A technique disclosed by this specification relates to a terminal.
Conventionally, a female terminal described in Japanese Unexamined Patent Publication No. 2015-219977 (patent literature 1 below) is known as a female terminal to be connected to a male terminal. This female terminal includes a rectangular tube portion in the form of a tube constituted by a plurality of peripheral walls and a resilient piece extending in a front-rear direction inside the rectangular tube portion. The male terminal is conductively connected to the female terminal by being sandwiched between the resilient piece and the peripheral wall facing the resilient piece. This female terminal is formed by press-working one metal plate material. A material having both a spring property required to properly ensure a contact pressure with the male terminal and conductivity required for electrical connection to the male terminal is used as the metal plate material.
Patent Literature 1: Japanese Unexamined Patent Publication No. 2015-219977
However, the metal plate material having both the spring property and conductivity tends to be expensive and a material cost reduction is difficult. Further, since rigidity increases with an increase in the plate thickness of the metal plate material as a current becomes larger, it becomes difficult to form the rectangular tube portion itself and the entire rectangular tube portion becomes quite large by the enlargement of each peripheral wall constituting the rectangular tube portion. In addition, if the rigidity of the metal plate material becomes excessively high, the spring property required for the resilient piece is lost.
A terminal according to the technique disclosed by this specification includes a conductive portion made of a metal material, in the form of a plate and provided with a contact point portion to be conductively connected to a mating terminal, and a spring portion formed to be thinner than the conductive portion and resiliently deformable and provided with a mounting portion mounted on the conductive portion and a resilient portion cantilevered from the mounting portion and relatively displaceable with respect to the conductive portion, the mating terminal being resiliently held in contact with the contact point portion by being pressed by the resilient portion.
According to this configuration, the spring portion only has to have a spring property as a required performance and needs not have conductivity. Thus, the spring portion can be made of an inexpensive metal material and material cost can be reduced. Further, even if a plate thickness of the conductive portion increases as a current becomes larger, bending and the like are not necessary in forming the conductive portion. Thus, the formation of the conductive portion does not become difficult. Furthermore, since the conductive portion is not in the form of a rectangular tube, but in the form of a plate, the conductive portion is only enlarged by an increase of the plate thickness. In addition, since the spring portion and the conductive portion are separate, even if the plate thickness of the conductive portion increases, that does not affect the spring property of the spring portion.
The terminal disclosed by this specification may be configured as follows.
The mounting portion may include a pair of sandwiching portions for sandwiching both side edge parts of the conductive portion and a coupling portion coupling the pair of sandwiching portions.
According to this configuration, the spring portion can be mounted on the conductive portion by sandwiching the both side edge parts of the conductive portion by the pair of sandwiching portions.
The resilient portion may be cantilevered forward from a front edge of the coupling portion and bent to approach the conductive portion after being separated from the conductive portion.
According to this configuration, the spring property of the resilient portion can be maintained satisfactory as compared to the case where the resilient portion is in the form of a flat plate.
A box portion may be provided which accommodates the spring portion inside.
According to this configuration, the spring portion can be protected by the box portion.
The spring portion may be integrally formed to the box portion.
According to this configuration, it is sufficient to mount the box portion on the conductive portion and it is not necessary to separately mount the spring portion on the conductive portion.
According to the terminal disclosed by this specification, it is possible to deal with a larger current without enlargement while reducing material cost.
A first embodiment is described with reference to
As shown in
The conductive portion 20 includes a terminal connecting portion 21 which is connected to the mating terminal 1, a mounted portion 22 on which the spring portion 40 and the like are mounted, and a wire connecting portion 23 to which an unillustrated wire is connected in this order from front.
A tapered guiding portion 24 is provided on the front end of the terminal connecting portion 21. Further, a plurality of contact point portions 25 are provided on the upper surface of the terminal connecting portion 21. The contact point portion 25 is an upward projecting projection having an arcuate cross-section. In this embodiment, a total of four contact point portions 25 are provided in two rows in a lateral direction and in two rows in a front-rear direction on the terminal connecting portion 21. Heights of the respective contact point portions 25 from the upper surface of the conductive portion 20 are equal.
As shown in
As shown in
As shown in
As shown in
To mount the spring portion 40 on the conductive portion 20, the pair of sandwiching portions 41A of the mounting portion 41 of the spring portion 40 are mounted between the second projecting pieces 27 and the third projecting pieces 28 of the mounted portion 22 of the conductive portion 20 as shown in
As shown in
Since the terminal connecting portion 2 of the mating terminal 1 simultaneously contacts the plurality of contact point portions 25 of the terminal 10 as shown in
Further, in a terminal in which a spring portion and a conductive portion are integrally formed, a plate thickness of the spring portion increases as that of the conductive portion increases. Thus, the rigidity of the spring portion increases to lose a spring property. In that respect, since the spring portion 40 is configured separately from the conductive portion 20 in the terminal 10 of this embodiment, the plate thickness of the spring portion 40 can be kept constant and the spring property is not lost even if the plate thickness of the conductive portion increases.
As described above, in this embodiment, the spring portion 40 only has to have a spring property as a required performance and needs not have conductivity. Thus, the spring portion 40 can be made of an inexpensive metal material and material cost can be reduced. Further, even if the plate thickness of the conductive portion 20 increases as a current becomes larger, bending and the like are not necessary in forming the conductive portion 20. Thus, the formation of the conductive portion 20 does not become difficult. Furthermore, since the conductive portion 20 is not in the form of a rectangular tube, but in the form of a plate, the conductive portion 20 is only enlarged by an increase of the plate thickness. In addition, since the spring portion 40 and the conductive portion 20 are separate, even if the plate thickness of the conductive portion 20 increases, that does not affect the spring property of the spring portion 40.
The mounting portion 41 may include the pair of sandwiching portions 41A for sandwiching both side edge parts of the conductive portion 20 and the coupling portion 41B coupling the pair of sandwiching portions 41A.
According to this configuration, the spring portion 40 can be mounted on the conductive portion 20 by sandwiching the both side edge parts of the conductive portion 20 by the pair of sandwiching portions 41A.
The resilient portion 42 may be bent to approach the conductive portion 20 after being cantilevered forward from the front edge of the coupling portion 41B and separated from the conductive portion 20.
According to this configuration, the spring property of the resilient portion 20 can be maintained satisfactory as compared to the case where the resilient portion 42 is in the form of a flat plate.
Next, a second embodiment is described with reference to
As shown in
As shown in
The side wall 32 of the box portion 30 includes a first upper pressing piece 32A disposed on a front side, a second upper pressing piece 32B disposed behind the first upper pressing piece 32A and a lower pressing piece 32C disposed behind the second upper pressing piece 32B. The first and second upper pressing pieces 32A, 32B are formed by cutting and raising parts of the side wall 32, and cut-and-raised holes are formed above the respective pressing pieces 32A, 32B. Further, the lower pressing piece 32C is formed at the same height position as the bottom wall 31, and a cutout 32D for allowing a first projecting piece 26 to escape when the box portion 30 is assembled with the conductive portion 20 is formed in front of the lower pressing piece 32C.
The cutout 32D is located below the resilient portion 42 and disposed at such a position that the resilient portion 42 is not laterally exposed. If the first projecting piece 26 is fit into the cutout 32D, the lower pressing piece 32C is mounted between the first projecting piece 26 and a second projecting piece 27. A forward movement of the lower pressing piece 32C is suppressed by a rear surface 26B of the first projecting piece 26, and a rearward movement thereof is suppressed by a front surface 27A of the second projecting piece 27.
The first and second upper pressing pieces 32A, 32B are in contact with the upper surface of a side edge of a terminal connecting portion 21 and the lower pressing piece 32C is in contact with the lower surface of the side edge of the terminal connecting portion 21. In this way, the upper surface of the bottom wall 31 of the box portion 30 is held in contact with the lower surface of the conductive portion 20 and a vertical movement of the box portion 30 with respect to the conductive portion 20 is suppressed.
If the mating terminal 1 is connected to the terminal 110 as shown in
Since the box portion 30 for accommodating the spring portion 40 inside is provided in this embodiment as described above, the spring portion 40 can be protected by the box portion 30.
Next, a third embodiment is described with reference to
A box portion 230 of this embodiment includes a bottom wall 231, a pair of left and right side walls 232 and a ceiling wall 233, but does not include a member equivalent to the opening preventing wall 34 as shown in
As shown in
The resilient portion 242 is shaped to extend forward in an arcuate manner, extend straight forward from a top part 242B to approach a terminal connecting portion 221 and folded somewhat upward at a free end part 242C after rising upward from the base end part 242A. A spring portion 240 is bent to approach a conductive portion 220 after being separated from the conductive portion 220. The resilient portion 242 is entirely resiliently deformed, whereby the free end part 242C is relatively displaceable with respect to the conductive portion 220.
As shown in
To mount the box portion 250 on the conductive portion 220, the sandwiching portions 238 of the horizontal wall 237 are mounted between second projecting pieces 272 and third projecting pieces 228 of the mounted portion 222 as shown in
If a mating terminal 1 is connected to the terminal 210 as shown in
Since the spring portion 240 is formed integrally to the box portion 250 in this embodiment as described above, it is sufficient to mount the box portion 250 on the conductive portion 220 and it is not necessary to separately mount a spring portion on a conductive portion.
The technique disclosed in this specification is not limited to the above described and illustrated embodiments. For example, the following various modes are also included.
(1) Although the mounting portion includes the pair of sandwiching portions and the coupling portion in the above embodiments, a mounting portion may be mounted on a conductive portion by welding or by bolting.
(2) Although the resilient portion extends forward from the front edge of the coupling portion in the above embodiments, a resilient portion may extend forward from the rear edge of a coupling portion.
(3) Although the box portion and the spring portion are made of the same metal material in the above embodiments, a box portion and a spring portion may be made of different metal materials.
1 . . . mating terminal
10, 110, 210 . . . terminal
20, 220 . . . conductive portion
25, 225 . . . contact point portion
30, 230 . . . box portion
40, 240 . . . spring portion
41, 241 . . . mounting portion
41A, 241A . . . sandwiching portion
41B, 241B . . . coupling portion
42, 242 . . . resilient portion
Number | Date | Country | Kind |
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2018-004683 | Jan 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2018/041353 | 11/7/2018 | WO | 00 |