The present invention relates to an electromagnetic relay.
Electromagnetic relays in which a contact is opened and closed in accordance with an input of an electric signal are conventionally widely provided. Generally, the electromagnetic relays include a fixed contact portion, a movable contact portion that contacts the fixed contact portion, and an electromagnetic device that operates the movable contact portion. The electromagnetic device is further provided with an armature that is operated to rotate around an end portion of a yoke as a fulcrum. The armature is attached while being pushed in a predetermined direction by a hinge spring or the like, for example (see Patent Document 1).
Further, an arc-extinguishing function, that extinguishes ark discharge generated between the fixed contact portion and the movable contact portion, is actualized in the electromagnetic relay by disposing permanent magnets at both sides of the fixed contact portion and the movable contact portion. Further, by disposing an arc-extinguishing yoke around the permanent magnets, magnetic force by the permanent magnets can be increased and the arc-extinguishing capability can be improved.
[Patent Document 1] Japanese Laid-open Patent Publication No. 2010-123545
[Patent Document 2] Japanese Laid-open Patent Publication No. 2014-17086
[Patent Document 3] Japanese Laid-open Patent Publication No. 2013-80692
[Patent Document 4] Japanese Laid-open Patent Publication No. 2012-195102
However, for the structure in which the hinge spring is disposed between the yoke and the movable contact portion as described in Patent Document 1, when assembling the electromagnetic relay, it is necessary for an operator to attach the hinge spring while avoiding an interference with the armature, and the assembling operation is not easy.
In order to make the electromagnetic relay into a small size, it is desired to take a countermeasure for disposing parts of the electromagnetic relay in a space-saving manner such as reducing the number of pieces smaller, in addition to form pieces of each of the parts smaller. Thus, it is desired to take a countermeasure for pieces related to the arc-extinguishing function to be disposed in a space-saving manner as well.
According to an aspect, it is a purpose to provide an electromagnetic relay capable of being easily assembled.
According to another aspect, it is a purpose to provide an electromagnetic relay capable of disposing pieces related to an arc-extinguishing function in a space-saving manner.
An electromagnetic relay of an embodiment has the following configuration. That is, an electromagnetic relay includes a fixed contact portion including a fixed contact; a movable contact portion including a movable contact that contacts the fixed contact; and an electromagnetic device that operates the movable contact portion so that the movable contact contacts the fixed contact, wherein the electromagnetic device includes an armature that adsorbs to a magnetic core surface of the electromagnetic device and operates the movable contact portion by rotating with respect to a fulcrum, a hinge spring that pushes a part of the armature at an opposite side of the magnetic core surface while interposing the fulcrum between the hinge spring and the magnetic core surface so that the armature moves away from the magnetic core surface, and a fixed member that fixes an end portion of the hinge spring while having outside of a side surface of the armature as a fixed position, and wherein the fixed member is configured to be capable of fixing the end portion of the hinge spring by moving the hinge spring from an upper side to a lower side of the armature, when attaching the hinge spring.
An electromagnetic relay of an embodiment has the following configuration. That is, an electromagnetic relay includes a fixed contact portion including a fixed contact; a movable contact portion including a movable contact that contacts the fixed contact; an electromagnet; a yoke, the yoke including a plurality of arc-extinguishing yoke portions that are disposed to face with each other while interposing the fixed contact and the movable contact therebetween; an armature, operated in accordance with an excitation of the electromagnet, that operates the movable contact portion between a position at which the fixed contact and the movable contact with each other, and a position at which the fixed contact and the movable contact are apart from each other; and a plurality of magnetic portions attached at one surfaces of the arc-extinguishing yoke portions, respectively, and disposed to face with each other while interposing the fixed contact and the movable contact therebetween.
According to the embodiment, an electromagnetic relay capable of being easily assembled can be provided.
Further, according to the embodiment, an electromagnetic relay capable disposing pieces related to an arc-extinguishing function in a space-saving manner can be provided.
The invention will be described herein with reference to illustrative embodiments. It is to be noted that, in the explanation of the drawings, the same components are given the same reference numerals, and explanations are not repeated.
(1. Overall Structure of Electromagnetic Relay)
First, an overall structure of an electromagnetic relay of the embodiment is described.
As illustrated in
The fixed contact portion 110 includes two fixed contact springs 111 and two fixed contacts 112, and the two fixed contact springs 111 are connected to two terminals 160, respectively. Similarly, the movable contact portion 120 includes two movable contact springs and two movable contacts, that are provided to face with the corresponding two fixed contact spring 111 and the two fixed contacts 112, respectively. The two movable contact springs are connected to an armature 131 via a holding member 137.
The electromagnetic device 130 includes the armature 131, a magnetic core 132, a coil 133, a yoke (soft iron) 134, a hinge spring 135, arc-extinguishing yokes 136 and the holding member 137.
The armature 131 is configured to be operated to rotate around an upper end portion of the yoke 134 as a fulcrum. When the armature 131 is operated to rotate around the upper end portion of the yoke 134 as a fulcrum, the movable contact portion 120 connected to the armature 131 via the holding member 137 is operated to reciprocate between a contacting position at which the movable contacts 122 and the fixed contacts 112 contact, and a non-contacting position at which the movable contacts 122 and the fixed contacts 112 do not contact.
Further, the armature 131 absorbs to and moves away from an end surface (magnetic core surface) of the magnetic core 132. Specifically, when electromagnetic force is generated due to voltage applied to the terminals 170 connected to the coil 133, the armature 131 adsorbs to the magnetic core surface. As a result, the movable contact portion 120 is operated to move to the contacting position with the fixed contact portion 110. Here, when the movable contact portion 120 is operated to move to the contacting position with the fixed contact portion 110, one of the terminals 160 is electrically connected to the other of the terminals 160 via one of the fixed contacts and movable contacts, and the other of the movable contacts and fixed contacts.
The hinge spring 135 pushes the armature 131 in a direction that the armature 131 moves away from the magnetic core surface. As the hinge spring 135 always pushes the armature 131 in a direction in which the armature 131 moves away from the magnetic core surface, if the application of the voltage to the terminals 170 is terminated, the armature 131 moves away from the magnetic core surface due to the pushing force of the hinge spring and the movable contact portion 120 is operated to move to the non-contacting position with the fixed contact portion 110. Then, the movable contact portion 120 is maintained at the non-contacting position until the voltage is applied to the terminals 170 next. The structure of the hinge spring 135 is described later in detail.
The arc-extinguishing yokes 136 are provided at both sides of the contacting positions of the movable contacts 122 and the fixed contacts 112. The arc-extinguishing yokes 136 have a function to increase magnetic force of permanent magnets (not illustrated in the drawings) that are provided to extinguish arc generated between the fixed contacts 112 and the movable contacts 122 when the movable contact portion 120 is operated to move to the non-contacting position from the contacting position with the fixed contact portion 110.
(2. Structure of Hinge Spring)
Next, a structure of the hinge spring 135 is described.
As illustrated in
Further, as illustrated in
Further, the pushing part 220 includes a member 225, extending in an y-axis direction, whose one end is connected to an end portion of the member 223 opposite to a side at which the member 221 is connected, and the other end is connected to an end portion of the member 224 opposite to a side at which the member 222 is connected.
The pushing part 220 is formed to be laterally symmetrical with respect to a center position in the y-axis direction when seen in the x-axis direction and the z-axis direction. This means that the pushing part 220 is formed to be plane symmetrical (symmetry of reflection) with respect to an x-z plane passing at the center position of the y-axis direction.
The members 223 and 224 of the pushing part 220 are provided with a first contacting region 231 and a second contacting region 232, respectively, and the member 225 is provided with a third contacting region 233. The pushing part 220 pushes the armature 131 in the direction that the armature 131 moves away from the magnetic core surface by contacting a part of the armature 131 at the first contacting region 231, the second contacting region 232 and the third contacting region 233.
As such, according to the shape of the hinge spring 135 of the embodiment, the pushing part 220 contacts the armature 131 at the plurality of regions to push the armature 131. The shape of the hinge spring 135 is not limited to that illustrated in
Further, the hinge spring may not be configured as a single component. For example, two independent hinge springs, that are one hinge spring including the members 211, 221 and 223, and another hinge spring including the member 212, and the members 222 and 224 of the pushing part 220, may be provided.
(3. Description about Fixed Position, Pushing Position and Pushing Direction of Hinge Spring)
Next, a fixed position of the hinge spring 135, and a pushing position and a pushing direction of the hinge spring 135 with respect to the armature 131 in the electromagnetic device 130 are described.
As illustrated in
on the outside of a side surface of the armature 131 in the y-axis direction, and also
at a magnetic core surface side with respect to the fulcrum SA (upper end portion of the yoke 134) of the rotation of the armature 131 in the x-axis direction. Here, although only one of the members, the member 211, of the fixed part 210 of the hinge spring 135 is illustrated for the example of
on the outside of a side surface of the armature 131 in the y-axis direction, and
at a magnetic core surface side with respect to the fulcrum SA (the upper end portion of the yoke 134) of the rotation of the armature 131 in the x-axis direction.
The first contacting region 231, the second contacting region 232 and the third contacting region 233 of the pushing part 220 of the hinge spring 135 contact parts 311 to 313 (see
The fitting portion at which the member 211 of the fixed part 210 of the hinge spring 135 is fixed is illustrated in
(4. Merits of Hinge Spring)
Next, merits of using the hinge spring 135 of the embodiment are described.
As illustrated in
On the other hand, for the case of the hinge spring 435 illustrated in
This means that, according to the hinge spring 135 of the embodiment, when comparing with the hinge spring 435 of
Further, as illustrated in
On the other hand, for the hinge spring 435 illustrated in
This means that according to the hinge spring 135 of the embodiment, by changing the fixed position of the hinge spring 435 of
(5. Method of Attaching Hinge Spring)
Next, a method of attaching the hinge spring 135 is described in detail.
As illustrated in
As described above, as the fitting portion 400 and the like are provided on the outsides of the side surfaces of the armature 131 in the y-axis direction, the fixed part 210 of the hinge spring 135 and the armature 131 do not interfere with each other when the operator moves the hinge spring 135 from the upper side to the lower side of the armature 131.
Further,
The first to third contacting regions 231 to 233 contact the parts 311 to 313 of the armature 131, respectively, under a status that the hinge spring 135 is attached.
A region of the hinge spring 135 other than the first to third contacting regions 231 to 233 does not contact with the armature 131 when attaching and after attaching the hinge spring 135.
This means that the pushing part 220 is formed to have a planar shape in which the pushing part 220 of the hinge spring 135 and the armature 131 do not interfere with each other at a region other than the first to third contacting regions 231 to 233, when the hinge spring 135 is moved in the minus direction of the z-axis.
In other words, among the members 223 to 225 extending in the x-axis direction and the y-axis direction in the pushing part 220, the region other than the first to third contacting regions 231 to 233 have a planar shape that extends along an outside of the planar shape of the armature 131 (an outer shape when seen from an upper side).
Thus, the fixed part 210 of the hinge spring 135 can be easily fitted in the fitting portion 400 and the like. This means that the attachment of the hinge spring 135 to the electromagnetic device 130 is facilitated.
(6. Detailed Shape of Hinge Spring)
Next, the shape of the hinge spring is described in detail.
As illustrated in
Here, as illustrated in
Meanwhile, the cut standing portion 611 is cut and stood in a minus direction of the x-axis. As the cut standing portion 611 pushes the fitting portion 400 and the like in the minus direction of the x-axis, force from the fitting portion 400 and the like is applied. This means that as the pushing part 220 of the hinge spring 135 is pushed in the plus direction of the x-axis, force generated when the hinge spring 135 pushes the armature 131 can be strengthened, compared with a case when the cut standing portion 611 is not provided.
As illustrated in
(7. Summary)
As is apparent from the above description, according to the electromagnetic relay of the embodiment,
The fixed part 210 of the hinge spring 135 is configured to be fixed on the outsides of the side surfaces of the armature 131 and at the magnetic core surface side with respect to the fulcrum of the rotation of the armature 131, when forming the hinge spring 135.
The fitting direction of the fitting portion 400 is configured to match a moving direction of the hinge spring 135 when attaching the hinge spring so that the hinge spring 135 can be attached to the electromagnetic device 130 by moving the hinge spring 135 from an upper side toward a lower side of the armature 131.
The planar shape of the pushing part 220 of the hinge spring 135 is configured to extend along an outer planar shape of the armature 131 so that the pushing part 220 of the hinge spring 135 does not interfere with the armature 131 when attaching the hinge spring 135.
With this, attachment of the hinge spring 135 to the electromagnetic device 130 is facilitated and an assembling operation of the electromagnetic relay 100 can be improved.
Further, it is possible to elongate the length of spring SL of the hinge spring, and an allowable range of a manufacturing error of the hinge spring can be broadened.
Although the fitting depth when fitting the fixed part 210 of the hinge spring 135 in the fitting portion 400 (see
Here, the fitting depth for being fitted in the fitting portion 400 may be adjusted by inserting a metal piece having a thickness and a width similar to those of the member 211 or 212 of the fixed part 210 of the hinge spring 135 in the fitting portion 400 and the like, for example. In particular, by preparing a plurality of metal pieces with different heights, the fitting depth can be finely adjusted.
(1. Overall Structure of Body Portion of Electromagnetic Relay)
First, an overall structure of an electromagnetic relay of the embodiment is described.
As illustrated in
The fixed contact portion 110 includes two fixed contact springs 111 and two fixed contacts 112, and the fixed contact springs 111 are connected to different terminals 160, respectively. Similarly, the movable contact portion 120 includes two movable contact springs and two movable contacts, that are provided to face with the corresponding fixed contact springs 111 and the fixed contacts 112, respectively. Further, the two movable contact springs are connected to an armature 131 via a holding member 137. In
The electromagnetic device 130 includes the armature 131, a magnetic core 132, a coil 133, a spool 138, a yoke (soft iron) (hereinafter, referred to as a “driving yoke” in order to differentiate from an arc-extinguishing yoke, which will be described below.) 134, a hinge spring 135 and the holding member 137.
With reference to
Further, the armature 131 absorbs to and moves away from an end surface (magnetic core surface) of the magnetic core 132 that is inserted in the spool 138. Specifically, when electromagnetic force is generated due to voltage applied to the terminals 170 connected to the coil 133 that is wound around the spool 138 (when an electromagnet formed by the magnetic core 132, the coil 133 and the spool 138 is excited), the armature 131 absorbs to the magnetic core surface. As a result, the movable contact portion 120 is operated to the contacting position. When the movable contact portion 120 is operated to the contacting position, the two movable contacts 122 and the two fixed contacts 112 contact with each other, respectively. Thus, one of the terminals 160 is electrically connected to the other of the terminals 160 via one of the fixed contacts 112 and the movable contacts 122, and the other of the movable contacts 122 and the fixed contacts 112.
The hinge spring 135 pushes the armature 131 in a direction that the armature 131 moves away from the magnetic core surface. Thus, if the application of the voltage to the terminals 170 is terminated, the armature 131 moves away from the magnetic core surface, and the movable contact portion 120 is operated to the non-contacting position. Then, the movable contact portion 120 is maintained at the non-contacting position until the voltage is applied to the terminals 170 next.
(2. Structure of Each Part of Body Portion of Electromagnetic Relay)
Next, structures of parts of the body portion 101 of the electromagnetic relay are described with reference to
As illustrated in
As illustrated in
Further, as illustrated in
(3. Structure of Arc-Extinguishing Yoke in Detail)
As illustrated in
Thus, as illustrated in
In this embodiment, an arc-extinguishing yoke having a U shape is formed, not by placing an arc-extinguishing yoke having a U shape, but by sharing the driving yoke 134 as a part of the arc-extinguishing yoke.
As such, by sharing a part that constitutes one side of the U shape structure with another part, in other words, the driving yoke 134, the arc-extinguishing yokes 731 and 732 can improve the arc-extinguishing capability of the permanent magnets 721 and 722 to an extent about the same as a case when an arc-extinguishing yoke having a U shape is placed. Further, when disposing the arc-extinguishing yokes 731 and 732, a space can be saved compared with a case when an arc-extinguishing yoke having a U shape is disposed.
(4. Method of Attaching Arc-Extinguishing Yokes and Permanent Magnets)
Next, a method of attaching the arc-extinguishing yokes 731 and 732 and the permanent magnets 721 and 722 is described.
As illustrated in a partially enlarged region 700 of
By inserting the arc-extinguishing yokes 731 and 732 and the permanent magnets 721 and 722 from the upper side in the respective open portions, respectively, the arc-extinguishing yokes 731 and 732 and the permanent magnets 721 and 722 are disposed at side surfaces of the fixed contact portion 110 and the movable contact portion 120. At this time, the arc-extinguishing yokes 731 and 732 and the permanent magnets 721 and 722 are disposed in a positional relationship with respect to the driving yoke 134 as illustrated in
(5. Outer Cover and Bottom Plate)
Next, the outer cover and the bottom plate of the electromagnetic relay are described.
Here, the outer cover 510 has a function to fix the arc-extinguishing yokes 731 and 732 and the permanent magnets 721 and 722 by covering the body portion 101 of the electromagnetic relay and contacting with the arc-extinguishing yokes 731 and 732 and the permanent magnets 721 and 722.
As illustrated in
With this, the arc-extinguishing yokes 731 and 732 and the permanent magnets 721 and 722 are fixed to the contacting portions 511 and 512 of the outer cover 510, and these parts are prevented from slipping down from the open portion 701 and the like.
(6. Summary)
As is apparent from the above description, according to the electromagnetic relay of the embodiment,
The permanent magnets 721 and 722 and the arc-extinguishing yokes 731 and 732 are disposed at side surfaces of the fixed contact portion 110 and the movable contact portion 120 such that to face with each other while interposing the fixed contact portion 110 and the movable contact portion 120 therebetween.
The arc-extinguishing yokes 731 and 732 are attached at the outermost positions of the driving yoke 134 in its width direction, and the arc-extinguishing yokes 731 and 732 and the driving yoke 134 are configured to form a U shape structure in a plan view.
As such, by sharing the driving yoke as a part of the arc-extinguishing yoke, a space can be saved compared with a case when an arc-extinguishing yoke having a U shape is disposed while improving the arc-extinguishing capability of the permanent magnets to an extent about the same as a case when the arc-extinguishing yoke having the U shape is disposed.
Although the arc-extinguishing yokes 731 and 732 are attached to the driving yoke 134 such that side surfaces of the arc-extinguishing yokes 731 and 732 contact with the driving yoke 134 in the above described third embodiment, the present invention is not limited to this. For example, the arc-extinguishing yokes 731 and 732 may be attached to the driving yoke 134 such that a space is provided between a side surface of each of the arc-extinguishing yokes 731 and 732 and the driving yoke 134. Further, although the arc-extinguishing yokes 731 and 732 and the driving yoke 134 are configured to be separate parts in the above described first embodiment, the present invention is not limited to this. For example, the arc-extinguishing yokes 731 and 732 may be integrally formed with the driving yoke 134 such that to extend from the driving yoke 134.
This means that, the arc-extinguishing yokes 731 and 732, included by the driving yoke 134 as the arc-extinguish yoke portions, may be separately formed from the driving yoke 134 or integrally formed with the driving yoke 134. Further, for a case when the arc-extinguishing yokes 731 and 732 are separately formed, the arc-extinguishing yokes 731 and 732 may be attached to the driving yoke 134 in a contacting manner, or the arc-extinguishing yokes 731 and 732 may be attached to the driving yoke 134 with spaces therebetween, respectively.
The present invention is not limited to the specifically disclosed embodiments, and numerous variations and modifications may be made without departing from the spirit and scope of the present invention.
The present application is based on and claims the benefit of priority of Japanese Priority Application No. 2014-149904 filed on Jul. 23, 2014 and Japanese Priority Application No. 2014-161825 filed on Aug. 7, 2014, the entire contents of which are hereby incorporated by reference.
Number | Date | Country | Kind |
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2014-149904 | Jul 2014 | JP | national |
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PCT/JP2015/070407 | 7/16/2015 | WO | 00 |
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WO2016/013485 | 1/28/2016 | WO | A |
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