This application is based on Japanese Patent Application No. 2016-121171 filed with the Japan Patent Office on Jun. 17, 2015, and Japanese Patent Application No. 2015-174869 filed with the Japan Patent Office on Sep. 4, 2015, the entire contents of which are incorporated herein by reference.
The present invention relates to a contact switching device, and particularly relates to a contact switching device suitable for a power loading relay, an electromagnetic switch, or the like.
In the related art, as a conventional contact switching device, for example as shown in FIG. 5A of JP 2012-104356 A, a pair of through holes 61a is provided on the upper surface of a container 61 made of a heat-resistant material such as ceramic. Then, fixed terminals 33, 33 are respectively inserted and brazed into the pair of through holes 61a. Further, a yoke body 63 is located between the pair of fixed terminals 33, 33, and fixed to the inner upper surface of the container 61. The yoke body 63 has a substantially parallelepiped shape and is made of a magnetic material such as soft ion.
When movable contacts 34, 34 provided in a movable contactor 35 come in contact with the fixed contacts 32, 32, respectively, to allow an electric current to flow, a magnetic field is generated in the movable contactor 35. A holder 81 is thereby attracted to the yoke body 63, to reduce electromagnetic repulsive force that is generated between the movable contact 34 and the fixed contact 32. As a result, the reduction prevents a decrease in contact pressure, and prevents welding of the movable contact and the fixed contact 32 in association with an increase in contact resistance. Further, with generation of the electromagnetic repulsive force, the movable contact 34 and the fixed contact 32 are opened and an arc is generated, thereby preventing the welding of the movable contact 34 and the fixed contact 32.
However, in the above contact device, the yoke body 63 needs to be fixed, for example by brazing, to the inner upper surface of the box-shaped container 61. Hence, the fixing operation requires proficient skills and an assembly operation takes time, resulting in low productivity and high manufacturing cost.
Further, in the foregoing assembly operation, an assembly error easily occurs and the high positioning accuracy is hardly achieved, thus causing a problem that operation characteristics easily vary.
In view of the above problems, an object of the present invention is to provide a contact switching device which has high productivity and in which operation characteristics hardly vary.
A contact switching device according to the present invention includes: an electromagnetic unit; a holder mounted in the electromagnetic unit; a movable shaft having one end inserted through the inside of the holder and the other end inserted through the inside of the electromagnetic unit, and supported reciprocatably in a direction of an axis center; a movable contact piece provided at the one end of the movable shaft in the holder and housed in the holder, while having a pair of movable contacts disposed on the front surface on the opposite side to the electromagnetic unit in the axis center direction of the movable shaft; a movable yoke disposed on the rear surface of the movable contact piece on the electromagnetic unit side in the axis center direction of the movable shaft, and assembled to the one end of the movable shaft in the holder; a pair of fixed contacts disposed in the holder and facing the pair of movable contacts in a contactable and separable manner; and a fixed yoke located between the pair of fixed contacts, and supported as a result of placing both ends thereof in a longitudinal direction that intersects with the axis center direction of the movable shaft and intersects with a longitudinal direction of the movable contact piece. The contact switching device is configured such that, at the time of excitation of the electromagnetic unit, the movable shaft moves in a direction from the electromagnetic unit to the holder along the axis center direction, that a magnetic circuit is formed of the fixed yoke and the movable yoke due to a magnetic field generated by a current that flows into the movable contact piece as a result of the pair of movable contacts coming into contact with the pair of fixed contacts, and that the movable yoke is magnetically attracted to the fixed yoke.
According to the present invention, the fixed yoke is supported by the holder as a result of placing both ends of the fixed yoke in the holder, thereby eliminating the need to fix the fixed yoke by brazing or the like to the inner upper surface of the box-shaped container as is done in the conventional example. Hence, the assembly operation is simply performed, leading to high productivity and low manufacturing cost.
Further, since both ends of the fixed yoke only have to be placed in the holder, it is possible to obtain a contact switching device where an assembly error hardly occurs and the operation characteristics hardly vary.
A description will be given of an instance where a contact switching device according to an embodiment of the present invention is applied to a sealed electromagnetic relay, in accordance with the attached drawings of FIGS. 1 to 17.
The sealed electromagnetic relay according to the embodiment is configured to include at least an electromagnetic unit 60, a holder 35, a movable shaft 43, a movable contact piece 49, a movable yoke 48, a pair of fixed contacts 33a, and a fixed yoke 51. Specifically, as shown in
As shown in
The outer cover 20 has insulating properties and the shape of a quadrilateral box with a plane shape capable of covering the opening of the case 10. On both sides of an insulating partition wall 21 projecting from the center of the upper surface of the outer cover 20, terminal holes 22, 22 are respectively provided. Further, fitting tongue pieces 23 which are fit to the notches 11 of the case 10 are projecting from one lateral surface of the outer cover 20. Moreover, in the outer cover 20, two pairs of locking claws 24 that are locked to two pairs of locking holes 12 in the case 10 are extended from the opening edges of the facing lateral surfaces.
The contact mechanism unit 30 is configured to include the holder 35, a cylindrical fixed iron core 42, the movable shaft 43, a movable iron core 45, and the movable contact piece 49, and is incorporated into a sealed space formed of a metal cylindrical flange 31, a ceramic plate 32, a platy first yoke 41, and a bottomed cylinder 46.
As shown in
The ceramic plate 32 has a plane shape that can be brazed to the opening edge of the upper end of the metal cylindrical flange 31. Further, the ceramic plate 32 is provided with terminal holes 32a, 32a, and a gas vent hole 32b. In the ceramic plate 32, a metal layer, not shown, is formed at each of the opening edge of the terminal hole 32a and the opening edge of the gas vent hole 32b. Then, as shown in
The holder 35 is mounted in the electromagnetic unit 60, is formed of heat-resistant insulating material having a quadrilateral box shape, and is housed in the metal cylindrical flange 31 (
As shown in
As shown in
As shown in
As shown in
One end of the movable shaft 43 is inserted through the holder 35, and the other end thereof is inserted through the inside of the electromagnetic unit 60. Meanwhile, the movable shaft 43 is reciprocatably supported in an axis center direction of the movable shaft 43. Specifically, as shown in
The movable contact piece 49 is provided at one end of the movable shaft 43 and housed in the holder 35. Further, the movable contact piece 49 has a pair of movable contacts 49a, 49a respectively on both ends in a direction intersecting with (e.g., orthogonal to) the axis center direction of the movable shaft 43 (i.e., on the front surface (upper surface) on the opposite side to the electromagnetic unit 60 in the axis center direction of the movable shaft 43). Specifically, as shown in
The movable yoke 48 is disposed on the opposite side to a projecting direction of a pair of movable contacts 49a, 49a provided on the movable contact piece 49 (i.e., on the rear surface (lower surface) of the movable contact piece 49 on the electromagnetic unit 60 side in the axis center direction of the movable shaft 43), and is assembled to one end of the movable shaft 43. Specifically, as shown in
Further, the movable contact piece 49 has the movable contacts 49a, 49a by projection processing at both longitudinal ends of its upper surface. The movable contacts 49a, 49a face the fixed contacts 33a, 33a, respectively, of the fixed contact terminal 33 disposed in the holder 35 in a contactable and separable manner.
As shown in
The fixed yoke 51 is located between the pair of fixed contacts 33a, 33a separately from the pair of fixed contacts 33a, 33a. The fixed yoke 51 is supported so as to bridge both longitudinal ends thereof in the holder, the both ends being along a direction intersecting with (e.g., orthogonal to) the axis center direction of the movable shaft 43 and intersecting with (e.g., orthogonal to) the longitudinal direction of the movable contact piece 49. Specifically, as shown in
Meanwhile, at the time of switching the fixed contact 33a and the movable contact 49a, due to an arc generated between the fixed contact 33a and the movable contact 49a, friction powder is dispersed (hereinafter referred to as dispersed powder), the power being generated in association with the contact and opening between the fixed contact 33a and the movable contact 49a. For example, when the fixed yoke is directly fixed to the ceramic plate by brazing or the like, if the dispersed powder is disposed between the fixed contact terminal and the fixed yoke, a short circuit channel is undesirably formed between the fixed contact terminal and the fixed yoke, to cause significant deterioration in insulating properties of the contact switching device.
In the contact switching device, as shown in
As shown in
An inner cover 53 is an insulating elastic body having a cubic shape capable of covering the metal cylindrical flange 31 brazed with the ceramic plate 32. As the inner cover 53, for example, a rubber material that easily absorbs collision sound between the movable contact 49a and the fixed contact 33a may be used. In the inner cover 53, a through hole 53b through which the gas vent pipe 34 penetrates is provided between a pair of terminal holes 53a, 53a which is provided on the ceiling surface of the inner cover 53 and through which the fixed contact terminals 33 respectively penetrate.
As shown in
Next, a description will be given of operation of the sealed electromagnetic relay including the foregoing configuration.
First, as shown in
Next, when a voltage is applied to the coil 61 for excitation, as shown in
Note that collision sound that is generated at the time of the movable contact 49a coming into contact with the fixed contact 33a is absorbed and reduced by the inner cover 53. Hence, a silent type electromagnetic relay is obtained.
In the embodiment, even when the movable yoke 48 superimposes with the fixed yoke 51 at the time of closing the contacts, the magnetic circuit is made while the contact reliability ensuring gap 90 is held between the yokes 48, 51. For this reason, magnetic force lines flow in the movable yoke 48 and the fixed yoke 51, to form a magnetic field. As a result, even when a large current flows in the movable contact piece 49 and electromagnetic repulsive force is generated between the fixed contact 33a and the movable contact 49a, attraction force is generated due to the magnetic field formed by the fixed yoke 51 and the movable yoke 48. By this attraction force, the movable yoke 48 is magnetically attracted by the fixed yoke 51 to suppress the electromagnetic repulsive force. Hence, there is an advantage of being able to prevent a decrease in contact pressure and opening of the contacts at the time of closing the contacts, thereby preventing generation of an arc and welding of the contacts.
In particular, as shown in
When the application of the voltage to the coil 61 is stopped to cancel the excitation, the movable iron core 45 is separated from the cylindrical fixed iron core 42 by spring force of the contact spring 47 and the return spring 44. Hence, the movable shaft 43 slides and moves downward, and the movable contact 49a is opened from the fixed contact 33a. Thereafter, the annular flange part 43a of the movable shaft 43 is engaged with the central recess 35b of the holder 35 and returned to the original state (
In the embodiment, it is possible to form a desired contact reliability ensuring gap 90 by appropriately adjusting a height dimension of the pedestal 35d of the holder 35, a height dimension of a bent-and-raised part 48a of the movable yoke 48, a thickness dimension of the movable contact piece 49, and the projection 51a of the fixed yoke 51. Hence, there is an advantage that wide design flexibility is provided.
According to the embodiment, the fixed yoke 51 is supported by the holder 35 as a result of placing a pair of projections 51a (
Further, since both ends of the fixed yoke only have to be placed in the holder, it is possible to obtain a contact switching device where an assembly error hardly occurs and the operation characteristics hardly vary.
Further, according to the embodiment, a pair of projections 51a of the fixed yoke 51 are placed on a pair of pedestals 35d, thereby facilitating the assembly operation for the fixed yoke.
As another embodiment of the present invention, the longitudinal length dimension of the fixed yoke may be made longer than the longitudinal length dimension of the movable yoke.
According to the embodiment, since the fixed yoke is superimposed on the movable yoke so as to cover the whole of the movable yoke in the longitudinal direction, it is possible to obtain a contact switching device with small leakage of a magnetic flux and with favorable magnetic efficiency.
As another embodiment of the present invention, the facing distance between the facing fixed yoke and movable yoke may be made longer than the inter-contact distance between the movable contact and the fixed contact.
According to the embodiment, even when the pair of movable contacts come into contact with the pair of fixed contacts, the movable yoke does not come into contact with the fixed yoke and, hence, the contact between the pair of movable contacts and the pair of fixed contacts is not prevented. Consequently, the contact switching device with high contact reliability can be obtained.
As another embodiment of the present invention, a gap may be provided so that the fixed yoke does not come into direct contact with the movable yoke when the movable contact comes into contact with the fixed contact.
According to the embodiment, even when the pair of movable contacts come into contact with the pair of fixed contacts, the movable yoke does not come into contact with the fixed yoke and, hence, the contact between the pair of movable contacts and the pair of fixed contacts is not prevented. Hence, the contact switching device with high contact reliability can be obtained.
As a new embodiment of the present invention, the movable yoke may be in contact with one surface of the movable contact piece on the opposite side to a projecting direction of the movable contact provided on the movable contact piece.
Further, according to the embodiment, since the movable contact piece 49 is in contact with the movable yoke 48, magnetic resistance of the magnetic circuit between the made up of the fixed yoke 51 and the movable yoke 48 becomes smaller. Hence, it is possible to obtain a contact switching device having favorable magnetic efficiency and capable of suppressing the electromagnetic repulsive force by large magnetic force.
Further, according to the embodiment, the collision force of the movable shaft 43 is absorbed into the buffer material 40 and reduced via the holder 35. In particular, even when the movable shaft 43 is returned to the original state, the movable iron core 45 does not come into contact with the bottom surface of the bottomed cylinder 46. For this reason, collision sound of the movable shaft 43 is absorbed and reduced by the holder 35, the buffer material 40, the cylindrical fixed iron core 42, the inner cover 53, the electromagnetic unit 60, and the like. Hence, there is an advantage that the sealed electromagnetic relay with small switching sound can be obtained.
Further, according to the position regulating plate 37 of the embodiment, as shown in
In the contact switching device of the above embodiment, the fixed yoke 51 is held in the holder 35 made up of the insulating material, but this is not restrictive. For example, as shown in
The contact switching device according to the present invention is not limited to the foregoing electromagnetic relay, but may naturally be applied to another contact switching device.
Number | Date | Country | Kind |
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2015-174869 | Sep 2015 | JP | national |
2016-121171 | Jun 2016 | JP | national |
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Number | Date | Country |
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Entry |
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Chinese office action dated Jan. 24, 2018 in a counterpart Chinese Patent application. |
Number | Date | Country | |
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20170069452 A1 | Mar 2017 | US |