The present disclosure relates to an electrical connector.
There have been shield cables in which the outer circumferential surface of an inner conductor, which transmits signals, is surrounded by an outer conductor in order to reduce electromagnetic noise emitted from the cables. In order for such a shield cable to exhibit the shield performance to interrupt electromagnetic noise, the outer conductor of the shield cable needs to be grounded to a metal housing storing electronic equipment or the like. In view of this, there has been a method in which, when the shield cable is connected to a circuit board stored in the metal housing, the outer conductor of the shield cable is grounded by causing the outer circumference of a connector conductively connected with the outer conductor of the shield cable to directly contact the metal housing.
In addition, in a case where the outer circumferential surface of a connector is covered with resin as in Patent Literature 1, an outer conductor of a shield cable is grounded by being formed in such a manner that the outer conductor of the shield cable is conductively connected to a ground wire of a connection-destination circuit board via a connector.
Patent Literature 1: JP 2002-216910 A
By covering, with the resin, the outer circumferential surface of the shield cable as in the connector disclosed in Patent Literature 1, the outer circumferential surface of the connector can be given an insulation property, and also by changing the color of the resin, it is possible to make it easier to distinguish the connection destination. However, in a case where the outer conductor of the shield cable is grounded via the ground wire of the circuit board by using such a connector, a long path length to a point at which the outer conductor is conductively connected to the metal housing, which is the point of a reference potential, is required. Accordingly, as compared with a case where the outer circumference of a connector conductively connected with an outer conductor of a shield cable is directly connected to a metal housing, the impedance has been high, causing deterioration of the shield performance.
An electrical connector according to the present disclosure has been made to solve the problem described above, and an object of the present disclosure is to provide a connector, whose outer circumferential surface is covered with resin, which minimizes the likelihood of a long path length up to a point at which an outer conductor of a shield cable is conductively connected to a metal housing.
An electrical connector according to the present disclosure includes: an inner conductor to transmit a signal; an insulator that covers an outer circumferential surface of the inner conductor; an outer conductor that covers an outer circumferential surface of the insulator and is insulated from the inner conductor by the insulator; an insulating mold that covers an outer circumferential surface of the outer conductor; and a conductor that is conductively connected with the outer conductor and penetrates the insulating mold, the conductor having a surface that is positioned outside the insulating mold and inclined toward a connection destination, wherein the outer conductor and the conductor are integrally formed.
Since a connector according to the present disclosure whose outer circumferential surface is covered with resin has a conductive portion that penetrates a molded portion and is conductively connected with an outer conductor, it is possible to minimize the likelihood of a long path length up to a point at which the outer conductor of a shield cable is conductively connected to a metal housing.
Hereinbelow, an electrical connector according to a first embodiment is explained. In the first embodiment, a case where the electrical connector is used as an intermediary connector 100 to intermediate connection between a connector and a connector is explained.
The intermediary connector 100 includes: an inner conductor 110 to transmit signals; an insulating portion 120 that covers the outer circumferential surface of the inner conductor 110; an outer conductor 130 that covers the outer circumferential surface of the insulating portion 120 and is insulated from the inner conductor 110 by the insulating portion 120; the insulating molded portion 140 that covers the outer circumferential surface of the outer conductor 130; and the conductive portion 150 that is conductively connected with the outer conductor and penetrates the molded portion.
The inner conductor 110 is a conductor to transmit signals. The inner conductor 110 includes: a first inner conductor 111 on a side to be connected to the shield cable connector 200; a second inner conductor 112 on a side to be connected with the circuit board connector 300; and a connecting member 113 between the first inner conductor 111 and the second inner conductor 112.
The connecting member 113 includes a conductive member, and is for positioning or fixation at a time when the insulating portion 120 described later is engaged. Whereas the connecting member 113 has a structure with a large diameter in the present embodiment, it may have any shape such as a protrusion or a claw as long as the insulating portion can be positioned or fixed.
The insulating portion 120 includes an insulating member that covers the outer circumferential surface of the inner conductor 110. The insulating portion 120 may be any member as long as it insulates the inner conductor 110 from the outer conductor 130 mentioned later, and may be a dielectric. In addition, the outer circumferential surface of the insulating portion 120 may have a structure to fix the outer conductor 130 mentioned later.
Whereas the insulating portion 120 has an integrated structure in
The outer conductor 130 covers the outer circumferential surface of the insulating portion 120, is insulated from the inner conductor 110 by the insulating portion 120 and includes a conductor. The outer conductor 130 includes a first outer conductor 131 on a side to be connected with the shield cable connector 200, and a second outer conductor 132 on a side to be connected with the circuit board connector 300. When the intermediary connector 100 and the shield cable connector 200 are connected with each other, the first outer conductor 131 is electrically connected with the outer conductor of the shield cable connector 200. When the intermediary connector 100 and the circuit board connector 300 are connected with each other, the second outer conductor 132 is electrically connected with an outer conductor of the circuit board connector 300.
The molded portion 140 is an insulating resin that covers the outer circumferential surface of the outer conductor 130.
In addition, when the two members 140a and 140b of the molded portion 140 engage with each other, concavity/convexity structures or claw structures for positioning or fixation may be provided on the engagement surfaces or front surfaces of the two members 140a and 140b.
The molded portion 140 is colored, and molded portions with the same color are used also for the connection-destination shield cable connector 200 and circuit board connector 300. Thereby, it is possible to prevent an operator from engaging a wrong pair of connectors with each other when the operator connects the respective connectors. In addition, waterproof and dustproof functions also are provided by covering the outer circumferential surface of the outer conductor 130 with the molded portion 140.
The conductive portion 150 is conductively connected with the outer conductor 130, penetrates from the inner side to the outer side of the molded portion 140 and is formed integrally with the outer conductor 130 by using a conductive member. The conductive portion 150 is provided with a plurality of slits 151 in parallel with the axis. As depicted in
Since the conductive portion 150 conductively connected with the outer conductor 130 is present on the outer circumference of the molded portion 140 in this manner, the conductive portion 150 can be caused to contact the metal housing 400 when the intermediary connector 100 is connected to the circuit board connector 300 provided in the metal housing 400, thereby achieving conduction bypassing a ground wire of the circuit board 301.
As mentioned above, since the electrical connector according to the present disclosure whose outer circumferential surface is covered with resin has the conductive portion that penetrates the molded portion and is conductively connected with the outer conductor, it is possible to minimize the likelihood of a long path length up to a point at which the outer conductor of the shield cable is conductively connected to the metal housing.
Furthermore, since the conductive portion 150 has a surface perpendicular to the axis, the conductive portion 150 can easily contact the outer side surface of the metal housing 400 when the intermediary connector 100 is connected to the circuit board connector 300. In addition, by forming the surface of the conductive portion 150 positioned outside the molded portion 140 as a surface that is inclined toward the metal housing 400 of the connection-destination circuit board connector 300 as depicted in
In addition, by inclining the surface of the conductive portion 150 positioned outside the molded portion 140 toward the metal housing 400 of the connection-destination circuit board connector 300, and furthermore bending the surface of the conductive portion 150 into a V-shape, conduction can be achieved by causing the surface of the conductive portion 150 to contact the inner side surface of the metal housing 400 when the intermediary connector 100 is connected to the circuit board connector 300. Note that also in a case where the surface of the conductive portion 150 is caused to contact the inner side of the metal housing 400, a function like a spring can also be given to the conductive portion 150 by bending the conductive portion 150 multiple times or bending the conductive portion 150 into an arc shape.
Note that whereas the conductive portion 150 is bent to stand up as depicted in
In addition, the electrical connector is not limited to the intermediary connector 100 in the first embodiment, but the electrical connector according to the present disclosure may be any electrical connector as long as its conductive portion comes into contact with and fixed to a metal housing when the electrical connector is connected to a connector fixed to the metal housing.
In addition, whereas regarding the first inner conductor 111 and the second inner conductor 112 of the inner conductor 110, the first inner conductor 111 has the female structure, and the second inner conductor 112 has the male structure in the first embodiment, the inner conductor 110 may have a structure which is reversed in terms of the female structure and the male structure or may have a structure with male structures or with female structures, as long as the structure can fit to connection-destination connectors.
In addition, regarding the outer conductor 130 and the conductive portion 150, the outer conductor 130 may include two structures 130a and 130b as depicted in
100: intermediary connector, 101: first connector, 102: second connector, 110: inner conductor, 111: first inner conductor, 112: second inner conductor, 113: connecting member, 120: insulating portion, 121: hole, 122: structure, 130: outer conductor, 131: first outer conductor, 132: second outer conductor, 140, 140a, 140b: molded portion, 141: hole, 142: penetrating portion, 150: conductive portion, 151: slit, 200: shield cable connector, 201: shield cable, 300: circuit board connector, 301: circuit board, 400: metal housing
This application is a Continuation of PCT International Application No. PCT/JP2021/017989 filed on May 12, 2021, which is hereby expressly incorporated by reference into the present application.
Number | Date | Country | |
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Parent | PCT/JP2021/017989 | May 2021 | US |
Child | 18378816 | US |