The present invention relates to a shielded connector including terminals provided to ends of at least a pair of electric wires, and a housing that houses the terminals.
Conventionally, a shielded connector provided with a fuse in a housing has been proposed (see for example, Patent Literature 1). In the shielded connector described in Patent Literature 1, a fuse serving as a protection element is connected in series to an electric wire to protect a circuit.
Patent Literature 1: JP 2004-273381 A
However, the shielded connector described in Patent Literature 1 has a problem that it requires an appropriate space between the fuse and the housing in order to prevent the housing from being deteriorated due to the heat generated by the fuse, causing an increase in size of the housing, which results in increase in size of the entire shielded connector. Even if a heat dissipation member is provided to the fuse to downsize the housing, there is still a problem of an increase in the number of components.
In view of the above-mentioned problems, an object of the present invention is to provide a shielded connector which can reduce the entire size of the shielded connector while preventing an increase in the number of components.
A shielded connector of the present invention includes terminals provided to ends of at least a pair of electric wires, and a housing that houses the terminals. The shielded connector includes: a protection element housed in the housing and connected in series between the electric wires and the terminals to protect a circuit; and a shielding shell attached to an outer side of the housing so as to cover the protection element. The shielding shell includes a thermally conductive holding member which holds the protection element.
According to the present invention described above, the thermally conductive holding member is provided to the shielding shell. Thus, even when the protection element generates heat, the heat is conducted from the protection element to the holding member, and is conducted and transferred within the shielding shell having the holding member, and then the heat is dissipated to outside. Thus, the rise in temperature inside the housing can be prevented, and the space between the protection element and the housing can be reduced, thereby downsizing the housing and reducing the entire size of the shielded connector. The shielding shell and the holding member may be formed integrally, i.e., formed as one part, or may be formed as separate parts and arranged to contact each other.
The generated heat is dissipated to the outside by the shielding shell. Thus, the shielding shell functions as a magnetic shield and functions also as a heat dissipation member, thereby preventing an increase in the number of components.
Preferably, in the shielded connector of the present invention, the housing is made of an insulating resin, and the protection element is a fuse which includes a pair of terminal portions, a conductive portion connecting the pair of terminal portions to each other, and an insulating container portion housing the conductive portion, and the holding member includes a support portion which supports the container portion.
According to the configuration mentioned above, the fuse is housed in the insulating housing, and the insulating container portion is supported by the support portion, thereby insulating the fuse from the outside even if the holding member has conductivity.
Furthermore, in the shielded connector of the present invention, it is preferable that the support portion is a grip portion that is made of an elastically deformable member and that has an inner side having a shape that follows a side face of the container portion. The grip portion is elastically deformed outward by the container portion and grips the container portion by the inwardly exerted restoring force.
According to this configuration, since the grip portion grips the container portion by the restoring force, an increase in the number of components can be prevented while reliably supporting the container portion. Furthermore, the inner side of the grip portion has a shape that follows the shape of the container portion and grips the container portion by the restoring force. Thus, a contact area in which the container portion and the grip portion contact with each other can be ensured, thereby efficiently transferring the heat.
Moreover, in the shielded connector of the present invention, it is preferable that the support portion includes: a pair of clamping portions that is formed to have an inner side with a shape following a side face of the container portion and that clamps, i.e. holds in a sandwiching fashion, the container portion; and a fixing portion that fixes the pair of clamping portions so as to keep the container portion clamped by the pair of clamping portions.
According to this configuration, the container portion is clamped by the clamping portion, and the clamping portion is fixed by the fixing portion. Thus, the container portion can be supported in an even more reliable manner. Furthermore, since the inner side of the clamping portion has a shape that follows the container portion, the heat can be transferred efficiently as mentioned above.
With the shielded connector according to the present invention described above, by providing the thermally conductive holding member to the shielding shell, the entire size of the shielded connector can be reduced while preventing an increase in the number of components.
An exemplary embodiment of the present invention will be described below with reference to the drawings. As illustrated in
As also illustrated in
The housing 5 includes: a first body portion 51 having one face in the X direction into which the terminals 3 are inserted and another face which is opened; a second body portion 52 which covers the another face of the first body portion 51; and a packing 53 provided between the first body portion 51 and the second body portion 52. The first body portion 51 and the second body portion 52 are made of an insulating resin, and the packing 53 is made of an insulating elastic member such as a rubber, thereby insulating the inside of the housing 5 from the outside. In addition, the electric wires 2 are inserted into a lower portion in the Z direction of the first body portion 51.
The shielding shell 6 includes a shell body 61 which covers the housing 5 from the another side in the X direction, both sides in the Y direction, and both sides in the Z direction, and a holding member 62 provided between the second body portion 52 and the shell body 61 for supporting the fuse 4. The holding member 62 is in contact with the shell body 61 at a contact portion 621, thereby transferring the heat.
The holding member 62 has a grip portion 622 serving as a support portion, the grip portion 622 has an inner side shaped approximately into the same shape as an outer side of the container portion 42.
Next, a heat transfer mechanism for the heat generated by the fuse 4 due to overcurrent flowing through the electric wires 2, i.e., overcurrent flowing through the fuse 4, will be described with reference to
The embodiment described above has the following advantageous effects. That is, since the fuse 4 is supported by the thermally conductive holding member 62, and the holding member 62 is in contact with the shielding shell 6 at the contact portion 621, the heat generated by the fuse 4 is dissipated in a manner described above, thereby reducing the temperature rise in the housing 5. Thus, deterioration of the resinous body portions 51 and 52 due to the temperature rise can be prevented, and thus the space between the fuse 4 and the resinous body portions 51 and 52 can be reduced, thereby reducing the entire size of the shielded connector 1.
Furthermore, as mentioned above, the shell body 61 of the shielding shell 6 covers the periphery of the housing 5, and the shielding shell 6 dissipates the heat generated by the fuse 4 to the outside as described above. Thus, the shielding shell 6 functions as a magnetic shield and also functions as a heat dissipation member, thereby preventing the increase in the number of components.
Moreover, as mentioned above, the holding member 62 supports the insulating container portion 42, and the fuse 4 is housed in the insulating housing 5. Thus, the terminal portion 41 of the fuse 4 can be insulated from the outside of the housing 5.
Since the heat generated by the fuse 4 is dissipated as described above, when the overcurrent flows, the temperature rise in the conductive portion 43 is decreased, and so the fusing of the conductive portion 43 is less likely to occur. Thus, the actual breaking capacity of the fuse 4 can be increased, allowing the use of a fuse for 30 A for a connector requiring the breaking capacity of 50 A, for example. Thus, by using a fuse with a small rating capacity, the cost can be reduced, and the entire size of the connector can be further reduced.
Furthermore, since the holding member 62 is made of an elastic member and has the grip portion 622 that grips the fuse 4 by the restoring force, the fuse 4 can be reliably supported while preventing the increase in the number of the components. Furthermore, since the inner side of the grip portion 622 follows the outer side of the container portion 42, and the inner diameter of the grip portion 622 is smaller than the outer diameter of the container portion 42, the grip portion 622 and the container portion 42 can be in close contact with each other with a large area. Thus, the heat is efficiently transferred between the grip portion 622 and the container portion 42.
It should be noted that the present invention is not limited to the embodiment described above, and the present invention may include other configurations which can attain the object of the present invention. The present invention may include modifications as described below. For example, in the embodiment described above, the container portion 42 of the fuse 4 is supported by the grip portion 622 that is integrally formed with the holding member 62. However, as illustrated in
In the embodiment described above, the fuse 4 is provided as a protection element. However, the protection element may be any appropriate element which protects a circuit and is likely to generate heat. For example, the protection element may be a breaker which separates electrodes to shut off overcurrent.
In the embodiment described above, the shell body 61 covers the first body portion 51 and the second body portion 52 from the another side in the X direction, both sides in the Y direction, and both sides in the Z direction. However, the shell body may have any appropriate shape as long as it functions as a heat dissipation member and a magnetic shield and as long as the shell body is provided on at least the face on which the contact portion 621 is disposed (i.e., the another face in the X direction in the above embodiment) out of the side faces of the housing 5.
In the embodiment described above, the holding member 62 and the shell body 61 are provided in the separate parts. However, the holding member may be formed integral with, i.e. formed in one part with the shell body. Such configuration can reduce the number of components, thereby reducing the cost.
In the embodiment described above, the fuse 4 is connected in series to one of the pair of electric wires 2. However, the fuse 4 may be provided to both of the pair of electric wires 2, or provided between the terminals 3 and the electric wires 2. That is, the fuse 4 may be provided at an appropriate position for protecting a circuit with an appropriate connection method.
The preferable configurations and method for implementing the present invention have been described above; however, the present invention is not limited thereto. In other words, although a specific embodiment of the present invention is mainly illustrated and described, a variety of modifications may be made by those skilled in the art on shapes, materials, numbers, and other detailed configurations of the embodiment as described above without departing from the technical idea and object of the invention. Accordingly, the descriptions limiting shapes, materials, and the like disclosed above are only illustrative for facilitating understanding of the present invention, and do not limit the present invention. Therefore, description with names of members without all of or a portion of the limitations on shapes or materials are included in the scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
2013-122694 | Jun 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2014/065092 | 6/6/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2014/199918 | 12/18/2014 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4297668 | Place | Oct 1981 | A |
5186637 | Norden | Feb 1993 | A |
5524327 | Mickel | Jun 1996 | A |
6144283 | Matsumura | Nov 2000 | A |
6417758 | Russell | Jul 2002 | B1 |
6512443 | Matsumura | Jan 2003 | B1 |
6577495 | West | Jun 2003 | B2 |
6814486 | Sidoni | Nov 2004 | B2 |
7543983 | Wu | Jun 2009 | B2 |
7663466 | Jetton | Feb 2010 | B1 |
7920044 | Scheiber | Apr 2011 | B2 |
8026786 | Darr | Sep 2011 | B2 |
8400252 | Jung | Mar 2013 | B2 |
8400253 | Jung | Mar 2013 | B2 |
8636550 | Onoda | Jan 2014 | B2 |
8721367 | Matsumoto | May 2014 | B2 |
9484170 | Ikeda | Nov 2016 | B2 |
20020134572 | Matsumura | Sep 2002 | A1 |
20040056158 | Stuart | Mar 2004 | A1 |
20090033453 | Deno | Feb 2009 | A1 |
20100148913 | Hemmingway | Jun 2010 | A1 |
20120094537 | Aoki | Apr 2012 | A1 |
Number | Date | Country |
---|---|---|
102422493 | Apr 2012 | CN |
103022826 | Apr 2013 | CN |
2004-273381 | Sep 2004 | JP |
Entry |
---|
International Search Report mailed Jul. 8, 2014, issued for PCT/JP2014/065092. |
Office Action dated on Nov. 2, 2016 issued for corresponding Chinese Patent Application No. 2016102800977980. |
Number | Date | Country | |
---|---|---|---|
20160104974 A1 | Apr 2016 | US |