This application claims priority to Japanese Patent Application No. 2020-176211, filed Oct. 20, 2020. The contents of that application are incorporated by reference herein in their entirety.
The present invention relates to an electromagnetic relay.
Some electromagnetic relays have a movable contact piece held by a holder (see JP-A-2017-204480). The holder is connected to a movable iron core via a shaft. An electromagnetic force acts on the movable iron core due to a magnetic field generated from a coil, and the movable iron core moves due to the electromagnetic force. The movable contact piece moves together with the shaft and the holder in accordance with the movement of the movable iron core. As a result, the contacts are opened and closed.
Generally, the shaft described above is made of metal, and it is difficult to provide a large insulation distance between the shaft and the movable contact piece. An object of the present disclosure is to provide a large insulation distance from a movable contact piece in an electromagnetic relay.
An electromagnetic relay according to one aspect of the present disclosure includes a first fixed terminal, a first fixed contact, a second fixed terminal, a second fixed contact, a first movable contact piece, a first movable contact, a second movable contact, a moving member, a housing, a coil, and a movable iron core. The first fixed contact is connected to the first fixed terminal. The second fixed contact is connected to the second fixed terminal. The first movable contact is connected to the first movable contact piece and faces the first fixed contact. The second movable contact is connected to the first movable contact piece and faces the second fixed contact. The moving member holds the first movable contact piece. The moving member is configured to move in a moving direction including a first direction and a second direction. The first direction is a direction in which the first movable contact and the second movable contact come into contact with the first fixed contact and the second fixed contact. The second direction is a direction in which the first movable contact and the second movable contact are separated from the first fixed contact and the second fixed contact. The housing supports the moving member in a support direction perpendicular to the moving direction of the moving member. The movable iron core is connected to the moving member and is configured to move by a magnetic force generated by the coil.
The moving member is made of resin having electrical insulation. The moving member is slidable in the moving direction with respect to the housing. The moving member includes a first member and a second member. The second member is a separate body from the first member. The second member is connected to the first member by snap fitting. The first member includes a first main body and a first protrusion. The first main body holds the first movable contact piece. The first protrusion protrudes from the first main body in the support direction. The second member includes a second main body, a first locking portion, and a first arm. The second main body holds the first movable contact piece. The first locking portion locks to the first protrusion in the moving direction. The first arm has a shape that protrudes from the second main body in the support direction and bends in the moving direction. The first arm connects the second main body and the first locking portion. A thickness of the first arm in the support direction is smaller than a thickness of the first locking portion in the support direction.
In the electromagnetic relay according to the present aspect, the first movable contact piece is connected to the movable iron core via the moving member. The moving member is made of the resin having electrical insulation. Therefore, a large insulation distance between the first movable contact piece and the movable iron core is provided. Further, the moving member includes the first member and the second member, and the first member and the second member are connected to each other by snap fitting. Therefore, the structure of the moving member is simplified.
Further, the thickness of the first arm in the support direction is smaller than the thickness of the first locking portion in the support direction. Therefore, the flexibility of the first arm is improved while maintaining the strength of the first locking portion. As a result, the durability of the moving member is improved when the moving member is assembled or when the movable contact piece is moved, while maintaining a high connecting force due to snap fitting between the first locking portion and the first protrusion.
The first arm may include a first corner. The first corner may be rounded. In this case, the flexibility of the first arm is further improved. As a result, the durability of the moving member is further improved.
The second member may include a first step located between the first locking portion and the first arm. In this case, the thickness of the first arm is made smaller than the thickness of the first locking portion by the first step.
The first member may further include a first slider. The first slider may protrude from the first main body in the support direction and may be slidable with respect to the housing. In this case, a frictional force acts on the first member in the moving direction of the moving member due to sliding with the housing. However, since the durability of the moving member is improved by the first locking portion and the first arm, damage to the moving member can be reduced.
The first member may include a second protrusion. The second protrusion may protrude from the first main body in a direction opposite to the support direction. The second member may include a second locking portion and a second arm. The second locking portion may be locked to the second protrusion in the moving direction. The second arm may have a shape that protrudes from the second main body in the direction opposite to the support direction and bends in the moving direction. The second arm may connect the second main body and the second locking portion. A thickness of the second arm in the support direction may be smaller than a thickness of the second locking portion in the support direction. In this case, the flexibility of the second arm is improved while maintaining the strength of the second locking portion. As a result, the durability of the moving member is improved when the moving member is assembled or when the movable contact piece is moved, while maintaining a high connecting force due to snap fitting between the second locking portion and the second protrusion.
The second arm may include a second corner. The second corner may be rounded. In this case, the flexibility of the second arm is further improved. As a result, the durability of the moving member is further improved.
The first member may further include a second slider. The second slider may project from the first main body in a direction opposite to the support direction and may be slidable with respect to the housing. In this case, a frictional force acts on the first member in the moving direction of the moving member due to sliding with the housing. However, the second locking portion and the second arm improve the durability of the moving member, so that damage to the moving member can be reduced.
The second member may include a second step located between the second locking portion and the second arm. In this case, the thickness of the second arm is made smaller than the thickness of the second locking portion by the second step.
The moving member may include a connecting portion and a link portion. The connecting portion may be connected to the movable iron core. The link portion may extend from the connecting portion in the moving direction. The first member may be connected to the link portion. In this case, the operation of the movable iron core is transmitted to the first member via the connecting portion and the link portion. As a result, a force due to the operation of the movable iron core acts on the first member in the moving direction of the moving member. However, since the durability of the moving member is improved by the first locking portion and the first arm, damage to the moving member can be reduced.
The first movable contact piece may be held between the first member and the second member in the moving direction of the moving member. In this case, the first movable contact piece is held by the moving member with a simple structure.
The electromagnetic relay may further include a third fixed contact, a fourth fixed contact, a second movable contact piece, a third movable contact, and a fourth movable contact. The third fixed contact may be connected to the first fixed terminal. The fourth fixed contact may be connected to the second fixed terminal. The third movable contact may be connected to the second movable contact piece and face the third fixed contact. The fourth movable contact may be connected to the second movable contact piece and face the fourth fixed contact. The moving member may hold the second movable contact piece. In this case, since the moving member holds the first movable contact piece and the second movable contact piece, a large load acts on the moving member when the moving member moves. However, since the durability of the moving member is improved by the first locking portion and the first arm, damage to the moving member can be reduced.
Hereinafter, an electromagnetic relay 1 according to an embodiment will be described with reference to the drawings.
The electromagnetic relay 1 includes a contact block 2, a housing 3, a coil block 4, a first fixed terminal 13, and a second fixed terminal 14. The contact block 2 and the coil block 4 are disposed in the housing 3. The housing 3 includes a base 11 and a case 12. The base 11 and the case 12 are made of, for example, resin. In
In the present embodiment, a moving direction (Y1, Y2), a support direction (Z1, Z2), and a lateral direction (X1, X2) are defined as follows. The moving direction (Y1, Y2) is a direction in which the contact block 2 and the coil block 4 are aligned with each other. The moving direction (Y1, Y2) includes a first moving direction (Y1) and a second moving direction (Y2). The first moving direction (Y1) is a direction from the contact block 2 toward the coil block 4. The second moving direction (Y2) is a direction opposite to the first moving direction (Y1). The second moving direction (Y2) is a direction from the coil block 4 toward the contact block 2.
The support direction (Z1, Z2) is a direction perpendicular to the moving direction (Y1, Y2). The support direction (Z1, Z2) is a direction in which the base 11 and the contact block 2 are aligned with each other. The support direction (Z1, Z2) includes a first support direction (Z1) and a second support direction (Z2). The first support direction (Z1) is a direction from the contact block 2 toward the base 11. The second support direction (Z2) is a direction opposite to the first support direction (Z1). The second support direction (Z2) is a direction from the base 11 toward the contact block 2. Alternatively, the support direction (Z1, Z2) may be a direction in which the base 11 and the coil block 4 are aligned with each other.
The lateral direction (X1, X2) is a direction perpendicular to the moving direction (Y1, Y2) and the support direction (Z1, Z2). The lateral direction (X1, X2) includes a first lateral direction (X1) and a second lateral direction (X2). The second lateral direction (X2) is a direction opposite to the first lateral direction (X1).
The first fixed terminal 13 and the second fixed terminal 14 are made of a conductive material such as copper. The first fixed terminal 13 and the second fixed terminal 14 extend in the support direction (Z1, Z2), respectively. The first fixed terminal 13 and the second fixed terminal 14 are disposed apart from each other in the lateral direction (X1, X2). The first fixed terminal 13 is fixed to the base 11. A tip of the first fixed terminal 13 projects outward from the base 11. The second fixed terminal 14 is fixed to the base 11. A tip of the second fixed terminal 14 projects outward from the base 11.
The first fixed contact 21 and the third fixed contact 23 are connected to the first fixed terminal 13. The first fixed contact 21 and the third fixed contact 23 are disposed apart from each other in the support direction (Z1, Z2) on the first fixed terminal 13. The second fixed contact 22 and the fourth fixed contact 24 are connected to the second fixed terminal 14. The second fixed contact 22 and the fourth fixed contact 24 are disposed apart from each other in the support direction (Z1, Z2) on the second fixed terminal 14. The first to fourth fixed contacts 21 to 24 are made of a conductive material such as silver or copper.
The contact block 2 includes a first movable contact piece 15, a second movable contact piece 16, and a moving member 17. The first movable contact piece 15 and the second movable contact piece 16 extend in the lateral direction (X1, X2). The first movable contact piece 15 and the second movable contact piece 16 are separate bodies from each other. The first movable contact piece 15 and the second movable contact piece 16 are disposed apart from each other in the support direction (Z1, Z2). The first movable contact piece 15 is disposed between the second movable contact piece 16 and the base 11 in the support direction (Z1, Z2). The first movable contact piece 15 and the second movable contact piece 16 are made of a conductive material such as copper.
The first movable contact 31 and the second movable contact 32 are connected to the first movable contact piece 15. The first movable contact 31 and the second movable contact 32 are disposed apart from each other in the lateral direction (X1, X2). The first movable contact 31 is disposed to face the first fixed contact 21. The second movable contact 32 is disposed to face the second fixed contact 22.
The third movable contact 33 and the fourth movable contact 34 are connected to the second movable contact piece 16. The third movable contact 33 and the fourth movable contact 34 are disposed apart from each other in the lateral direction (X1, X2). The third movable contact 33 is disposed to face the third fixed contact 23. The fourth movable contact 34 is disposed to face the fourth fixed contact 24. The first to fourth movable contacts 31 to 34 are made of a conductive material such as silver or copper.
The moving member 17 holds the first movable contact piece 15 and the second movable contact piece 16. The moving member 17 is made of resin having electrical insulation. The moving member 17 is made of nylon, for example. However, the moving member 17 may be made of a material other than nylon. The moving member 17 is supported by the housing 3 in the support direction (Z1, Z2). The moving member 17 is slidable in the moving direction (Y1, Y2) with respect to the housing 3. The moving member 17 is configured to move between a closed position and an open position. In
The coil block 4 moves the first movable contact piece 15 and the second movable contact piece 16 by an electromagnetic force. The coil block 4 moves the first movable contact piece 15 and the second movable contact piece 16 in the first moving direction (Y1) and the second moving direction (Y2). The first moving direction (Y1) is a direction in which the movable contacts 31 to 34 contact the fixed contact 21 to 24 in the moving direction (Y1, Y2). The second moving direction (Y2) is a direction in which the movable contacts 31 to 34 are separated from the fixed contacts 21 to 24 in the moving direction (Y1, Y2). The coil block 4 includes a coil 61, a spool 62, a movable iron core 63, a fixed iron core 64, and a yoke 65.
The coil 61 is wound around the spool 62. An axis of the coil 61 extends in the moving direction (Y1, Y2). The coil 61 is connected to the coil terminals 66 and 67. As illustrated in
As illustrated in
The movable iron core 63 is connected to the moving member 17. The first movable contact piece 15 and the movable iron core 63 are electrically insulated by the moving member 17. The second movable contact piece 16 and the movable iron core 63 are electrically insulated by the moving member 17. The movable iron core 63 moves integrally with the moving member 17 in the moving direction (Y1, Y2). The movable iron core 63 moves in the first moving direction (Y1) according to the magnetic force generated from the coil 61. With the movement of the movable iron core 63, the moving member 17 moves to the closed position. As the moving member 17 moves, the first movable contact piece 15 and the second movable contact piece 16 move in the first moving direction (Y1) or the second moving direction (Y2).
The yoke 65 is disposed so as to surround the coil 61. The yoke 65 is disposed on a magnetic circuit generated by the coil 61. The yoke 65 includes a first yoke 73, a second yoke 74, a third yoke 75, and a fourth yoke 76. The first yoke 73 and the second yoke 74 extend in the lateral direction (X1, X2) and the support direction (Z1, Z2). The first yoke 73 and the second yoke 74 face the coil 61 in the moving direction (Y1, Y2). The coil 61 is located between the first yoke 73 and the second yoke 74 in the moving direction (Y1, Y2). The first yoke 73 faces the moving member 17 in the moving direction (Y1, Y2). The second yoke 74 is connected to the fixed iron core 64.
The third yoke 75 and the fourth yoke 76 extend in the moving direction (Y1, Y2) and the support direction (Z1, Z2). The third yoke 75 and the fourth yoke 76 face the coil 61 in the lateral direction (X1, X2). The coil 61 is located between the third yoke 75 and the fourth yoke 76 in the lateral direction (X1, X2).
The support portion 25 extends in the support direction (Z1, Z2). The support portion 25 extends from the first movable contact piece 15 toward the base 11 in the first support direction (Z1). As illustrated in
The second movable contact piece 16 is disposed in the second support hole 29. The second movable contact piece 16 is supported by the support portion 25 between the third movable contact 33 and the fourth movable contact 34. The second movable contact piece 16 extends from the support portion 25 in the first lateral direction (X1) and the second lateral direction (X2). The partition wall 30 partitions the first support hole 28 and the second support hole 29. The partition wall 30 is disposed between the first movable contact piece 15 and the second movable contact piece 16.
As illustrated in
The first wall 56 and the second wall 57 are disposed apart from each other in the moving direction (Y1, Y2). The first wall 56 and the second wall 57 face the support portion 25 of the moving member 17 in the moving direction (Y1, Y2). The support portion 25 is located between the first wall 56 and the second wall 57 in the moving direction (Y1, Y2). The first wall 56 and the second wall 57 extend in the lateral direction (X1, X2). The third wall 58 and the fourth wall 59 face the support portion 25 in the lateral direction (X1, X2). The support portion 25 is located between the first wall 56 and the second wall 57 in the lateral direction (X1, X2). The third wall 58 and the fourth wall 59 extend in the moving direction (Y1, Y2).
The moving member 17 includes a first member 17a and a second member 17b. The first member 17a and the second member 17b are separate bodies from each other. The second member 17b is connected to the first member 17a by snap fitting. The first support hole 28 and the second support hole 29 are provided between the first member 17a and the second member 17b. The first movable contact piece 15 and the second movable contact piece 16 are held between the first member 17a and the second member 17b in the moving direction (Y1, Y2). The first member 17a is connected to the link portion 27. The first member 17a is integrally formed with the link portion 27 and the connecting portion 26.
The second plate 49 extends in the moving direction (Y1, Y2). The pair of second ends 50a and 50b are the ends of the first member 17a in the second support direction (Z2). The pair of second ends 50a and 50b are disposed apart from each other in the lateral direction (X1, X2). The pair of second ends 50a and 50b project from the second plate 49 in the second support direction (Z2). The second protrusion 42 projects from the second plate 49 in the second support direction (Z2).
The first member 17a includes first sliders 68a and 68b and a pair of second sliders 69a and 69b. The first sliders 68a and 68b project from the first ends 48a and 48b in the first support direction (Z1) and are slidable with respect to the base 11. The first sliders 68a and 68b extend in the moving direction (Y1, Y2), respectively. The first sliders 68a and 68b are disposed apart from each other in the lateral direction (X1, X2). The pair of second sliders 69a and 69b project from the second ends 50a and 50b in the second support direction (Z2) and are slidable with respect to the case 12. The pair of second sliders 69a and 69b extend in the moving direction (Y1, Y2), respectively. The pair of second sliders 69a and 69b are disposed apart from each other in the lateral direction (X1, X2).
The second receiving surface 120 is provided on the case 12. The case 12 includes a first guide wall 121 and a second guide wall 122. The first guide wall 121 and the second guide wall 122 extend from the top surface 123 of the case 12 in the first support direction (Z1). The first guide wall 121 and the second guide wall 122 extend in the moving direction (Y1, Y2). The second receiving surface 120 is located between the first guide wall 121 and the second guide wall 122. The second receiving surface 120 faces the second sliders 69a and 69b. The second receiving surface 120 has curved and recessed portions facing the second sliders 69a and 69b. The second sliders 69a and 69b are slidable on the second receiving surface 120.
As illustrated in
The first locking portion 81 extends in the lateral direction (X1, X2). The first locking portion 81 is connected to the pair of first arms 82a and 82b. The pair of first arms 82a and 82b connect the second main body 80 and the first locking portion 81. The pair of first arms 82a and 82b are disposed apart from each other in the lateral direction (X1, X2). The first arms 82a and 82b project from the second main body 80 in the first support direction (Z1). Specifically, the first arms 82a and 82b project from the first surface 85 in the first support direction (Z1). The first arms 82a and 82b have a shape bent in the first moving direction (Y1). The first arms 82a and 82b are connected to the ends of the first locking portion 81 in the lateral direction (X1, X2), respectively. First steps 87a and 87b are provided between the first locking portion 81 and the first arms 82a and 82b. The first arms 82a and 82b include the first corners 88a and 88b. The first corners 88a and 88b are rounded. As illustrated in
The second locking portion 83 extends in the lateral direction (X1, X2). The second locking portion 83 is connected to the pair of second arms 84a and 84b. The pair of second arms 84a and 84b connect the second main body 80 and the second locking portion 83. The pair of second arms 84a and 84b are disposed apart from each other in the lateral direction (X1, X2). The second arms 84a and 84b project from the second main body 80 in the second support direction (Z2). Specifically, the second arms 84a and 84b project from the second surface 86 in the second support direction (Z2). The second arms 84a and 84b have a shape bent in the first moving direction (Y1). The second arms 84a and 84b are connected to the ends of the second locking portion 83 in the lateral direction (X1, X2), respectively. Second steps 89a and 89b are provided between the second locking portion 83 and the second arms 84a and 84b. The second arms 84a and 84b include second corners 90a and 90b. The second corners 90a and 90b are rounded. As illustrated in
As illustrated in
The first locking portion 81 locks to the first protrusion 41 in the moving direction. Specifically, the first locking portion 81 locks to the first locking surface 410 of the first protrusion 41 in the moving direction (Y1, Y2). The second locking portion 83 locks to the second protrusion 42 in the moving direction (Y1, Y2). Specifically, the second locking portion 83 locks to the second locking surface 420 of the second protrusion 42 in the moving direction (Y1, Y2). That is, the locking direction by snap fitting coincides with the moving direction (Y1, Y2) of the moving member 17.
As illustrated in
The second contact spring 52 is disposed between the second movable contact piece 16 and the support portion 25. The second contact spring 52 is disposed in the second support hole 29. In a state where the third movable contact 33 is in contact with the third fixed contact 23 and the fourth movable contact 34 is in contact with the fourth fixed contact 24, the second contact spring 52 presses the second movable contact piece 16 toward the first fixed terminal 13 and the second fixed terminal 14. The second contact spring 52 is a coil spring, and is in a state of natural length when the moving member 17 is located in the open position. The second movable contact piece 16 is connected to the moving member 17 via the second contact spring 52.
The connecting portion 26 extends in the lateral direction (X1, X2). As illustrated in
The movable iron core 63 includes a shaft 77 and a head 78. The shaft 77 and the head 78 project from the coil block 4 in the second moving direction (Y2). A width of the head 78 is larger than a width of the shaft 77. The width of the head 78 is larger than the width of the locking groove 44. The shaft 77 is disposed in the locking groove 44. The head 78 is disposed in the hole 43.
As illustrated in
The electromagnetic relay 1 includes a first return spring 53 and a second return spring 54. The first return spring 53 and the second return spring 54 are disposed between the moving member 17 and the coil block 4. The first return spring 53 is located in the first lateral direction (X1) with respect to the core connector 37. The second return spring 54 is located in the second lateral direction (X2) with respect to the core connector 37. In other words, the core connector 37 is located between the first return spring 53 and the second return spring 54 in the lateral direction (X1, X2). The first return spring 53 and the second return spring 54 urge the moving member 17 in the second moving direction (Y2). The first return spring 53 is attached to the first protrusion 45. The second return spring 54 is attached to the second protrusion 46.
Next, the operation of the electromagnetic relay 1 will be described. When the coil 61 is not energized, the coil block 4 is not excited. In this case, the moving member 17 is pressed in the second moving direction (Y2) by the elastic force of the return springs 53 and 54 together with the movable iron core 63, and the moving member 17 is located at the open position illustrated in
When the coil 61 is energized, the coil block 4 is magnetized. In this case, due to the electromagnetic force of the coil 61, the movable iron core 63 moves in the first moving direction (Y1) against the elastic force of the return springs 53 and 54. As a result, the moving member 17, the first movable contact piece 15, and the second movable contact piece 16 move in the first moving direction (Y1). Therefore, as illustrated in
When the current to the coil 61 is stopped and degaussed, the movable iron core 63 is pressed in the second moving direction (Y2) by the elastic force of the return springs 53 and 54. As a result, the moving member 17, the first movable contact piece 15, and the second movable contact piece 16 move in the second moving direction (Y2). Therefore, as illustrated in
In the electromagnetic relay 1 according to the present embodiment described above, the first movable contact piece 15 is connected to the movable iron core 63 via the moving member 17. The moving member 17 is made of the resin having electrical insulation and is directly connected to the movable iron core 63. Therefore, a large insulation distance between the first movable contact piece 15 and the movable iron core 63 is provided. Further, the moving member 17 includes the first member 17a and the second member 17b, and the first member 17a and the second member 17b are connected to each other by snap fitting. Therefore, the structure of the moving member 17 is simplified.
Specifically, when assembling the first member 17a and the second member 17b, the first plate 47 of the first member 17a is inserted into the gap between the first locking portion 81 and the first surface 85. Then, the first arms 82a and 82b are elastically deformed, and the first locking portion 81 gets over the first protrusion 41, so that the first locking portion 81 is locked to the first protrusion 41. Further, the second plate 49 of the second member 17b is inserted into the gap between the second locking portion 83 and the second surface 86. Then, the second arms 84a and 84b are elastically deformed, and the second locking portion 83 gets over the second protrusion 42, so that the second locking portion 83 is locked to the second protrusion 42.
In the electromagnetic relay 1 according to the present embodiment, the thickness A1 of the first arms 82a and 82b in the support direction (Z1, Z2) is smaller than the thickness A2 of the first locking portion 81 in the support direction (Z1, Z2). Therefore, the flexibility of the first arms 82a and 82b is improved while maintaining the strength of the first locking portion 81. As a result, the durability of the moving member 17 when the moving member 17 is assembled or when the movable contact piece is moved is improved while maintaining a high connecting force by snap fitting between the first locking portion 81 and the first protrusion 41.
Although one embodiment of the present invention has been described above, the present invention is not limited to the above embodiment, and various modifications can be made without departing from the gist of the invention.
In the above embodiment, the coil block 4 pushes the moving member 17 in the second moving direction (Y2), so that the movable contacts 31 to 34 are separated from the fixed contacts 21 to 24. Further, the coil block 4 pulls the moving member 17 in the first moving direction (Y1), so that the movable contacts 31 to 34 contact the fixed contacts 21 to 24. However, the operating direction of the moving member 17 for opening and closing the contacts may be opposite to that of the above embodiment. That is, the coil block 4 may push the moving member 17 in the second moving direction (Y2) so that the movable contacts 31 to 34 may contact the fixed contacts 21 to 24. The coil block 4 may pull the moving member 17 in the first moving direction (Y1) so that the movable contacts 31 to 34 may be separated from the fixed contacts 21 to 24.
The shapes or arrangements of the first fixed terminal 13, the second fixed terminal 14, the first movable contact piece 15, and the second movable contact piece 16 may be changed. For example, the first fixed terminal 13 and the second fixed terminal 14 may protrude from the base 11 in a direction different from that of the above embodiment. The first movable contact piece 15 and the second movable contact piece 16 may be integrated with each other. That is, the first to fourth movable contacts 31 to 34 may be connected to the integrated movable contact piece. Alternatively, the second movable contact piece 16, the third and fourth movable contacts 33 and 34, and the third and fourth fixed contacts 23 and 24 may be omitted.
The shapes or arrangements of the coil 61, the spool 62, the movable iron core 63, the fixed iron core 64, or the yoke 65 may be changed. The shapes or arrangements of the first to fourth fixed contacts 21 to 24 may be changed. The shapes or arrangements of the first to fourth movable contacts 31 to 34 may be changed. The shape of the base 11 may be changed.
The first fixed contact 21 and/or the third fixed contact 23 may be integrated with the first fixed terminal 13. The first fixed contact 21 and/or the third fixed contact 23 may be a part of the first fixed terminal 13 and may be flush with other part of the first fixed terminal 13. The second fixed contact 22 and/or the fourth fixed contact 24 may be integrated with the second fixed terminal 14. The second fixed contact 22 and/or the fourth fixed contact 24 may be a part of the second fixed terminal 14 and may be flush with other part of the second fixed terminal 14.
The first movable contact 31 and/or the second movable contact 32 may be integrated with the first movable contact piece 15. The first movable contact 31 and/or the second movable contact 32 may be a part of the first movable contact piece 15 and may be flush with other part of the first movable contact piece 15. The third movable contact 33 and/or the fourth movable contact 34 may be integrated with the second movable contact piece 16. The third movable contact 33 and/or the fourth movable contact 34 may be a part of the second movable contact piece 16 and may be flush with other part of the second movable contact piece 16.
The shape of the moving member 17 is not limited to that of the above embodiment, and may be changed. The shape of the first member 17a may be changed. For example, the first member 17a may be separate body from the link portion 27 and the connecting portion 26. The shape of the second member 17b may be changed. The shape of the link portion 27 may be changed. The shape of the connecting portion 26 may be changed. The number of the first sliders is not limited to two, and may be one or more than two. The number of the second sliders is not limited to two, and may be one or more than two. Alternatively, the first and second sliders may be omitted. The number of the first arms is not limited to two, and may be one or more than two. The number of the second arms is not limited to two, and may be one or more than two.
3: Housing, 13: First fixed terminal, 14: Second fixed terminal, 15: First movable contact piece, 16: Second movable contact piece, 17: Moving member, 17a: First member, 17b: Second member, 21: First fixed contact, 22: Second fixed contact, 23: Third fixed contact, 24: Fourth fixed contact, 26: Connecting portion, 27: Link portion, 31: First movable contact, 32: Second movable contact, 33: Third movable contact, 34: Fourth movable contact, 40: First main body, 41: First protrusion, 42: Second protrusion, 61: Coil, 63: Movable iron core, 68a: First slider, 69a: Second slider, 80: Second main body, 81: First locking portion, 82a: First arm, 87a: First step, 88a: First corner, 83: Second locking portion, 84a: Second arm, 90a: Second corner
Number | Date | Country | Kind |
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JP2020-176211 | Oct 2020 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
20080030288 | Mader | Feb 2008 | A1 |
20150123750 | Pan | May 2015 | A1 |
20160233039 | Kanematsu et al. | Aug 2016 | A1 |
20190066951 | Kanematsu et al. | Feb 2019 | A1 |
20220122795 | Miyake | Apr 2022 | A1 |
20220293373 | Nishida | Sep 2022 | A1 |
20220293375 | Kawaguchi | Sep 2022 | A1 |
20220293378 | Tsukada | Sep 2022 | A1 |
20220293381 | Nishida | Sep 2022 | A1 |
Number | Date | Country |
---|---|---|
2017-204480 | Nov 2017 | JP |
Number | Date | Country | |
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20220122797 A1 | Apr 2022 | US |