable in the above embodiment, the electric wire does not need to be a coaxial cable, and may be a cable for differential signal transmission, for example.
(9) Although only a portion of the second outer conductor is inserted into the accommodation portion of the first outer conductor in the above embodiment, the entirety of the second outer conductor may be inserted into the accommodation portion.
From the foregoing, it will be appreciated that various exemplary embodiments of the present disclosure have been described herein for purposes of illustration, and that various modifications may be made without departing from the scope and spirit of the present disclosure. Accordingly, the various exemplary embodiments disclosed herein are not intended to be limiting, with the true scope and spirit being indicated by the following claims.
Number | Date | Country | Kind |
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2021-157713 | Sep 2021 | JP | national |