The present application is based upon and claims the benefit of priority of Japanese Patent Application No. 2016-159643, filed on Aug. 16, 2016, the entire contents of which are incorporated herein by reference.
The present disclosure relates to an electromagnetic relay and a relay device.
JP 2015-216053 (hereinafter referred to as “Document 1”) discloses an electromagnetic relay. In the electromagnetic relay described in Document 1, a pair of coil terminals electrically connected to a coil protrudes from the interior of a case to the exterior of the case.
Examples of an external connection body to be connected to an electromagnetic relay include lead wires, a connector, and a plug terminal.
However, the electromagnetic relay described in Document 1 has to be made compatible with individual external connection bodies, which increases cost.
In view of the foregoing, one of the objectives of the present disclosure is to provide an electromagnetic relay and a relay device which are compatible with various types of external connection bodies and to which the external connection bodies can stably be joined.
An electromagnetic relay according to an aspect of the present disclosure includes a contact point, a driver, a base, a cover, and at least one connection terminal. The contact point includes a fixed contact and a movable contact. The driver includes a coil and is configured to bring the movable contact into contact with the fixed contact and to separate the movable contact from the fixed contact. The base has an opening and includes a first wall section surrounding an accommodation space in which the contact point and the driver are accommodated. The cover covers the opening of the base. The at least one connection terminal is configured to electrically connect the coil to an external connection body. The first wall section of the base has a through hole communicating with an interior and an exterior of the accommodation space. The at least one connection terminal includes a first terminal section and a second terminal section. The first terminal section is accommodated in the base and is electrically connected to the coil. The second terminal section protrudes outside the base through the through hole and is electrically connected to the external connection body. The cover includes a second wall section disposed to leave a space from the first wall section having the through hole, and the second terminal section lies in the space. The space in which the second terminal section lies is sealed with a sealant.
A relay device according to one aspect of the present disclosure includes the electromagnetic relay and an external connection body electrically connected to the second terminal section of the at least one connection terminal.
The figures depict one or more implementation in accordance with the present teaching, by way of example only, not by way of limitations. In the figures, like reference numerals refer to the same or similar elements.
With reference to the drawings, electromagnetic relays according to first to sixth embodiments will be described in detail below.
As illustrated in
The electromagnetic relay 1 according to the first embodiment is used in, for example, electric vehicles and electric power charge stations for charging the electric vehicles.
The contact point 2 includes a fixed contact 21, a movable contact 22, and a contact spring 23. The fixed contact 21 is provided to a first terminal 41 which will be described later. The movable contact 22 is brought into contact with the fixed contact 21 and is separated from the fixed contact 21. In other words, the movable contact 22 comes in contact with the fixed contact 21 and separates from the fixed contact 21.
The contact spring 23 supports the movable contact 22 such that the movable contact 22 can be brought into contact with the fixed contact 21 and can be separated from the fixed contact 21. As illustrated in
As illustrated in
The electromagnet section 31 drives the armature 32. The electromagnet section 31 includes a bobbin 35, a coil 36, an iron core 37, and a yoke 38.
The bobbin 35 includes a body section (not shown), a first flange 351, and a second flange 352. A conductor wire which serves as the coil 36 is wound around the body section. The first flange 351 is provided on a first end side in an axial direction of the body section. The second flange 352 is provided on a second end side in the axial direction of the body section. In the bobbin 35, the body section, the first flange 351, and the second flange 352 are integrally made of an insulative material such as a synthetic resin. The coil 36 is made of a conductor wire (e.g., a copper wire) wound around the bobbin 35. The iron core 37 is disposed at the center of the bobbin 35. The yoke 38 includes a holder piece 381 and a main piece 382. The holder piece 381 is held by the second flange 352. The main piece 382 extends from an end of the holder piece 381 to the first flange 351. The holder piece 381 and the main piece 382 are made of magnetic material and are integrally formed to have an L-shape.
Two connection terminals 7 which are paired are inserted into the respective first and second flanges 351 and 352. The connection terminals 7 in the pair are connected to respective ends of the coil 36. That is, a voltage is applied between the connection terminals 7 in the pair to cause a current to flow through the coil 36, thereby exciting the electromagnet section 31.
The armature 32 includes a driving piece 321 having a strip plate shape and a support piece 322 having a flat plate shape. More specifically, the armature 32 is a magnetic body integrally including the driving piece 321 and the support piece 322. The support piece 322 is wider than the driving piece 321. Moreover, the support piece 322 faces an end of the iron core 37 exposed on an inner bottom surface of the first flange 351. The driving piece 321 protrudes outside the first flange 351 from an open side surface of the first flange 351.
The armature 32 is fixed by the hinge spring 33 to be in contact with the tip of the main piece 382 of the yoke 38. When the electromagnet section 31 is excited, the armature 32 pivots in an orientation in which the support piece 322 approaches the iron core 37 (anticlockwise in
The hinge spring 33 is a leaf spring. The hinge spring 33 is fixed (fixed by caulking) to the support piece 322 of the armature 32. Moreover, the hinge spring 33 is fixed (fixed by caulking) to the main piece 382 of the yoke 38. The hinge spring 33 has a central portion bent into an L-shape.
The card 34 is configured to couple the contact spring 23 to the armature 32. When the armature 32 pivots, the contact spring 23 is driven via the card 34, and the movable contact 22 is brought into contact with the fixed contact 21 and is separated from the fixed contact 21.
As illustrated in
The first terminal 41 includes a fixed piece 411, a terminal piece 412, an attachment piece 413, and a coupling piece 414. In the first terminal 41, the fixed piece 411, the terminal piece 412, the attachment piece 413, and the coupling piece 414 are integrally made of a metal material. The fixed piece 411, the attachment piece 413, and the coupling piece 414 are accommodated in the case 6. At least a part of the terminal piece 412 lies outside the case 6. The remaining part of the terminal piece 412 is accommodated in the case 6.
The terminal piece 412 is coupled to the fixed piece 411. The terminal piece 412 extends in a second direction A12 from an end (lower end) of the fixed piece 411 in a first direction A11. The second direction A12 is a direction intersecting the first direction A11. More specifically, the second direction A12 is a direction orthogonal to the first direction A11. The terminal piece 412 has a rectangular flat plate shape. The terminal piece 412 has a central portion through which a screw hole 415 penetrates. A terminal screw (not shown) is screwed into the screw hole 415.
The attachment piece 413 has a rectangular flat plate shape. The attachment piece 413 has a central portion to which the fixed contact 21 is attached. The coupling piece 414 has a rectangular flat plate shape and couples the fixed piece 411 to the attachment piece 413.
The second terminal 42 includes a fixed piece 421, a terminal piece 422, an attachment piece 423, an inclined piece 424, and a coupling piece 425. In the second terminal 42, the fixed piece 421, the terminal piece 422, the attachment piece 423, the inclined piece 424, and the coupling piece 425 are integrally made of a metal material. The fixed piece 421, the attachment piece 423, the inclined piece 424, and the coupling piece 425 are accommodated in the case 6. At least a part of the terminal piece 422 lies outside the case 6. The remaining part of the terminal piece 422 is accommodated in the case 6.
The terminal piece 422 is coupled to the fixed piece 421. The terminal piece 422 extends in the second direction A12 from an end (lower end) of the fixed piece 421 in the first direction A11. The terminal piece 422 has a rectangular flat plate shape. The terminal piece 422 has a central portion through which a screw hole 426 penetrates. A terminal screw (not shown) is screwed into the screw hole 426.
The attachment piece 423 has a rectangular flat plate shape, and each leaf spring 231 of the contact spring 23 is fixed (fixed by caulking) to the attachment piece 423. The inclined piece 424 has a rectangular flat plate shape and protrudes obliquely downward from a lower end of the attachment piece 423. The coupling piece 425 has a rectangular flat plate shape and couples the fixed piece 421 to the inclined piece 424.
The positioning member 5 is configured to limit a mutual positional relationship of the fixed contact 21, the movable contact 22, the contact spring 23, the electromagnet section 31, the armature 32, the card 34, the first terminal 41, and the second terminal 42. The contact point 2 and the driver 3 are accommodated in the case 6 with the electromagnet section 31, the first terminal 41, and the second terminal 42 being held by the positioning member 5.
As illustrated in
As illustrated in
As illustrated in
As illustrated in
Similarly to the left hole 631, the right hole 632 has an inner peripheral surface including a first wall section 642. The first wall section 642 protrudes from the bottom surface section 611 in the first direction A11. The first wall section 642 faces the side surface section 613 in the second direction A12.
The cover 62 covers the opening 616 in the base 61. As illustrated in
As illustrated in
As illustrated in
The opening 616 in the base 61 is covered with the cover 62, thereby assembling the case 6. The pair of projections 661 of the cover 62 is hooked onto the bottom surface section 611 of the base 61, and the cover 62 covers the base 61. In this way, the case 6 is assembled.
In a state in which the case 6 is assembled, as illustrated in
Moreover, as illustrated in
In a state in which the case 6 is assembled, the fixed piece 411 of the first terminal 41 is exposed through the left hole 631. Moreover, through the right hole 632, the fixed piece 421 of the second terminal 42 is exposed.
In a state in which the case 6 is assembled, the case 6 has flow paths along which the sealant applied to the outer surface of the bottom surface section (first peripheral wall section) 611 flows from the outer surface to the through holes 601 and 602. In the first embodiment, each flow path is formed in the case 6. More specifically, in a state in which the case 6 is assembled, as illustrated in
In a state in which the case 6 is assembled, a liquid sealant (adhesive agent) is poured into the gap 603 (see
According to the above description, the pair of projections 661 of the cover 62 is hooked onto the bottom surface section 611 of the base 61, and the sealant flows in the gap 603 between the bottom surface section 611 of the base 61 and the opening edge of the cover 62 and is cured, so that the base 61 is bonded to the cover 62. Moreover, the sealant flows into the case 6 through the holes 631 and 632 in the base 61 and is cured in a state of covering the first terminal 41 and the second terminal 42 in the case 6, so that the first terminal 41 and the second terminal 42 are fixed to the case 6.
Here, as illustrated in
As illustrated in
The case 6 includes an opening surface 605 (see
As illustrated in
As illustrated in
The first terminal section 711 is accommodated in the base 61 (see
The second terminal section 712 protrudes outside the base 61 (see
Similarly to the first connection terminal 71, the second connection terminal 72 includes a first terminal section 721 and a second terminal section 722 as illustrated in
Similarly to the first terminal section 711, the first terminal section 721 is accommodated in the base 61 (see
Similarly to the second terminal section 712, the second terminal section 722 protrudes outside the base 61 (see
Note that similarly to the second joint section 742, the second joint section 762 may be extended in the third direction A23 in an orientation opposite to the orientation in which the third piece 753 is extended. In this case, the first connection terminal 71 and the second connection terminal 72 are components having the same shapes.
Here, as illustrated in
The accommodation section 636 has a box shape whose outer contour is in L-shape. The accommodation section 636 inwardly protrudes from the bottom surface section 611 of the base 61. Moreover, the accommodation section 636 is hollow. The permanent magnet 111 and the yoke 112 are inserted through an insertion opening 637 which is open on a rear side of the base 61, and the permanent magnet 111 and the yoke 112 are accommodated in the accommodation section 636.
Next, operation of the electromagnetic relay 1 according to the first embodiment will be described with reference to
In a state in which no voltage is applied between the plurality of connection terminals 7, the electromagnet section 31 does not drive the armature 32. Thus, the contact spring 23 is not pulled by the card 34, and therefore, the movable contact 22 and the fixed contact 21 face each other with a prescribed gap therebetween. Here, the first terminal 41 and the second terminal 42 are in a non-conductive state (off state).
On the other hand, in a state in which a voltage is applied between the plurality of connection terminals 7, the electromagnet section 31 drives the armature 32, and the armature 32 pivots anticlockwise in
Here, when the first terminal 41 and the second terminal 42 change from the on state to the off state, arc discharge may occur between the movable contact 22 and the fixed contact 21. When the arc discharge occurs, the arc generated has to be promptly extinguished, and the arc discharge has to be terminated within a short period of time. Thus, in the electromagnetic relay 1 according to first embodiment, the arc-extinguishing member 11 including the permanent magnet 111 and the yoke 112 is accommodated in the accommodation section 636 of the base 61. That is, the permanent magnet 111 and the yoke 112 form a magnetic field around the fixed contact 21 and the movable contact 22 to extend the arc by using electromagnetic force due to the magnetic field, thereby extinguishing the arc.
Next, with reference to
The relay device 8 includes the electromagnetic relay 1 described above and a pair of lead wires (external connection bodies) 91 and is connected to an external apparatus (not shown) of lead wire connection.
As illustrated in
According to the electromagnetic relay 1 of the first embodiment described above, the connection terminals 7 lying the space 604 surrounded by the base 61 and the cover 62 are provided, and the space 604 in which the second terminal sections 712 and 722 of the connection terminals 7 lie is sealed. Thus, it is possible to achieve compatibility with various external connection bodies and a stable joint of the external connection bodies.
According to the electromagnetic relay 1 of the first embodiment, the first joint sections 741 and 761 of the connection terminals 7 are disposed along a direction different from the direction of the second joint sections 742 and 762 of the connection terminals 7, and therefore, the external connection bodies can be connected to the connection terminals 7 in various directions.
According to the electromagnetic relay 1 of the first embodiment, when the space 604 in which the second terminal sections 712 and 722 of the connection terminals 7 lie is sealed, a sealant can be put in the space 604 via the opening surface 635 of the cover 62.
According to the electromagnetic relay 1 of the first embodiment, simply applying the sealant onto the outer surface of the bottom surface section (first peripheral wall section) 611 of the base 61 enables the sealant to flow from the exterior surface of the bottom surface section 611 via flow paths to the through hole 601 of the side surface sections (second peripheral wall sections) 612 and 622 and to the through hole 602 of the side surface sections (second peripheral wall sections) 613 and 623. This enables closing of the gap 603 of the bottom surface section 611 with the sealant and adhesion of the terminal piece 412 of the first terminal 41 and the terminal piece 422 of the second terminal 42 to the case 6 by using the sealant flowing through the flow paths. As a result, the number of steps and time required for the steps can be reduced as compared to the case where closing of the gap of the case and adhesion of the terminal piece of the terminal are separately performed.
The electromagnetic relay 1 of the first embodiment enables the sealant applied to the outer surface of the bottom surface section (first peripheral wall section) 611 to easily flow along the first wall sections (wall sections) 641 and 642 and the second wall sections (wall sections) 651 and 652 provided in the case 6 by using surface tension and a capillary action. Thus, the sealant is easily allowed to flow toward the through holes 601 and 602.
Note that the lead wires 91 in the pair may be electrically connected to the respective first joint sections 741 and 761 of the first connection terminal 71 and the second connection terminal 72.
As illustrated in
The case 6 of the second embodiment has the storage space 69 for storing a sealant. The storage space 69 is adjacent to a first terminal 41 and a second terminal 42 (see
According to the electromagnetic relay 1 of the second embodiment described above, the sealant can be stored in the storage space 69, which can enlarge an adhesion area for adhesion of terminal pieces 412 and 422 of the first terminal 41 and the second terminal 42 to the case 6. This can increase an adhesive strength for the adhesion of the terminal pieces 412 and 422 of the first terminal 41 and the second terminal 42 to the case 6. That is, in the electromagnetic relay 1 of the second embodiment, the sealant flowing through holes 631 and 632 (see
Moreover, according to the electromagnetic relay 1 of the second embodiment, the adhesion area for adhesion of the terminal pieces 412 and 422 of the first terminal 41 and the second terminal 42 to the case 6 can be enlarged without increasing the entire size of the relay.
As illustrated in
As illustrated in
As illustrated in
In the electromagnetic relay 1 according to the third variation, the tip of the first wall section 641 and the tip of the second wall section 651 are in contact with each other, and therefore, the sealant smoothly flows from the hole 631 through the first wall section 641 and the second wall section 651. Similarly, the tip of the first wall section 642 and the tip of the second wall section 652 are in contact with each other, and therefore, the sealant smoothly flows from the hole 632 through the first wall section 642 and the second wall section 652. As a result, the first terminal 41 and the second terminal 42 can be easily covered with the sealant.
As illustrated in
As illustrated in
As illustrated in
In the electromagnetic relay 1 according to the sixth variation, the first wall section 641 is situated outwardly farther than the second wall section 651 in the right and left direction. Thus, the sealant flowing along the first wall section 641 does not accumulate at the border between the first wall section 641 and the second wall section 651 but smoothly flows from the first wall section 641 to the second wall section 651. Similarly, the first wall section 642 is situated outwardly farther than the second wall section 652 in the right and left direction. Thus, the sealant flowing along the first wall section 642 does not accumulate at the border between the first wall section 642 and the second wall section 652 but smoothly flows from the first wall section 642 to the second wall section 652.
An electromagnetic relay 1 according to a third embodiment is different from the electromagnetic relay 1 (see
A cover 62 of a case 6 of the third embodiment includes a projection 662 which protrudes from a side surface section 622 forming a second peripheral wall section. Similarly, the cover 62 includes a projection (not shown) which protrudes from a side surface section 623 (see
The storage space 69 of the third embodiment is in communication with a through hole 601 and has a space 691 surrounded by the projection 662.
According to the electromagnetic relay 1 of the third embodiment described above, even when the storage space 69 cannot be sufficiently secured in the case 6, the storage space 69 can be secured inclusively of the space 691 surrounded by the projection 662, and therefore, the degree of freedom in designing the storage space 69 can be increased.
Note that as a variation of the third embodiment, a flow path through which a sealant flows may be provided outside the case 6. More specifically, the flow path of the present variation may be formed on the outer surface of a side surface section (second peripheral wall section) 612 outside the case 6 and may be in communication with the through hole 601, and the flow path of the present variation may be formed on the outer surface of a side surface section (second peripheral wall section) 613 outside the case 6 and may be in communication with the through hole 602.
As illustrated in
The plurality of grooves 664 are parallel to each other. Similarly, the plurality of grooves of the side surface section 613 are also parallel to each other. Moreover, the plurality of grooves 664 include a pair of first grooves 665 in communication with both ends of the through hole 601 and a second groove 666 formed between the first grooves 665 in the pair. Similarly, the plurality of grooves of the side surface section 613 also include a pair of first grooves in communication with both sides of the through hole 602 and a second groove formed between the first grooves in the pair.
According to the electromagnetic relay 1 of the present variation, the sealant is allowed to flow through the flow paths formed in the outer surfaces of the side surface sections (second peripheral wall sections) 612 and 613 of the base 61 from an outer surface of a bottom surface section (first peripheral wall section) 611 of the base 61 to the through hole 601 of the side surface sections (second peripheral wall sections) 612 and 622 and to the through hole 602 of the side surface sections (second peripheral wall sections) 613 and 623. Therefore, it is possible to externally check the flow of the sealant.
The number of the grooves 664 formed in the side surface section 612 is not limited to three, but one groove may be formed, or two grooves may be formed. Alternatively, the number of grooves 664 may be four or more. Similarly, the number of grooves formed in the side surface section 613 is not limited to three, but one groove may be formed, or two grooves may be formed. Alternatively, the number of grooves formed in the side surface section 613 may be four or more.
The locations of the grooves 664 formed in the side surface section 612 are not limited to the locations of the example shown in
An electromagnetic relay 1 according to a fourth embodiment is different from the electromagnetic relay 1 (see
A cover 62 of the case 6 of the fourth embodiment has the window 607 adjacent to a through hole 601 in a side surface section (second peripheral wall section) 622. Similarly, the cover 62 of the fourth embodiment has a window (not shown) adjacent to a through hole 602 in a side surface section (second peripheral wall section) 623. More specifically, the window 607 is in communication with the through hole 601 and downwardly inclines from an inner side to an outer side in the side surface section 622. Note that the description of functions similar to those of the cover 62 of the first embodiment will be omitted.
According to the electromagnetic relay 1 of the fourth embodiment described above, when the sealant flowing along the flow paths reaches the through holes 601 and 602, the sealant emerges into the windows 607. Thus, whether or not the sealant reaches the through holes 601 and 602 can be checked through the windows 607. Note that the sealant does not leak from the windows 607 due to the viscosity and the surface tension of the sealant.
As a variation of the fourth embodiment, the window 607 may have a rectangular shape as illustrated in
In the fifth embodiment, a relay device 8 corresponding to an external apparatus of connector connection will be described.
As illustrated in
As illustrated in
As illustrated in
In the relay device 8 according to the fifth embodiment described above, the connectors 92 as an external connection body are electrically connected to the connection terminals 7, and therefore, the relay device 8 can be easily compatible with external apparatuses of connector connection.
In a sixth embodiment, a relay device 8 compatible with external apparatuses of plug-in connection will be described.
As illustrated in
As illustrated in
In the relay device 8 according to the sixth embodiment described above, the paired plug terminals 93 as external connection bodies are electrically connected to the respective connection terminals 7, and therefore, the relay device 8 can be easily compatible with external apparatuses of plug-in connection.
Note that the pair of plug terminals 93 may be joined to the respective first joint sections 741 and 761 of the connection terminals 7.
The electromagnetic relay according to the present disclosure is not limited to the first to sixth embodiments and variations thereof, but the electromagnetic relay may adopt various configurations within a scope of the technical idea of the present disclosure.
Note that the present disclosure is not limited to the electromagnetic relay. The present disclosure may be an electrical device other than the electromagnetic relay.
While the foregoing has described what are considered to be the best mode and/or other examples, it is understood that various modifications may be made therein and that the subject matter disclosed herein may be implemented in various forms and examples, and that they may be applied in numerous applications, only some of which have been described herein. It is intended by the following claims to claim any and all modifications and variations that fall within the true scope of the present teachings.
Number | Date | Country | Kind |
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2016-159643 | Aug 2016 | JP | national |