This specification relates to a connector.
Japanese Unexamined Patent Publication No. 2010-225488 discloses a connector that includes a first terminal to be connected to a mating terminal in a mating connector, a second terminal to be connected to a device, and a coupling portion coupling these two terminals. The coupling portion is constituted by a braided wire. The braided wire is a flexible tubular or sheet-like member formed by braiding metal strands. According to this configuration, a displacement of each member due to thermal expansion caused by heat generation associated with a thermal environment or energization can be absorbed by the braided wire.
In the connector configured as described above, the braided wire may resonate if vibration is applied from outside. If the braided wire resonates, the terminal in the connector and the mating terminal may slide against each other to cause troubles such as the wear of the terminals.
A connector disclosed by this specification includes a connector housing that is connectable to a mating connector. A first conductive member and a second conductive member are accommodated inside the connector housing and are made of a conductive material. A braided wire is formed by braiding a plurality of strands and connects the first conductive member and the second conductive member. The strands of the braided wire include conductor strands made of a conductive material and high attenuation strands made of a high damping material. The high damping material may be a rubber, a resin or a high damping metal. The high damping metal may be a damping alloy or a steel material. According to this configuration, an amplification ratio when the braided wire resonates can be reduced as compared to the case where a conventional braided wire is used, and troubles caused by the resonance of the braided wire can be reduced.
In the above configuration, the connector may be connected to a device installed in a vehicle. The connector may be connected to a device susceptible to vibration.
According to the connector disclosed by this specification, troubles caused by the resonance of the braided wire can be reduced.
An embodiment is described with reference to
The connector 1 includes a connector housing 50 made of synthetic resin, two inner conductive members 10, two terminal-equipped wires 40 and a terminal holding member 80 to be assembled with the connector housing 50. A first shield shell S1 and a second shield shell S2 are mounted to cover the connector housing 50.
As shown in
The female terminal 11 is to be connected to a mating terminal (not shown) arranged inside the case 91 and includes, as shown in
The L-shaped terminal 21 is a metal plate member bent into an L shape. As shown in
As shown in
The conductor strands 32 are made of a conductive material, and the high attenuation strands 33 are made of a high damping material having a high vibration damping capacity. Examples of the high damping material include rubbers, resins and high damping metals.
The “vibration damping capacity” is an ability to absorb vibration by converting vibrational energy into thermal energy. The vibration damping capacity decreases in the order of “rubber materials>resin materials>metal materials”. The vibration damping capacity of the metal material decreases in the order of “damping alloys>steel materials not classified as damping metals>non-ferrous metals not classified as damping alloys”, and damping alloys and steel materials are classified as high damping metals. The damping alloys are classified into four types, i.e. twin crystal type, dislocation type, ferromagnetic type and composite type. Examples of the composite type damping alloy include flake graphite cast iron (Fe—C—Si based) and Cosmal-Z (Al—Zn based). Examples of the ferromagnetic type damping alloy include TD nickel (Ni based), 13% chromium copper (Fe—Cr based), silentalloy (Fe—Cr—Al based), trunkalloy (Fe—Cr—Al—Mn based), gentalloy (Fe—Cr—Mo based) and NIVC10 (Co—Ni based). Examples of the dislocation type damping alloy include KIXI alloy (Mn—Zr based). Examples of the twin crystal type damping alloy include sonostone (Mn—Cu based), incramute (Cu—Mn—Al based) and Nitinol (Ni—Ti based).
The conductor strands 32 are made of a conductive material, such as a metal. In consideration of conductivity, the conductor strands 32 desirably are made of a metal having a high conductivity, such as copper, copper alloy, aluminum or aluminum alloy and generally are used in wires or other conductive members.
As shown in
The connector housing 50 includes a housing body 51, a fitting 61 continuous from the housing body 51 and a wire holding portion 71 continuous from the housing body 51.
The housing body 51 is a block-like part and, as shown in
As shown in
The wire holding portion 71 is an elliptical tubular part extending from the housing body 51 in a direction perpendicular to the fitting 61 and includes, as shown in
The terminal holding member 80 is to be mounted into the fitting portion 61 and, as shown in
The first shield shell S1 is made of metal and, as shown in
As shown in
Each inner conductive member 10 is accommodated as follows. As shown in FIG. 3, the female terminal 11 and a part of the braided wire 31 fixed to this female terminal 11 are accommodated in the second cavity 82, and the remaining part of the braided wire 31 and the L-shaped terminal 21 are accommodated inside the mounting chamber 62 and the accommodation space 52.
As shown in
As shown in
As described above, in the connector 1 using the flexible braided wires 31 in the inner conductive members 10, a displacement of each member due to thermal expansion caused by heat generation associated with a thermal environment or energization can be absorbed by the braided wires 31.
On the other hand, a braided wire generally has a natural frequency near 250 Hz and may resonate due to vibration during the travel of an automotive vehicle. If the braided wire resonates, a terminal provided in a connector and a mating terminal may slide against each other to cause troubles, such as the wear of the terminals.
Accordingly, in this embodiment, the braided wire 31 is formed by braiding the conductor strands 32 and the high attenuation strands 33. A resin material has a greater function of damping vibrational energy than a metal material. By braiding the high attenuation strands 33 together with the conductor strands 32 into the braided wire 31, an amplification ratio when the braided wire 31 resonates can be reduced.
As described above, according to this embodiment, the connector 1 includes the connector housing 50 connectable to the mating connector, the female terminal 11 and the L-shaped terminals 21 made of the conductive material and accommodated inside the connector housing 50, and the braided wires 31 connecting the female terminals 11 and the L-shaped terminals 21. The braided wire 31 is formed by braiding the conductor strands 32 made of the conductive material and the high attenuation strands 33 made of the high damping material. The high damping material is a rubber, a resin or a high damping metal, and the high damping metal is damping alloy or a steel material.
According to this configuration, the amplification ratio when the braided wire 31 resonates can be reduced as compared to the case where a conventional braided wire is used, and troubles caused by the resonance of the braided wire 31 can be reduced.
Further, the connector 1 is connected to the device 90 installed in the vehicle. The above-described connector 1 is suitable as a connector to be connected to the device 90 susceptible to vibration.
The invention is not limited to the above described and illustrated embodiment. For example, the following various modes are also included.
Although the connector 1 includes two inner conductive members 10 in the above embodiment, the numbers of the first conductive members, the second conductive members and the braided wires are not limited to those of the above embodiment and can be freely set according to the use and the like of the connector.
Although the first conductive member is the female terminal 11 to be connected to the mating terminal and the second conductive member is the L-shaped terminal 21 in the above embodiment, the configurations of the first conductive member and the second conductive member are not limited to those of the above embodiment. For example, the first conductive member may be a male terminal to be connected to a mating terminal. Alternatively, the second conductive member may be directly connected to the core of the wire without via the relay terminal.
Since the high damping metal is conductive, it can be also used as a material of the conductor strands. Specifically, both the conductor strands and the high attenuation strands may be made of high damping metals. In this case, the conductor strands and the high attenuation strands may be made of the same type of high damping metals or may be made of different types of high damping metals. Further, the high attenuation strands may be made of rubber or resin, and the conductor strands may be made of high damping metal.
Number | Date | Country | Kind |
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2017-060639 | Mar 2017 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2018/009866 | 3/14/2018 | WO | 00 |