This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2021-171072 filed on Oct. 19, 2021, the contents of which are incorporated herein by reference.
The present disclosure relates to a connector with a fuse built in a housing, and a mounting structure of the connector and a mating part.
In related art, a mounting structure for mounting a connector with a built-in fuse to a mating part (for example, various electrical components such as an inverter) is proposed (see JP2016-018692A and JP2015-079723A, for example).
When the connector with a built-in fuse is energized, a temperature of a conductive path (particularly, a fused portion of the fuse) in the connector increases due to Joule heat generated by the energization. However, in the connector described above in the related art, since the fuse is accommodated inside the housing, it is generally difficult to dissipate heat from the fuse. Therefore, there is concern that heat generated by the fuse may have a thermal effect on the housing and built-in components around the fuse.
The present disclosure provides a connector with a built-in fuse that is excellent in dissipating heat generated by the fuse when energized, and a mounting structure of the connector and a mating part.
According to an illustrative aspect of the present disclosure, a connector includes: a terminal fitting; an electric wire connected to the terminal fitting; a housing that includes a fitting portion having a shape protruding in a fitting direction with a mating part and accommodating the terminal fitting, an outer wall portion defining an internal space in which the electric wire is routed, and a hollow convex portion formed by a part of the outer wall portion protruding outward to have a convex shape in the fitting direction; and a fuse that includes a fused portion accommodated in a hollow portion of the convex portion and is connected to the electric wire.
According to another illustrative aspect of the present disclosure, a mounting structure includes: the connector according to the above-mentioned aspect; and the mating part to which the connector is mounted. The mating part includes a fitted portion into which the fitting portion of the connector is fitted, and a concave portion recessed in a direction away from the connector such that the convex portion of the connector is fitted into the concave portion. The connector is mounted to the mating part in a state where the fitting portion is fitted with the fitted portion and the convex portion is fitted in the concave portion.
The present disclosure is briefly described above. Details of the present disclosure will be further clarified by reading through a mode for carrying out the present disclosure described below (hereinafter, referred to as “embodiment”) with reference to the accompanying drawings.
Hereinafter, a connector 1 according to an embodiment of the present disclosure will be described with reference to the drawings. The connector 1 shown in
Hereinafter, for convenience of explanation, a “front-rear direction”, an “up-down direction” and a “left-right direction” are defined as shown in
The connector 1 includes the housing 10. The housing 10 is a resin molded product, and as shown in
As shown in
As shown in
As shown in
As shown in
As shown in
The pair of extension plates 22 of the fuse 20 are connected to a pair of stud bolts 4 integrated with the body portion 11 of the housing 10 by insert molding, respectively. The pair of stud bolts 4 extends downward within the internal space 11a so as to be spaced apart in the left-right direction, from a position between the fitting portion 12 and the convex portion 13 in the front-rear direction on the upper wall 14 of the body portion 11.
A pair of terminal insertion holes (not shown) are formed at a position corresponding to the fitting portion 12 on the upper wall 14 of the body portion 11 of the housing 10 so as to be spaced apart in the left-right direction and communicate the internal space 11a and an interior of the fitting portion 12 in the up-down direction. A pair of terminals 6 (see
As shown in
The other end portions of the pair of electric wires 2 extending from the housing 10 are inserted through the pair of electric wire insertion holes 15, respectively, and the other end portions of the pair of electric wires 2 are routed in the internal space 11a. Furthermore, an electric wire 3 is routed inside the internal space 11a. Terminals (so-called LA terminals) 5 are connected to the other end portion of the wire 2 inserted through the electric wire insertion hole 15 on the left side and one end of the wire 3, respectively. The terminals 6 having a rectangular flat plate-like shape are connected to the other end portion of the wire 2 inserted through the electric wire insertion hole 15 on the right side and the other end of the wire 3, respectively.
The pair of terminals 5 are connected to the pair of stud bolts 4, respectively, and are tightened together with the pair of extension plates 22 of the fuse 20 using a pair of nuts 7 (see
As shown in
Next, details of the fitting portion 12 of the housing 10, and details of the packing 30, the front holder 40, and the inner housing 50 attached to the fitting portion 12 from above will be described in order with reference to
First, the fitting portion 12 will be described. An annular groove portion 17 that is open upward and recessed downward is formed around a base portion of the substantially cylindrical fitting portion 12 that protrudes from the upper wall 14 of the body portion 11 of the housing 10 (see
As shown in
Next, the packing 30 will be described. The packing 30 is a rubber seal member having a substantially cylindrical shape. The packing 30 functions to seal a gap between an outer periphery of the fitting portion 12 and an inner periphery of the fitted portion 91 of the mating part 90 to be fitted with the fitting portion 12.
The packing 30 includes a cylindrical body portion 31 formed with annular lip portions on the inner periphery and outer periphery sides, a cylindrical upper edge portion 32 extending upward from the body portion 31, and a cylindrical lower edge portion 33 extending downward from the body portion 31. The packing 30 is externally inserted into the fitting portion 12 from above and thus attached to fitting portion 12 so that the lower edge portion 33 is accommodated in the annular groove portion 17 and closely adheres to the outer periphery (a cylindrical lower region) of the fitting portion 12.
Next, the front holder 40 will be described. The front holder 40 is a resin molded product, and is disposed adjacent to the packing 30 to prevent the packing 30 from coming off (upwardly) from the fitting portion 12. As shown in
The front holder 40 is inserted from above into the fitting portion 12 to which the packing 30 is attached, and is attached to the outer periphery of the fitting portion 12 so that a lower edge portion thereof covers an outer periphery of the upper edge portion 32 of the packing 30 (see
Next, the inner housing 50 will be described. The inner housing 50 is a resin molded product, and has a function of defining an opening into which a mating connector (not shown) of the mating part 90 is inserted, a function of holding the terminals 6, a function of aligning the terminals 6 with mating terminals (not shown) provided on the mating part (not shown) (so-called alignment function), and the like. As shown in
A pair of locking projections 52 are formed on a pair of side surfaces of the inner housing 50 facing each other in the front-rear direction, respectively, as shown in
In this way, the pair of terminals 6 are inserted into the pair of terminal insertion holes (not shown) of the housing 10 from below while the inner housing 50 is located inside the cylinder of the fitting portion 12. By engaging a pair of locking pieces (not shown) provided on the inner housing 50 with a pair of locking holes (not shown) provided on the pair of terminals 6, the pair of terminals 6 are fixed to the housing 10 with the upper end portions thereof exposed inside the fitting portion 12.
Next, details of the cover 60, the packing 70, and a pressing plate 80, which are attached to the body portion 11 of the housing 10 from below, will be described in order.
First, the cover 60 will be described. The cover 60 functions to close the opening 10b (see
Next, the packing 70 will be described. The packing 70 is a seal member made of rubber, and functions to seal a gap between an outer peripheral surface of the cover 60 and an inner wall surface of the opening 10b of the body portion 11 of the housing 10. The packing 70 has a substantially rectangular annular shape corresponding to the outer shape of the cover 60.
The packing 70 is attached to the cover 60 so as to be in close contact with the outer peripheral surface of the cover 60. The cover 60 attached with the packing 70 is attached to the opening 10b of the body portion 11 of the housing 10. When the cover 60 is attached to the opening 10b, the packing 70 is positioned between the outer peripheral surface of the cover 60 and the inner wall surface of the opening 10b to seal the gap therebetween. The cover 60 is held by the housing 10 by engaging the locking frame portions 63 of the cover 60 with the locking projections 16 of the housing 10 (see
Next, the pressing plate 80 will be described. The pressing plate 80 has a function of preventing the cover 60 attached with the packing 70 from coming off (that is, coming off downward) from the housing 10 and a function of fixing the connector 1 to the mating part. The pressing plate 80 is formed by subjecting a single metal plate to predetermined press process, bending process, and the like.
The pressing plate 80 has a flat plate-like shape capable of covering an entire circumference of an outer peripheral edge of the cover 60 attached to the housing 10. The pressing plate 80 is provided with flange portions 81 at a plurality of locations (two locations in this example) that extend so as to protrude from the housing 10 when the pressing plate 80 is attached to the housing 10 (also see
The pressing plate 80 is attached to the housing 10 from below so as to cover the cover 60 from below, so that the pressing plate 80 is fixed to the housing 10 by being fastened together with the cover 60 by screwing a screw (not shown) into a corresponding female screw portion 10a (see
As described above, mounting of the connector 1 is completed, and the connector 1 shown in
As shown in
Next, the connector 1 is fastened and fixed to the housing of the mating part 90 using bolts (not shown) inserted through bolt insertion holes 82 of the flange portions 81 of the pressing plate 80. The mating connector of the mating part 90 is inserted into the fitting portion 12 of the connector 1 fixed to the mating part 90. As a result, mating terminals (female terminals) accommodated in the mating connector are electrically connected to the pair of terminals 6 located within the fitting portion 12.
In this way, when the connector 1 with the built-in fuse 20 is energized under a state in which the connector 1 is mounted to the mating part 90, a temperature of a conductive path (particularly, the body portion 21 with the fused portion of the fuse 20 built therein) in the connector 1 increases due to Joule heat generated by the energization. Here, since the body portion 21 of the fuse 20 is accommodated inside the housing 10, there is concern that heat generated by the fuse 20 may have a thermal effect on the housing 10 and built-in components around the fuse 20.
In this regard, as shown in
As described above, according to the connector 1 according to the present embodiment, the body portion 21 that incorporates the fused portion of the fuse 20 that is built in the connector 1 is accommodated in the hollow portion 13a of the hollow convex portion 13, which is formed by the part of the body portion 11 of the housing 10 protruding outward. Specifically, a part of the upper wall 14 (outer wall portion) of the body portion 11 of the housing 10 is curved so as to protrude upward, thereby defining the hollow portion 13a of the convex portion 13. Similar to the fitting portion 12 of the housing 10, the convex portion 13 of the housing 10 protrudes in the fitting direction with the mating part 90. Due to such disposition and shape of the convex portion 13, when the connector 1 is mounted to the mating part 90, the convex portion 13 accommodating the body portion 21 of the fuse 20 is disposed near the mating part 90. With this disposition, the heat generated by the body portion 21 of the fuse 20 is dissipated from the convex portion 13 of the housing 10 to the surroundings, and is absorbed by the mating part 90. Therefore, the heat generated by the fuse 20 can be dissipated more efficiently than in a case where there is no mating part 90 in the vicinity of the convex portion 13. Therefore, the connector 1 according to the present embodiment is excellent in a heat dissipation property of the heat generated by the fuse 20 when energized (that is, when the connector 1 is mounted to the mating part 90).
Furthermore, the pair of electric wire insertion holes 15 (see
Furthermore, according to the mounting structure of the connector 1 and the mating part 90 according to the present embodiment, the body portion 21 of the fuse 20 that is built in the connector 1 is accommodated in the hollow portion 13a of the hollow convex portion 13, which is formed by the part of the body portion 11 of the housing 10 protruding outward. Similar to the fitting portion 12 of the housing 10, the convex portion 13 of the housing 10 protrudes in the fitting direction with the mating part 90. Furthermore, the mating part 90 includes the fitted portion 91 into which the fitting portion 12 of the connector 1 is fitted, and the concave portion 92 recessed to be fitted with the convex portion 13 of the connector 1. When the connector 1 is mounted to the mating part 90, the convex portion 13 accommodating the body portion 21 of the fuse 20 is fitted to the concave portion 92 of the mating part 90. With such fitting of the convex portion 13 and the concave portion 92, the heat generated by the body portion 21 of the fuse 20 is dissipated from the convex portion 13 of the housing 10 to the surroundings, and is absorbed by the concave portion 92 of the mating part 90. Therefore, the heat generated by the fuse 20 can be efficiently dissipated through the convex portion 13 toward the concave portion 92. Therefore, the mounting structure according to the present embodiment is excellent in the heat dissipation property of the heat generated by the fuse 20 when the connector 1 is energized (that is, when the connector 1 is mounted to the mating part 90).
The present disclosure is not limited to the above embodiment, and various modifications can be adopted within the scope of the present disclosure. For example, the present disclosure is not limited to the above-described embodiment, and may be appropriately modified, improved or the like. In addition, materials, shapes, dimensions, numbers, arrangement positions, and the like of each constituent element in the embodiments described above are optional and not limited as long as the object of the present disclosure can be achieved.
In the above embodiment, the pair of electric wire insertion holes 15 (see
Furthermore, in the above embodiment, an outer surface of the convex portion 13 of the housing 10 has a curved shape. However, the outer surface of the convex portion 13 may be provided with one or a plurality of protrusions or ribs (so-called heat dissipation fins) protruding outward. These protrusions or ribs enable more efficient heat dissipation through the convex portion 13.
Here, features of the embodiment of the connector 1 and the mounting structure of the connector 1 and the mating part 90 according to the present disclosure described above will be briefly summarized and listed in the following first to fourth aspects.
According to a first illustrative aspect of the present disclosure, a connector (1) includes: a terminal fitting (6); an electric wire (2, 3) connected to the terminal fitting (6); a housing (10) that includes a fitting portion (12) having a shape protruding in a fitting direction with a mating part (90) and accommodating the terminal fitting (6), an outer wall portion (11) defining an internal space (11a) in which the electric wire (2, 3) is routed, and a hollow convex portion (13) formed by a part of the outer wall portion (11) protruding outward to have a convex shape in the fitting direction; and a fuse (20) that includes a fused portion (21) accommodated in a hollow portion (13a) of the convex portion (13) and is connected to the electric wire (2, 3).
According to the connector having the configuration in the above first aspect, the fused portion of the fuse built in the connector is accommodated in the hollow portion of the hollow convex portion, which is formed by the part of the outer wall portion of the housing protruding outward. Similar to the fitting portion of the housing, the convex portion of the housing protrudes in the fitting direction with the mating part. Due to such disposition and shape of the convex portion, when the connector is mounted to the mating part, the convex portion accommodating the fused portion of the fuse is disposed near the mating part. With this disposition, the heat generated by the fused portion of the fuse is dissipated from the convex portion of the housing to the surroundings, and is absorbed by the mating part. Therefore, the 5 heat generated by the fuse can be dissipated more efficiently than in a case where there is no mating part in the vicinity of the convex portion. Therefore, the connector having this configuration is excellent in a heat dissipation property of the heat generated by the fuse when energized (that is, when the connector is mounted to the mating part).
According to a second illustrative aspect of the present disclosure, the housing (10) includes an insertion portion (15) through which the electric wire (2) is inserted inside and outside the housing (10), at a position where the fitting portion (12) is sandwiched between the convex portion (13) and the insertion portion (15).
According to the connector having the configuration in the above second aspect, the insertion portion through which the electric wire is inserted inside and outside the housing is disposed so that the fitting portion is sandwiched between the insertion portion and the convex portion. As a result, a shape of the electric wire in the connector can be simplified, and the workability of the work of attaching the terminals and the fuse to the housing can be improved.
According to a third illustrative aspect of the present disclosure, the hollow portion (13a) of the convex portion (13) is defined by the part of the outer wall portion (11) curving to protrude outward.
According to the connector in the above third aspect, it is possible to easily provide the hollow portion accommodating the fused portion of the fuse in the convex portion of the housing.
According to a fourth illustrative aspect of the present disclosure, a mounting structure includes: the connector (1) according to any one of first to third aspects; and the mating part (90) to which the connector (1) is mounted. The mating part (90) includes a fitted portion (91) into which the fitting portion (12) of the connector (1) is fitted, and a concave portion (92) recessed in a direction away from the connector (1) such that the convex portion (13) of the connector (1) is fitted into the concave portion (92). The connector (1) is mounted to the mating part (90) in a state where the fitting portion (12) is fitted with the fitted portion (91) and the convex portion (13) is fitted in the concave portion (92).
According to the mounting structure having the configuration in the above fourth aspect, the fused portion of the fuse built in the connector is accommodated in the hollow portion of the hollow convex portion, which is formed by the part of the outer wall portion of the housing protruding outward. Similar to the fitting portion of the housing, the convex portion of the housing protrudes in the fitting direction with the mating part. Furthermore, the mating part includes the fitted portion into which the fitting portion of the connector is fitted, and the concave portion recessed to be fitted with the convex portion of the connector. When the connector is mounted to the mating part, the convex portion accommodating the fused portion of the fuse is fitted to the concave portion of the mating part. With such fitting of the convex portion and the concave portion, the heat generated by the fused portion of the fuse is dissipated from the convex portion of the housing to the surroundings, and is absorbed by the concave portion of the mating part. Therefore, the heat generated by the fuse can be efficiently dissipated through the convex portion toward the concave portion. Therefore, the mounting structure having this configuration is excellent in the heat dissipation property of the heat generated by the fuse when the connector is energized (that is, when the connector is mounted to the mating part).
According to the connector and the mounting structure of the connector and the mating part of the present disclosure, the fused portion of the fuse built in the connector is accommodated in the hollow portion of the hollow convex portion, which is formed by the part of the outer wall portion of the housing protruding outward. Similar to the fitting portion of the housing, the convex portion of the housing protrudes in the fitting direction with the mating part. Due to such disposition and shape of the convex portion, when the connector is mounted to the mating part, the convex portion accommodating the fused portion of the fuse is disposed near the mating part (particularly, the concave portion of the mating part). With this disposition, the heat generated by the fused portion of the fuse is dissipated to outside from the convex portion of the housing, and the heat dissipated to the outside is efficiently absorbed by the mating part. Therefore, the heat generated by the fused portion of the fuse can be dissipated more efficiently than in a case where there is no mating part in the vicinity of the convex portion. Therefore, the connector having this configuration and the mounting structure of the connector and the mating part are excellent in a heat dissipation property of the heat generated by the fuse when energized (that is, when the connector is mounted to the mating part).
Number | Date | Country | Kind |
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2021-171072 | Oct 2021 | JP | national |
Number | Name | Date | Kind |
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20070139842 | De' Longhi | Jun 2007 | A1 |
20080268671 | Harris | Oct 2008 | A1 |
20090066470 | Miyamoto | Mar 2009 | A1 |
20140305693 | Greenberg | Oct 2014 | A1 |
20160233625 | Kato et al. | Aug 2016 | A1 |
20230268685 | Yamada | Aug 2023 | A1 |
Number | Date | Country |
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2015-79723 | Apr 2015 | JP |
2016-18692 | Feb 2016 | JP |
Number | Date | Country | |
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20230120275 A1 | Apr 2023 | US |