The present disclosure relates to a shield connector.
Patent Document 1 discloses a shield connector connected to a shielded cable for communication. This shield connector includes a terminal fitting connected to a shield wire of the shielded cable, a housing (hereinafter, referred to as a dielectric) for accommodating the terminal fitting, and a shield shell for surrounding the housing. The shield shell includes a barrel portion to be crimped to a sheath of the shielded cable. A shield connector of this type is also disclosed in Patent Document 2.
Patent Document 1: JP 2013-229255 A
Patent Document 2: JP 2012-018898 A
In the case of Patent Document 1, the sheath of the shielded cable is fixed by the barrel portion with the dielectric inserted in the shield shell. When the barrel portion is crimped, the dielectric may be displaced with respect to the shield shell.
Accordingly, the present disclosure aims to provide a shield connector capable of preventing a displacement of a dielectric.
The present disclosure is directed to a shield connector with an inner conductor, a dielectric for accommodating the inner conductor, and an outer conductor for surrounding the dielectric, the dielectric including a stopper portion for stopping a movement of the dielectric along a wall surface of the outer conductor by abutting on the outer conductor.
According to the present disclosure, it is possible to provide a shield connector capable of preventing a displacement of a dielectric.
[Description of Embodiments of Present Disclosure]
First, embodiments of the present disclosure are listed and described.
(1) A shield connector of the present disclosure is provided with an inner conductor, a dielectric for accommodating the inner conductor, and an outer conductor for surrounding the dielectric, the dielectric including a stopper portion for stopping a movement of the dielectric along a wall surface of the outer conductor by abutting on the outer conductor. For example, when the outer conductor is crimped, a movement of the dielectric along the wall surface of the outer conductor can be stopped by the abutment of the stopper portion on the outer conductor. Thus, according to the above configuration, a displacement of the dielectric with respect to the outer conductor can be prevented.
(2) Preferably, the dielectric includes a supporting member for positioning the inner conductor and a cover member to be attached to the supporting member, and the stopper portion is provided on the supporting member. According to this, the inner conductor is positioned by the supporting member and, in addition, a relative position of the inner conductor with respect to the outer conductor can be determined via the stopper portion of the supporting member. Thus, a distance between the inner conductor and the outer conductor can be kept constant and an impedance can be accurately adjusted.
(3) The stopper portion may be shaped to project into a space in the outer conductor. According to this, an air layer constituting the space in the outer conductor is replaced by a resin constituting the stopper portion in a projecting region of the stopper portion in the outer conductor. As a result, the stopper portion can exhibit a function of adjusting an impedance.
(4) The outer conductor includes a tubular outer conductor body portion open forward and rearward, the outer conductor body portion includes a stopper receiving portion on a rear end, the stopper portion abutting on the stopper receiving portion, and a rear part including the rear end, out of the outer conductor body portion, is thicker than a front part including a front end. A forward movement (displacement) of the dielectric with respect to the outer conductor can be prevented by the abutment of the stopper portion on the stopper receiving portion. Particularly, since the stopper receiving portion is provided in the thick rear part of the outer conductor body portion, a concern for deformation during interference with the stopper portion can be reduced. On the other hand, since being thinner than the rear part, the front part of the outer conductor body portion has, for example, a spring structure to be deflected and deformed.
[Details of Embodiment of Present Disclosure]
A specific example of a shield connector of the present disclosure is described below with reference to the drawings. Note that the present invention is not limited to these illustrations and is intended to be represented by claims and include all changes in the scope of claims and in the meaning and scope of equivalents.
<Embodiment>
A shield connector of an embodiment includes, as shown in
The terminal module 20 is connected to an end part of a shielded cable 90. As shown in
The sleeve 17 is made of metal, has a hollow cylindrical shape and is mounted between the outer periphery of the sheath 95 and the folded portion 96 of the shield layer 94. The clip 16 is made of metal and in the form of a plate piece and holds front end parts of the pair of coated wires 93 in a positioned state.
The pair of inner conductors 15 are connected to the pair of internal conductors 91. Each inner conductor 15 is positioned by the supporting member 13 and accommodated in the dielectric 19 while being sandwiched between the supporting member 13 and the cover member 14 (see
The dielectric 19 (supporting member 13 and cover member 14) is made of synthetic resin.
The supporting member 13 constitutes an upper part of the dielectric 19. As shown in
The front wall portion 22 includes a pair of left and right insertion holes 26. When the shield connector is connected to an unillustrated mating connector, a pair of mating terminals mounted in the mating connector are inserted through the pair of insertion holes 26. Each mating terminal is tab-like or pin-like and connected to each inner conductor 15. The front wall portion 22 includes a pair of upper and lower recesses 27 in the form of cutouts on both upper and lower ends of a front surface and at positions between the respective insertion holes 26 in the lateral direction.
As shown in
The supporting member 13 includes a pair of terminal accommodating portions 31 on both left and right sides of the partition wall 28. The pair of terminal accommodating portions 31 are defined as recesses by the front wall portion 22, the partition wall 28 and the pairs of the side wall portions 23. The pair of inner conductors 15 are accommodated into the pair of terminal accommodating portions 31. The pair of front side wall portions 23 include a pair of locking portions 32 at positions near lower ends. Each locking portion 32 is in the form of a projection and projects into each terminal accommodating portion 31. Each inner conductor 15 is inserted into the corresponding terminal accommodating portion 31 from below and positioned in the front-rear direction with respect to the supporting member 13 by fitting the locking portion 32 into a lock receiving portion 33 of a box-shaped part as shown in
The supporting member 13 includes a stopper portion 34. The stopper portion 34 is in the form of a rib projecting upward from a rear end part of the upper surface of the supporting body portion 21 and extending in the lateral direction. The stopper portion 34 is arranged rearward of the pair of rear side wall portions 23. In short, the stopper portion 34 is arranged on the rearmost end of the dielectric 19.
As shown in
The cover member 14 constitutes a lower part of the dielectric 19. As shown in
In the process of assembling the cover member 14 with the supporting member 13, the respective lock pieces 37 interfere with the respective lock projections 25 and are deflected and deformed laterally outward away from each other. Thereafter, the respective lock pieces 37 are resiliently restored and enter the respective cut portions 24, and the respective lock projections 25 are fit into the respective lock holes 38 (see
The outer conductor 18 (first and second outer conductors 11, 12) is made of a metal plate material and surrounds the inner conductors 15 and the dielectric 19.
As shown in
As shown in
As shown in
A step 57 in an in-out direction (radial direction) is formed over the entire periphery on the inner surface of the outer conductor body portion 47. In the outer conductor body portion 47, a front part 58 located on a front side, out of both front and rear sides of the step 57, is formed thinner than a rear part 59 located on the rear side. As shown in
The front part 58 is configured in a region from the front end of the outer conductor body portion 47 to the step 57. Each resilient portion 55 is included in the front part 58. By forming the front part 58 thinner than the rear part 59, each resilient portion 55 is smoothly deflected. On the other hand, the rear part 59 is configured in a region from the step 57 to the rear end of the outer conductor body portion 47. The stopper receiving portion 53 is included in the rear part 59. By forming the rear part 59 thicker than the front part 58, the durability of the stopper receiving portion 53 can be improved.
Next, a manufacturing method and functions of the terminal module 20 are described.
First, each inner conductor 15 is inserted into each terminal accommodating portion 31 and the cover member 14 is locked and attached to the supporting member 13 by the locking of each lock piece 37 and each lock projection 25, whereby the dielectric 19 is configured. Each inner conductor 15 is positioned by the locking portion 32 of the supporting member 13 and sandwiched and held between the supporting member 13 and the cover member 14.
Subsequently, the dielectric 19 is inserted into the outer conductor body portion 47 from behind. Each projecting piece 54 of the outer conductor body portion 47 is fit into each recess 27 of the front wall portion 22 and the front surface of the stopper portion 34 abuts on the stopper receiving portion 53 of the outer conductor body portion 47, whereby an inserting operation of the dielectric 19 is stopped. When the dielectric 19 is properly inserted into the outer conductor body portion 47, the folded portion 96 of the shield layer 94 is arranged on the projecting portion 49. A gap is formed between the outer surface of the dielectric 19 and the inner surface of the front part 58 (see
Subsequently, the covering portion 41 is arranged to be put on a rear part of the outer conductor body portion 47 from above. In that state, the respective holding pieces 45 are bent inwardly and crimped to embrace the lower plate portion 48 and the crimping portion 42 is crimped to the outer periphery of the folded portion 96. By locking tip parts of the respective crimping pieces 46 to the projecting portion 49, the outer conductor 18 and the shield layer 94 are electrically conductively connected.
Here, the stopper portion 34 is arranged forward of the folded portion 96 and below a boundary region between the covering portion 41 and the crimping portion 42 in a space in the second outer conductor 12 (see
Further, in the crimping step of the crimping portion 42 and the like, the first outer conductor 11 and the dielectric 19 receive a crimping force from the side of the second outer conductor 12 and a displacement force for moving the dielectric 19 forward with respect to the first outer conductor 11 is applied to the dielectric 19.
However, in the case of this embodiment, even if the displacement force is applied to the dielectric 19, the front surface of the stopper portion 34 is stopped in contact with the stopper receiving portion 53 of the outer conductor body portion 47 or a state where the front surface of the stopper portion 34 is stopped in contact with the stopper receiving portion 53 is maintained. Thus, a forward movement of the dielectric 19 with respect to the first outer conductor 11 is hindered. As a result, relative positions of the outer conductor 18 and the dielectric 19 are kept constant and, consequently, a distance between each inner conductor 15 and the outer conductor 18 is also kept constant to suppress an impedance variation.
Note that when the above displacement force is applied to the dielectric 19, the back surface of each recess 27 also abuts on each projecting piece 54, thereby fulfilling a function of hindering a movement of the dielectric 19 with respect to the first outer conductor 11. Of course, since the front part 58 is thin and a projecting amount of each projecting piece 54 is small, the function of restricting a displacement of the dielectric 19 by the abutment of the back surface of each recess 27 on each projecting piece 54 only assists a displacement restricting function by the stopper portion 34.
The terminal module 20 completed in the above way is inserted into the housing 10 and retained in the housing 10 by the locking projection 43 being locked by the locking lance 44 (see
As described above, according to this embodiment, when the second outer conductor 12 is crimped to the first outer conductor 11, the stopper portion 34 abuts on the outer conductor 18, whereby the dielectric 19 can be stopped to move forward along the inner surface (wall surface) of the outer conductor body portion 47. Thus, a displacement of the dielectric 19 with respect to the first outer conductor 11, consequently the outer conductor 18, can be prevented.
Further, since the stopper portion 34 is provided on the supporting member 13 and the supporting member 13 includes the locking portions 32 for positioning the respective inner conductors 15, relative positions of the respective inner conductors 15 and the outer conductor 18 are also determined and an impedance can be accurately adjusted.
Furthermore, since the stopper portion 34 is shaped to project into the space in the outer conductor 18, the space in the outer conductor 18 can be filled by a projecting region of the stopper portion 34. In other words, an air layer constituting the space in the outer conductor 18 is replaced by a resin layer constituting the stopper portion 34 in the projecting region of the stopper portion 34 in the outer conductor 18. Thus, the stopper portion 34 can exhibit a function of adjusting an impedance.
Furthermore, since the rear part 59 including the stopper receiving portion 53, out of the outer conductor body portion 47, is thicker than the front part 58, a concern for deformation due to interference with the stopper portion 34 can be reduced. On the other hand, since each resilient portion 55 is provided in the front part 58 thinner than the rear part 59, each resilient portion 55 can be smoothly deflected and deformed.
[Other Embodiments]
The embodiment disclosed this time should be considered illustrative in all aspects, rather than restrictive.
Although the outer conductor body portion has a rectangular tube shape in the above embodiment, the outer conductor may have a hollow cylindrical shape as another embodiment.
Although the outer conductor is composed of two members including the first outer conductor and the second outer conductor in the above embodiment, the outer conductor may be composed of an inseparable single component as another embodiment.
Although the dielectric is composed of the supporting member and the cover member in the above embodiment, the dielectric may be composed of an inseparable single component as another embodiment.
Although the stopper portion is configured to abut on the rear end of the outer conductor body portion in the above embodiment, the stopper portion may be configured to abut on a step part or the like provided at an intermediate position in the front-rear direction of the outer conductor as another embodiment.
Although the stopper portion is configured to restrict a forward movement of the dielectric with respect to the outer conductor in the above embodiment, the stopper portion may be configured to restrict a rearward or lateral movement of the dielectric with respect to the outer conductor as another embodiment.
Although the pair of inner conductors are provided in the above embodiment, the number of the inner conductors is not limited and may be one, three or more as another embodiment.
10 . . . housing
11 . . . first outer conductor
12 . . . second outer conductor
13 . . . supporting member
14 . . . cover member
15 . . . inner conductor
16 . . . clip
17 . . . sleeve
18 . . . outer conductor
19 . . . dielectric
20 . . . terminal module
21 . . . supporting body portion
22 . . . front wall portion
23 . . . side wall portion
24 . . . cut portion
25 . . . lock projection
26 . . . insertion hole
27 . . . recess
28 . . . partition wall
29 . . . opening
31 . . . terminal accommodating portion
32 . . . locking portion
33 . . . lock receiving portion
34 . . . stopper portion
35 . . . slope
36 . . . cover body portion
37 . . . lock piece
38 . . . lock hole
39 . . . pressing portion
41 . . . covering portion
42 . . . crimping portion
43 . . . locking projection
44 . . . locking lance
45 . . . holding piece
46 . . . crimping piece
47 . . . outer conductor body portion
48 . . . lower plate portion
49 . . . projecting portion
51 . . . upper plate portion
52 . . . side plate portion
53 . . . stopper receiving portion
54 . . . projecting piece
55 . . . resilient portion
56 . . . slit
57 . . . step
58 . . . front part
59 . . . rear part
90 . . . shielded cable
91 . . . internal conductor
93 . . . coated wire
94 . . . shield layer
95 . . . sheath
96 . . . folded portion
A . . . deformed part
Number | Date | Country | Kind |
---|---|---|---|
2020-004085 | Jan 2020 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2020/048633 | 12/25/2020 | WO |