This application claims priority from Japanese Patent Application No. 2020-141460 filed with the Japan Patent Office on Aug. 25, 2020, the entire content of which is hereby incorporated by reference.
The present disclosure relates to a connector and a method for manufacturing the same, and particularly relates to a floating connector including a movable housing that can be displaced relative to a fixed housing.
In a connector for a circuit board, displacement (an error) of a circuit board or casing may occur during assembly or mounting of an electronic device. A connector that allows a counterpart connector to be connected to the connector to move relative to the connector, what is called a floating connector, is known as a connector for a circuit board that can absorb such an error. The floating connector includes a fixed housing and a movable housing. The fixed housing holds one end of a terminal of the connector, and is fixed to a circuit board by soldering the terminal to the circuit board. The movable housing is separate from the fixed housing, is movable relative to the fixed housing, and holds the other end of the terminal of the connector to come into contact with and be connected with the counterpart connector. The terminal of the connector includes an elastic portion that is not supported at all between the portions held by the fixed housing and the movable housing. The elastic portion deforms elastically; accordingly, the movable housing becomes movable relative to the fixed housing, which enables what is called floating.
Examples of the technology related to such a floating connector include a technology described in JP-A-2019-067779.
A connector according to the present embodiment is configured to include: a fixed housing; a movable housing in the fixed housing, the movable housing being configured to be displaceable relative to the fixed housing and mate with a counterpart connector; and a plurality of terminals held by the fixed housing and the movable housing, the plurality of terminals being configured to contact terminals of the counterpart connector, in which each of the plurality of terminals includes: a first fixed portion buried by integral molding in the fixed housing; a second fixed portion buried by the integral molding in the movable housing; an elastic portion between the first fixed portion and the second fixed portion, the elastic portion having elasticity that allows the movable housing to be displaced relative to the fixed housing; and a contact portion at an end of the second fixed portion, the contact portion having elasticity and being configured to contact the terminal of the counterpart connector mated with the movable housing.
In the following detailed description, for purpose of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
Generally, a floating connector is configured in such a manner that a fixed housing and a movable housing are produced separately and assembled by a method such as press fit of a terminal into the fixed housing and press fit of the movable housing into the fixed housing where the terminal of the movable housing has been press-fitted. Hence, if the direction of the press fit of the movable housing into the fixed housing is, for example, a height direction of the connector, the size of the connector in the height direction may vary depending on the press fit condition. As a result, the size of the product may vary. Hence, the product needs to be designed with a sufficient space allowance in the height direction of the connector. Accordingly, there is a problem increasing the size of the product.
Moreover, if the assembly method by press fit is employed, a connector configured by this method is configured by connecting a fixed housing and a movable housing with a terminal. At least two steps of connecting the fixed housing and the terminal and of connecting the movable housing and the terminal are required to connect the fixed housing and the movable housing with the terminal. Hence, there is a problem that the number of manufacturing man-hours for assembly is increased and the productivity of the product is reduced.
The present disclosure has been made to solve a problem such as described above, and an object thereof is to provide a connector that can promote a reduction in size and an increase in productivity, and a method for manufacturing the same.
A connector according to the present disclosure includes: a fixed housing; a movable housing in the fixed housing, the movable housing being configured to be displaceable relative to the fixed housing and mate with a counterpart connector; and a plurality of terminals held by the fixed housing and the movable housing, the plurality of terminals being configured to contact terminals of the counterpart connector, in which each of the plurality of terminals includes: a first fixed portion buried by integral molding in the fixed housing; a second fixed portion buried by the integral molding in the movable housing; an elastic portion between the first fixed portion and the second fixed portion, the elastic portion having elasticity that allows the movable housing to be displaced relative to the fixed housing; and a contact portion at an end of the second fixed portion, the contact portion having elasticity and being configured to contact the terminal of the counterpart connector mated with the movable housing.
A method for manufacturing the connector according to the present disclosure includes a molding step of molding the fixed housing and the movable housing, in which the molding step includes: bringing at least a part of the second fixed portion of the terminal of the connector inserted into a mold into contact with the mold and holding the terminal of the connector in the mold, and injecting resin into the mold.
According to the present disclosure, it is possible to obtain a connector that can promote a reduction in size and an increase in productivity, and a method for manufacturing the same.
As illustrated in
The counterpart connector 100 is a plug connector that is mounted on a circuit board 102. The counterpart connector 100 includes a housing 110, a plurality of the terminals 130, and a pair of reinforcing fittings 140 that is held by the housing 110. The connector 1 and the counterpart connector 100 mate with each other. Accordingly, the plurality of terminals 30 of the connector 1 comes into contact with the plurality of the corresponding terminals 130 of the counterpart connector 100, respectively, to be electrically connected.
In the embodiment, the connector 1 and the counterpart connector 100 are configured in such a manner as to be symmetric in both X and Y directions. The plurality of terminals 30 of the connector 1 and the plurality of the terminals 130 of the counterpart connector 100 are arranged in groups of three. It is configured in such a manner that the arranged terminals 30 face each other and the arranged terminals 130 face each other. A total of six terminals 30 and a total of six terminals 130 are provided. However, the number of the terminals 30 and 130 is not limited to six. Moreover, the fixed housing 10, the movable housing 20, and the housing 110 are formed of, for example, insulating material such as resin, plastic material, or carbon fibers. The fixed housing 10 and the movable housing 20 are integrally molded (insert molded) and formed with the plurality of terminals 30 as inserts. In other words, the fixed housing 10 and the movable housing 20 are connected by the plurality of terminals 30. The plurality of terminals 30 of the connector 1 and the plurality of the terminals 130 of the counterpart connector 100 are formed of conductive material such as metal. The reinforcing fittings 40 of the connector 1 and the reinforcing fittings 140 of the counterpart connector 100 are formed of material that can undergo bending, such as metal. However, the components of the connector 1 and the counterpart connector 100, and materials thereof are not necessarily limited to those described above. The reinforcing fittings 40 may be formed as, for example, part of the fixed housing 10.
As illustrated in
A center portion of the side wall portion 11 in the X direction is provided with a notch portion 11a and a holding portion 11b. The notch portion 11a is a space where the terminals 30 are placed. The holding portion 11b holds a part (here, a first fixed portion 32 described below) of the terminal 30.
A board connection portion 31, which is described below, of the terminal 30 and the board connection portions 41 of the reinforcing fitting 40 are exposed from the bottom portion of the fixed housing 10. The board connection portion 31 of the terminal 30 and the board connection portions 41 of the reinforcing fitting 40 are soldered to the circuit board 101. Accordingly, the fixed housing 10 is fixed to the circuit board 101.
As illustrated in
The pair of side wall portions 21a is provided, extending in the X direction. The pair of connecting wall portions 21b is provided, extending in the Y direction. The bottom portion 21c is provided, stretching in the X and Y directions on bottom portions of the side wall portions 21a and the connecting wall portions 21b. A space defined by the pair of side wall portions 21a, the pair of connecting wall portions 21b, and the bottom portion 21c is a space inside the mating recessed portion 21 into which the mating protruding portion 121 is inserted. Each of the pair of side wall portions 21a is provided with a recessed portion 211 and storage portions 212. The recessed portion 211 is provided, recessed inward, in an outer surface of the side wall portion 21a on a side facing the fixed housing 10. The storage portions 212 are provided in an inner surface of the side wall portion 21a on a side facing the other side wall portion 21a, and each store a distal end side, which is a free end, of the terminal 30. The recessed portion 211 forms a space provided to allow the terminal 30, or more specifically, an elastic portion 33 described below, to be displaced to prevent physical interference of the terminal 30 with the side wall portion 21a when the terminal 30 deforms elastically. The storage portion 212 is a portion that stores the terminal 30. The storage portion 212 is provided, recessed outward, in the inner surface of the side wall portion 21a for the corresponding terminal 30. The space inside the storage portion 212 communicates with the space inside the mating recessed portion 21. The bottom portion 21c is provided with holes 216 penetrating in the Z direction. The hole 216 is provided at a position below a curved portion 35b described below, and causes the internal space of the mating recessed portion 21 to communicate with the outside of the movable housing 20. The movable housing 20 holds parts (here, second fixed portions 34 described below) of the plurality of terminals 30. In the embodiment, the side wall portion 21a (a bottom portion of the storage portion 212) holds the second fixed portion 34 of the terminal 30.
The pair of regulation portions 21d regulates the range of movement of the movable housing 20 relative to the fixed housing 10. Specifically, as illustrated in
Moreover, as illustrated in
As illustrated in
The terminal 30 includes conductive material that can be bent, such as metal. Specifically, the terminal 30 includes the board connection portion 31, the first fixed portion 32, the elastic portion 33, the second fixed portion 34, and a contact portion 35 as illustrated in
The board connection portion 31 extends in the Y direction, and is exposed from the bottom portion of the fixed housing 10 (the holding portion 11b). The board connection portion 31 is a portion that is soldered to the circuit board 101. The first fixed portion 32 is buried by integral molding in the movable housing 20 (here, the holding portion 11b). In integral molding, the fixed housing 10 and the movable housing 20 are integrally molded, using the plurality of terminals 30 as inserts. The first fixed portion 32 is bent from the board connection portion 31 into a substantially S shape, and extends upwards (the Z1 direction).
The elastic portion 33 is provided between the first fixed portion 32 and the second fixed portion 34. The elastic portion 33 has elasticity that enables the movable housing 20 to be displaced relative to the fixed housing 10. Specifically, the elastic portion 33 includes a first straight portion 33a extending upward from the first fixed portion 32, a first folded portion 33b folded downward from the first straight portion 33a, a second straight portion 33c extending downward from the first folded portion 33b, a second folded portion 33d folded upward from the second straight portion 33c, and a third straight portion 33e that extends upward from the second folded portion 33d and is connected to the second fixed portion 34. The elastic portion 33 is configured in such a manner as to be connected from one end of the first fixed portion 32 to one end of the second fixed portion 34 in the order of the first straight portion 33a, the first folded portion 33b, the second straight portion 33c, the second folded portion 33d, and the third straight portion 33e. The second straight portion 33c is simply required to extend downward from the first folded portion 33b and be connected to the second folded portion 33d. In the embodiment, the second straight portion 33c extends downward and inward from the first folded portion 33b, and is connected to the second folded portion 33d. The elastic portion 33 is not held or supported by the fixed housing 10 and the movable housing 20, located in midair, and deforms elastically with the first fixed portion 32 and the second fixed portion 34 as fixed ends. The elastic portion 33 is formed in such a manner that a width thereof is less than the widths of the first fixed portion 32 and the second fixed portion 34. The elasticity of the elastic portion 33 can be adjusted according to the width of the elastic portion 33. The width here is the length of the terminal 30 in the X direction.
The second fixed portion 34 is buried by integral molding in the movable housing 20 (here, the side wall portion 21a). The second fixed portion 34 includes a first bent portion 34a bent inward from the third straight portion 33e, a fourth straight portion 34b extending inward from the first bent portion 34a, and a second bent portion 34c bent upward from the fourth straight portion 34b. In terms of the second fixed portion 34, at least any of a lower surface 341 of the fourth straight portion 34b or a lower surface 343 of the first bent portion 34a, and an upper surface 342 of the fourth straight portion 34b or an upper surface 344 of the second bent portion 34c is exposed from the movable housing 20 as illustrated in
The contact portion 35 has elasticity and is provided at an end of the second fixed portion 34, and is exposed from the movable housing 20, or more specifically, the storage portion 212, in the mating recessed portion 21. A part of the contact portion 35 protrudes in such a manner as to form a curve toward the center of the mating recessed portion 21, and contacts the terminal 130 of the counterpart connector 100 mated with the movable housing 20, or more specifically, the mating recessed portion 21. The contact allows the contact portion 35 to deform elastically in the Y direction. As illustrated in
[Connector Manufacturing Method]
The connector 1 of the embodiment can be produced by integral molding with a mold, using the plurality of terminals 30 as inserts. A method for manufacturing the connector 1 includes an insertion step, a molding step, and a releasing step. The insertion step includes the step of inserting the plurality of terminals 30 into the mold. The molding step includes the step of injecting resin into the mold in a state where at least parts of the second fixed portions 34 of the plurality of terminals 30 inserted in the mold are brought into contact with the mold and the plurality of terminals 30 is held in the mold and, accordingly, molding the fixed housing 10 and the movable housing 20. The releasing step includes the step of taking the connector 1 produced in the molding step out of the mold.
The insertion step includes the step of inserting the plurality of terminals 30 into the mold for molding the fixed housing 10 and the movable housing 20. The molding step of the embodiment includes the step of bringing a plurality of parts of the plurality of terminals 30 inserted in the mold into contact with the mold and, accordingly, fixing the plurality of terminals 30 in the mold. Specifically, the lower surfaces 341 and 343 and the upper surfaces 342 and 344 of the second fixed portions 34 are sandwiched between inner walls of the mold in the up-and-down direction, and the inner walls of the mold are brought into contact with the circumferences of the fifth straight portions 35a. Particularly the stepped portions 351 are sandwiched between the inner walls of the mold in the X direction. Consequently, the plurality of terminals 30 can be fixed firmly in the mold. In a state where the plurality of terminals 30 is fixed in this manner, resin is injected into the mold, and solidified. As a result, the fixed housing 10 and the movable housing 20 are molded.
The releasing step includes the step of releasing the connector 1 from the mold and taking the connector 1 out. The stepped portion 351 is sandwiched between the inner walls of the mold. As a result, a gap is provided between the inner walls of the mold and the contact portion 35. Hence, it is possible to prevent damage to the contact portion 35 caused by the mold and the contact portion 35 rubbing against each other upon releasing from the mold.
The connector 1 of the embodiment is a connector including the fixed housing 10, the movable housing 20 that is placed in the fixed housing 10, can be displaced relative to the fixed housing 10, and mates with the counterpart connector 100, and the plurality of terminals 30 that is held by the fixed housing 10 and the movable housing 20, and contacts the terminals 130 of the counterpart connector 100. The terminal 30 of the connector 1 includes the first fixed portion 32 buried by integral molding in the fixed housing 10, the second fixed portion 34 buried by integral molding in the movable housing 20, the elastic portion 33 that is provided between the first fixed portion 32 and the second fixed portion 34, and has elasticity that enables the movable housing 20 to be displaced relative to the fixed housing 10, and the contact portion 35 that has elasticity, is provided at the end of the second fixed portion 34, and contacts the terminal 130 of the counterpart connector 100 mated with the movable housing 20.
Consequently, it is possible to promote a reduction in the size of and an increase in the productivity of the product. Generally, a connector such as a floating connector is configured by producing a fixed housing and a movable housing separately and assembling them by a method such as press fit. Accordingly, if the press-fit direction is, for example, the height direction, the size in the height direction may vary depending on the press fit condition. As a result, there may be variations in product size. Hence, a design with a sufficient space allowance in the height direction is required, which results in an increase in product size. On the contrary, in the embodiment, it is configured in such a manner that the first fixed portion 32 is buried in the fixed housing 10, and the second fixed portion 34 in the movable housing 20 by integral molding. Accordingly, the positional relationships of the fixed housing 10, the terminal 30, and the movable housing 20 can be made uniform. Hence, a design where variations due to the press fit condition are considered is not required. As a result, the product can be reduced in size. Moreover, in the embodiment, it is configured in such a manner that the first fixed portion 32 is buried in the fixed housing 10, and the second fixed portion 34 in the movable housing 20 by integral molding. Hence, it is possible to reduce the number of manufacturing man-hours as compared to a connector created by producing the fixed housing 10 and the movable housing 20 separately and then assembling them by, for example, press fit, and to increase productivity.
In the embodiment, the elastic portion 33 includes the first straight portion 33a extending upward from the first fixed portion 32, the first folded portion 33b folded downward from the first straight portion 33a, the second straight portion 33c extending downward from the first folded portion 33b, the second folded portion 33d folded upward from the second straight portion 33c, and the third straight portion 33e that extends upward from the second folded portion 33d and is connected to the second fixed portion 34. The second fixed portion 34 includes the first bent portion 34a bent inward from the third straight portion 33e, the fourth straight portion 34b extending inward from the first bent portion 34a, and the second bent portion 34c bent upward from the fourth straight portion 34b. The contact portion 35 includes the fifth straight portion 35a extending upward from the second bent portion 34c, and the curved portion 35b that curves inward from the fifth straight portion 35a, and contacts the terminal 130 of the counterpart connector 100. At least any of the lower surface of the fourth straight portion 34b or the first bent portion 34a and the upper surface of the fourth straight portion 34b or the second bent portion 34c of the second fixed portion 34 is exposed from the movable housing 20.
Consequently, at least any of the lower surface of the fourth straight portion 34b or the first bent portion 34a and the upper surface of the fourth straight portion 34b or the second bent portion 34c can be brought into contact with the mold upon integral molding. Hence, the terminal can be fixed in the mold.
In the embodiment, the elastic portion 33 and the contact portion 35 are formed in such a manner that the widths thereof are less than the widths of the first fixed portion 32 and the second fixed portion 34.
Consequently, it becomes easy to deform the elastic portion 33 and the contact portion 35. Accordingly, it is possible to increase the elasticity of the elastic portion 33 and the contact portion 35. In other words, the easy deformation of the elastic portion 33 can facilitate the displacement of the movable housing 20 relative to the fixed housing 10. The easy deformation of the contact portion 35 can facilitate contact with the terminal of the counterpart connector 100.
In the embodiment, the fifth straight portion 35a includes the stepped portion 351 of which width is greater than the width of the curved portion 35b and is less than the width of the second fixed portion 34, and the stepped portion 351 is exposed from the movable housing 20.
Consequently, even if the mold comes into contact with the stepped portion 351 during integral molding, since the width of the stepped portion 351 is greater than the width of the curved portion 35b, it is possible to maintain the mold and the curved portion 35b apart and prevent contact between the mold and the curved portion 35b. Hence, it is possible to prevent the rubbing of the mold and the contact portion 35 against each other, which may be caused when the terminal is held by the mold during integral molding, or when the connector is released from the mold after integral molding. Moreover, it is possible to prevent the deformation of the contact portion 35 caused by the contact of the mold with the terminal when the mold and the terminal are set in integral molding.
Moreover, it is possible to employ a manufacturing method by insert molding where the stepped portion 351 is brought into contact with the mold to fix the terminal 30 in the mold.
In the embodiment, the movable housing 20 includes the mating recessed portion 21 that mates with the counterpart connector 100. In the mating recessed portion 21, the contact portion 35 is exposed from the movable housing 20. The curved portion 35b curves inward from the fifth straight portion 35a. The movable housing 20 includes the holes 216 that cause the inside of the mating recessed portion 21 to communicate with the outside of the movable housing 20, at the positions below the curved portions 35b in the mating recessed portion 21. Consequently, it is possible to employ a manufacturing method by insert molding where the terminals 30 are pressed from below by the mold and fixed in the mold.
In the embodiment, the inner surface 352 or the outer surface 353 of the fifth straight portion 35a is exposed from the movable housing 20. Consequently, it is possible to employ a manufacturing method by insert molding where the surface, on the side where the curved portion 35b curves, of the fifth straight portion 35a is brought into contact with the mold during integral molding to fix the terminal 30 in the mold. Moreover, if the inner surface 352 and the outer surface 353 are exposed from the movable housing 20, it is possible to employ a manufacturing method by insert molding where the mold is brought into contact with the inner surface 352 and the outer surface 353 to fix the terminal 30 in the mold.
The present disclosure is not limited to the above embodiment and also includes other embodiments illustrated below. Moreover, the present disclosure also includes a mode including all of the above embodiment and the following other embodiments and a mode of any combination of them. Furthermore, various omissions, replacements, and changes can be performed on these embodiments within the scope that does not depart from the scope of the disclosure, and the modifications are also included in the present disclosure.
In the above embodiment, it is configured in such a manner that the lower surface 341 of the fourth straight portion 34b, the lower surface 343 of the first bent portion 34a, the upper surface 342 of the fourth straight portion 34b, and the upper surface 344 of the second bent portion 34c are exposed from the movable housing 20. However, the present disclosure is not limited to this configuration. It is simply required to expose at least any one of the surfaces, the lower surface 341 of the fourth straight portion 34b, the lower surface 343 of the first bent portion 34a, the upper surface 342 of the fourth straight portion 34b, and the upper surface 344 of the second bent portion 34c, from the movable housing 20. For example, the lower surface 341 of the fourth straight portion 34b or the lower surface 343 of the first bent portion 34a, and the upper surface 342 of the fourth straight portion 34b or the upper surface 344 of the second bent portion 34c may be exposed. Alternatively, for example, the lower surface 341 of the fourth straight portion 34b and the stepped portion 351 may be sandwiched from above by the mold and below, and exposed.
In the above embodiment, it is configured in such a manner that the second fixed portion 34 of the terminal 30 includes the fourth straight portion 34b. However, the present disclosure is not limited to this configuration. The terminal 30 may not include the fourth straight portion 34b. In that case, the first bent portion 34a and the second bent portion 34c may be directly connected together, and the second fixed portion 34 may be formed into an S shape. At this point, the lower surface 343 of the first bent portion 34a and/or the upper surface 344 of the second bent portion 34c may be exposed from the movable housing 20.
A terminal 30 according to a modification of the connector of the above embodiment is described, using
A connector 1 and a counterpart connector 100 according to another embodiment of the present disclosure are described, using
Specifically, as illustrated in
In the above embodiment, the stepped portion 351 is provided. However, an embodiment without the stepped portion 351 is also included in the scope of the present disclosure.
The foregoing detailed description has been presented for the purposes of illustration and description. Many modifications and variations are possible in light of the above teaching. It is not intended to be exhaustive or to limit the subject matter described herein to the precise form disclosed. Although the subject matter has been described in language specific to structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims appended hereto.
Number | Date | Country | Kind |
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JP2020-141460 | Aug 2020 | JP | national |
Number | Name | Date | Kind |
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20190013610 | Suzuki | Jan 2019 | A1 |
20190348782 | Horii | Nov 2019 | A1 |
20190363491 | Suzuki | Nov 2019 | A1 |
20210376510 | Obata | Dec 2021 | A1 |
20220069493 | Kobayashi | Mar 2022 | A1 |
20220190504 | Sakai | Jun 2022 | A1 |
Number | Date | Country |
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2019-619 | Apr 2019 | JP |
Number | Date | Country | |
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20220069493 A1 | Mar 2022 | US |