The present application is National Phase of International Application No. PCT/JP2010/005586 filed Sept. 13, 2010, and claims priority from Japanese Application No. 2010-018288, filed Jan. 29, 2010.
The present invention relates to a reversible electromagnetic contactor that mechanically and electrically interlocks simultaneous closing of two electromagnetic contactors of two electromagnetic contactors disposed adjacently, by using a reversible unit.
For example, a device in which a reversible unit is mounted across two adjacently disposed electromagnetic contactors and the reversible unit is mechanically interlocked so as to prevent the two electromagnetic contactors from being closed simultaneously (simultaneous ON operation) is known as a reversible electromagnetic contactor that is connected to the control circuit of an induction motor and performs direct-reverse operation control of the induction motor (for example, Patent Document 1).
Another electromagnetic contactor 1b, which is disposed adjacently to the electromagnetic contactor 1a, has the same structure, and when the coil thereof is energized and the movable iron core is attracted to the fixed iron core, a movable contact fixed to a movable contact support 4 and a fixed contact are opened and closed. A display window 3b is formed in an arc-extinguishing cover 2b provided on top of the electromagnetic contactor, and an operation indication piece 4b fixed to the movable contact support (not shown in the figure) protrudes into the display window 3b.
As shown in
When the connection bridges 6f, 6g of the reversible unit 6 are connected in the respective fitting state thereof to the head portions of the operation indicating pieces 4a, 4b of the two electromagnetic contactors 1a, 1b in a state in which the unit bottom plate 6a abuts on the air-extinguishing covers 2a, 2b, the lock piece 6e causes the rotation of either of the first interlock plate 6c and the second interlock plate 6d, restricts the rotation of the other of the interlock plates, and enables the movement of only one of the operation indication pieces 4a, 4b, thereby performing mechanical interlock such that makes it impossible to close the two electromagnetic contactors 1a, 1b simultaneously.
In
Further, a coil C1a and a coil C1b of the two electromagnetic contactors 1a, 1b and the auxiliary contacts 13, 14 of contacts (b) are connected in series, the coil C1a is connected to the auxiliary contact 13 of the contact (b), the coil C1b is connected to the auxiliary contact 14 of the contact (b), and the electrical interlock is performed such that when an exciting circuit of either of the coil C1a and the coil C1b is closed, the exciting circuit of the other of the coil C1a and the coil C1b is open.
The first switch-on push-button 11 and the second switch-on push-button 12 are provided with respective normally-open contacts 11a, 12a and normally-closed contacts 11b, 12b and have the configuration such that the normally-open contact 11a is mechanically interlocked with the normally-closed contact 11b, and the normally-open contact 12a is mechanically interlocked with the normally-closed contact 12b.
Patent Document 1: Japanese Patent Application Publication No. H3-266325.
As shown in
Meanwhile, in the case of the two electromagnetic contactors which incorporate only one pole of the auxiliary contacts of the normally-closed contacts (contacts (b)), since the auxiliary contacts of the incorporated normally-closed contacts (contacts (b)) are used for the electrical interlock, when another additional circuit such as an auto-holding circuit and a signal circuit is wished to be connected, an auxiliary contact unit is required, and the problems are associated with the reduction in size due to the increase in the outer dimensions and with the increase in the device cost caused by the use of the auxiliary contact unit.
Accordingly, the present invention has been created to resolve the abovementioned unsolved problems associated with the related art, and it is an object of the present invention to provide a reversible electromagnetic contactor that makes it possible to connect an additional circuit, without using an auxiliary contact incorporated in the electromagnetic contactor, when performing mechanical and electrical interlock in order to prevent two electromagnetic contactors from being closed simultaneously, and also enables size and cost reduction.
In order to attain the abovementioned object, the present invention in one embodiment thereof provides a reversible electromagnetic contactor in which a pair of electromagnetic contactors is disposed adjacently so that respective operation indication pieces protruding on upper surfaces move in the same direction in a closing operation and a reversible unit is mounted across the upper surfaces of the pair of electromagnetic contactors, wherein the reversible unit comprises a pair of interlock plates detachably connected to the respective operation indication pieces of the pair of electromagnetic contactors and moving in the same direction as a moving direction of the operation indication pieces; a lock piece which connects the pair of interlock plates, a first normally-closed contact, a second normally-closed contact, and a unit case that accommodates the pair of interlock plates, the lock piece, and the first and second normally-closed contacts and that is mounted across the upper surfaces of the pair of electromagnetic contactors. In a closing operation of one of the electromagnetic contactors, the lock piece rotates in a first direction as one of the interlock plates moves to prevent the other of the interlock plates from moving, and maintains a release operation of the other of the electromagnetic contactors. In a closing operation of the other of the electromagnetic contactors, the lock piece rotates in a second direction, which is different from the first direction, as the other of the interlock plates moves to prevent the one of the interlock plates from moving, and maintains a release operation of the one of the electromagnetic contactors. The first normally-closed contact is connected in series in a power supply circuit to an exciting coil of the other of the electromagnetic contactors, and the one of the interlock plates comprises a first opening operation engagement portion that performs an operation of opening the first normally-closed contact when the one of the interlock plates moves. The second normally-closed contact is connected in series in a power supply circuit to an exciting coil of the one of the electromagnetic contactors, and the other of the interlock plates comprises a second opening operation engagement portion that performs an operation of opening the second normally-closed contact when the other of the interlock plates moves.
With the reversible electromagnetic contactor according to this embodiment, in the closing operation of one of the electromagnetic contactors, the lock piece rotates in the first direction as one of the interlock plates moves to prevent the other of the interlock plates from moving, and maintains the release operation of the other of the electromagnetic contactor. Further, in the closing operation of the other of the electromagnetic contactors, the lock piece rotates in the second direction, which is different from the first direction, as the other of the interlock plates moves to prevent the one of the interlock plates from moving, and maintains a release operation of the one of the electromagnetic contactors. The present invention thus enables mechanical interlock of simultaneous closing of the two electromagnetic contactors.
Further, in the closing operation of the one of the electromagnetic contactors, the first opening operation engagement portion provided at the one of the interlock plates performs the operation of opening the first normally-closed contact that is connected in series in a power supply circuit to an exciting coil of the other of the electromagnetic contactors and cuts off power supply to the exciting coil of the other of the electromagnetic contactors. In the closing operation of the other of the electromagnetic contactors, the second opening operation engagement portion provided at the other of the interlock plates performs the operation of opening the second normally-closed contact that is connected in series in a power supply circuit to an exciting coil of the one of the electromagnetic contactors and cuts off power supply to the exciting coil of the one of the electromagnetic contactors. In this manner, the reversible electromagnetic contactor according to one embodiment also enables electrical interlock to prevent simultaneous closing of the two electromagnetic contactors.
The first opening operation engagement portion and the second opening operation engagement portion provided at the pair of interlock plates that are constituent members of the mechanical interlock serve as members that directly perform the operation of opening the first normally-closed contact and the second normally-closed contact. Therefore, the electrical interlock can be simplified.
Further, the normally-closed contacts are necessary to ensure the electrical interlock, but in the reversible electromagnetic contactor according to one embodiment, the first normally closed contact and the second normally closed contact are provided inside the reversible unit. Therefore, it is not necessary to connect additional auxiliary contact units to the auxiliary contacts of the normally-open contacts incorporated by one pole thereof in the two electromagnetic contactors. Since the connection of the auxiliary contact units is thus unnecessary, the external dimensions of the reversible electromagnetic contactor are not increased and expenses on the auxiliary contact unit are unnecessary. Therefore, the contactor can be reduced in size and cost.
In the reversible electromagnetic contactor according to one embodiment, the first normally-closed contact comprises a first fixed contact and a first movable contact including a spring member, and is disposed along a moving direction of the one of the interlock plates. When the one of the interlock plates moves, the first opening operation engagement portion moving toward the first normally-closed contact elastically deforms the first movable contact in a direction withdrawing from the first fixed contact to establish an open state.
With such a reversible electromagnetic contactor according to this embodiment, a simple structure is used in which the first opening operation engagement portion provided at one of the interlock plates elastically deforms the first movable contact including a spring member and performs the operation of opening the first normally-closed contact. Therefore, the electrical interlock can be further simplified.
Further in the reversible electromagnetic contactor according to one embodiment, the first opening operation engagement portion is a protrusion engageable with the first movable contact and formed integrally with the one of the interlock plates positioned at the first normally-closed contact side.
With the reversible electromagnetic contactor according to this embodiment, the first movable contact provided at the one of the interlock plates is a zone having a protruding shape. Therefore, the production cost of the one of the interlock plates can be reduced.
In the reversible electromagnetic contactor according to one embodiment, the second normally-closed contact comprises a second fixed contact and a second movable contact including a spring member, and is disposed along a moving direction of the other of the interlock plates. When the other of the interlock plates moves, the second opening operation engagement portion moving toward the second normally-closed contact elastically deforms the second movable contact in a direction withdrawing from the first fixed contact to establish an open state.
With such a reversible electromagnetic contactor according to this embodiment, a simple structure is used in which the second opening operation engagement portion provided at the other of the interlock plates elastically deforms the second movable contact constituted by a spring member and performs the operation of opening the second normally-closed contact. Therefore, the electrical interlock can be further simplified.
Further, in the reversible electromagnetic contactor according to one embodiment, the second opening operation engagement portion is a protrusion engageable with the second movable contact and formed integrally with the other of the interlock plates positioned at the second normally-closed contact side.
With the reversible electromagnetic contactor according to this embodiment, the second movable contact provided at the other of the interlock plates is a zone having a protruding shape. Therefore, the production cost of the other of the interlock plates can be reduced.
Furthermore, in the reversible electromagnetic contactor according to one embodiment, unit connection terminals for connection to the first normally-closed contact and the second-normally closed contact are provided at an end portion of the reversible unit.
With the reversible electromagnetic contactor according to this embodiment, the operation of connecting the first normally-closed contact and the second normally-closed contact of the reversible unit to the pair of electromagnetic contactors can be facilitated.
With the reversible electromagnetic contactor in accordance with the present invention, mechanical and electrical interlock can be performed such that two electromagnetic contactors cannot be closed simultaneously. Further, the first opening operation engagement portion and the second opening operation engagement portion provided at the pair of interlock plates that are constituent members of the mechanical interlock serve as members that directly perform the operation of opening the first normally-closed contact and the second normally-closed contact. Therefore, the electrical interlock can be simplified. Further, the normally-closed contacts are necessary to ensure the electrical interlock, but in the present invention the first normally closed contact and the second normally closed contact are provided inside the reversible unit. Therefore, it is not necessary to connect additional auxiliary contact units having normally-closed contacts, for example, to the auxiliary contacts of the normally-open contacts incorporated by one pole thereof in the two electromagnetic contactors. Since the connection of the additional auxiliary contact units is thus unnecessary, the external dimensions of the reversible electromagnetic contactor are not increased and expenses on the auxiliary contact unit are unnecessary. Therefore, the contactor can be reduced in size and cost.
a) and 6(b) show the mechanism of mechanical interlock inside the reversible unit in accordance with the present invention.
The best mode (referred to hereinbelow as “embodiment”) for carrying out the reversible electromagnetic contactor in accordance with the present invention will be explained in detail hereinbelow with reference to the appended drawings. Structural components identical to those shown in
As shown in
In the electromagnetic contactor 1a shown in
In the electromagnetic contactor 1a, as shown in
Another electromagnetic contactor 1b, which is disposed adjacently to the electromagnetic contactor 1a, has the same structure, and when a coil (reference numeral 6b in
As shown in
As shown in
As shown in
As shown in
The second interlock plate 22 is a member of the same shape as the first interlock shape 21 and provided with a bent portion 22b formed by bending an elongated portion 22a in an L-like shape at one end thereof in the longitudinal direction, a pin engagement orifice 22c formed in the distal end of the bent portion 22b, a tubular connection bridge 22d formed to protrude at one surface at the other end side of the elongated portion 22a in the longitudinal direction, and a reversible unit operation indication piece 22e formed at the other surface at the other end side of the elongated portion 22a. The reversible unit operation indication piece 22e is not shown in
As shown in
The inner wall of the accommodation recess 20b2 that is opposite a third apex 23f of the lock piece 23 is formed to protrude in a peak-like form toward the third apex 23f and has a shape such that a first tilted circumferential wall 20g2 and a second tilted circumferential wall 20g3 extend at a substantially the same tilt angle toward a circumferential wall apex 20g1. The circumferential surface in the thickness direction of the third apex 23f serves as a lock surface 23g that is engaged with the first tilted circumferential wall 20g2 and the second tilted circumferential wall 20g3.
Further, as shown in
As shown in
The second normally-closed contact 25 comprises a second fixed contact 25a and a second movable contact 25b constituted by a plate spring, the second fixed contact 25a is connected to a flexible second extending connection wire 32 protruding outward of the reversible unit 20 by an inner connection wire 31 extending around the moving direction of the second interlock plate 22, and the movable contact 24b is connected to the unit connection terminal 26 by an inner connection wire 33 extending around the moving direction of the first interlock plate 21 and the second interlock plate 22.
In this case, as shown in
Further, a second opening operation engagement portion 35 of a protruding shape is also formed in the second interlock plate 22. The second opening operation engagement portion 35 engages with the second movable contact 25b when the second interlock plate 22 moves in the closing operation direction, elastically deforms the second movable contact 25b in the direction of withdrawing from the second fixed contact 25a, and sets the second normally-closed contact 25 to the open state.
Further, the reversible unit 20 is assembled by positioning the reversible unit operation indication pieces 21e, 22e of the first interlock plate 21 and the second interlock plate 22 inside the display windows 20e, 20f formed in the unit frame 20b, as shown in
With the reversible unit 20 of the above-described configuration, where the connection bridges 21d, 22d of the first interlock plate 21 and the second interlock plate 22 protruding to the outside from the openings 20c, 20d of the bottom plate 20a are connected in the fitting state thereof to the respective head portions of the operation indication pieces 4a, 4b (see
One electromagnetic contactor in accordance with the present invention corresponds to one of the reverse-rotation electromagnetic contactor 1a and the direct-rotation electromagnetic contactor 1b, the other electromagnetic contactor in accordance with the present invention corresponds to the other of the reverse-rotation electromagnetic contactor 1a and the direct-rotation electromagnetic contactor 1b, the exciting coils in accordance with the present invention correspond to coils 6a, 6b, and the unit case in accordance with the present invention corresponds to the bottom plate 20a, the unit case in accordance with the present invention corresponds to the unit frame 20b, and the interlock plates in accordance with the present invention correspond to the first interlock plate 21 and the second interlock plate 22.
The control circuit of an induction motor 37 provided with the reversible electromagnetic contactor is connected as shown in
Thus, the power-supply-side main circuit terminals 7a and the load-side main circuit terminals 7b of the two electromagnetic contactors 1a, 1b are connected in parallel, the main circuit power source (R, S, T) is connected to the power-supply-side main circuit terminals 7a, the induction motor 37 is connected by a thermal relay 36 to the load-side main circuit terminals 7b, and the coil terminals 9b, 9b of the two electromagnetic contactors 1a, 1b are connected together.
A control button 38 provided with a direct-rotation, reverse-rotation, and stop push-buttons is connected to the auxiliary contact terminals 8a, 8b of the two electromagnetic contactors 1a, 1b, one electromagnetic contactor 1a is taken as a direct-rotation electromagnetic contactor and the other electromagnetic contactor 1b is taken as a reverse-rotation electromagnetic contactor (referred to hereinbelow as direct-rotation electromagnetic contactor 1b and reverse-rotation electromagnetic contactor 1a).
Further, the first extending connection wire 29 connected to the first normally-closed contact 24 incorporated in the reversible unit 20 is connected to the coil terminal 9a of the direct-rotation electromagnetic contactor 1b, and the unit connection terminal 27 connected to the first normally-closed contact 24 is connected to the auxiliary contact terminal 8b of the direct-rotation electromagnetic contactor 1b.
Further, the second extending connection wire 32 connected to the second normally-closed contact 25 incorporated in the reversible unit 20 is connected to the coil terminal 9a of the reverse-rotation electromagnetic contactor 1a, and the unit connection terminal 26 connected to the second normally-closed contact 25 is connected to the auxiliary contact terminal 8b of the reverse-rotation electromagnetic contactor 1a.
First, the operation of the reversible unit 20 performed when the direct-rotation electromagnetic contactor 1b is in the closed state will be explained.
With the direct-rotation electromagnetic contactor 1b in the closed state, the movable contact support 4 is moved in the closing operation direction by energizing the coil 6b, and the operation indicating piece 4b, which is integrated with the movable contact support 4, moves from the right side to the left side of the display window 3b. Therefore, the second interlock plate 22 of the reversible unit 20 that is connected to the operation indication piece 4b by the connection bridge 22d moves in the closing operation direction shown by a broken line in
In this case, the second apex 23c side of the lock piece 23 of the reversible unit 20 rotates together with the second interlock plate 22 in the closing operation direction about the rotation pin 23d engaged with the pin engagement orifice 21c of the first interlock plate 21, and the lock surface 23g abuts on the second tilted circumferential wall 20g3.
Since the rotation pin 23d side of the lock piece 23 is prevented from rotating to the closing operation direction because of the abutment of the lock surface 23g on the second tilted circumferential wall 20g3, the first interlock plate 21 cannot move together with the second interlock plate 22 in the closing operation direction.
Further, when the second interlock plate 22 of the reversible unit 20 moves in the closing operation direction, the second opening operation engagement portion 35 formed at the second interlock plate 22 elastically deforms the second movable contact 25b of the second normally-closed contact 25 and withdraws the second movable contact from the second fixed contact 25a. As a result, the second normally-closed contact 25 assumes the open state. When the second normally-closed contact 25 is in the open state, an exciting circuit to the coil 6a of the reverse-rotation electromagnetic contactor 1a is in a cut-off state.
The operation of the reversible unit 20 performed when the reverse-rotation electromagnetic contactor 1a is in the closed state will be explained below.
With the reverse-rotation electromagnetic contactor 1a in the closed state, the movable contact support 4 is moved in the closing operation direction by energizing the coil 6a, and the operation indicating piece 4a, which is integrated with the movable contact support 4, moves from the right side to the left side of the display window 3a. Therefore, the first interlock plate 21 of the reversible unit 20 that is connected to the operation indication piece 4a by the connection bridge 21d moves in the closing operation direction shown by a broken line in
In this case, the first apex 23b side of the lock piece 23 of the reversible unit 20 rotates together with the first interlock plate 21 in the closing operation direction about the rotation pin 23e engaged with the pin engagement orifice 22c of the second interlock plate 22, and the lock surface 23g abuts on the first tilted circumferential wall 20g2.
Since the rotation pin 23e side of the lock piece 23 is prevented from rotating to the closing operation direction because of the abutment of the lock surface 23g on the first tilted circumferential wall 20g3, the first interlock plate 21 cannot move together with the second interlock plate 22 in the closing operation direction.
Further, when the first interlock plate 21 of the reversible unit 20 moves in the closing operation direction, the first opening operation engagement portion 34 formed at the first interlock plate 21 elastically deforms the first movable contact 24b of the first normally-closed contact 24 and withdraws the first movable contact from the first fixed contact 24a. As a result, the first normally-closed contact 24 is in the open state. When the first normally-closed contact 24 is in the open state, the exciting circuit to the coil 6b of the direct-rotation electromagnetic contactor 1b is in a cut-off state.
The effects of the reversible electromagnetic contactor provided with the reversible unit 20 of the above-described configuration will be explained below.
When the direct-rotation electromagnetic contactor 1b is in the closed state and the second interlock plate 22 of the reversible unit 20 moves in the closing operation direction, the lock piece 23 restricts the movement of the first interlock plate 21 in the closing operation direction and maintains the released state of the reverse-rotation electromagnetic contactor 1a, and mechanical interlock is performed such as to prevent the two electromagnetic contactors 1a, 1b from being closed at the same time. Further, in the second interlock plate 22 of the reversible unit 20, the second opening operation engagement portion 35 that has moved in the closing operation direction sets the second normally-closed contact 25 to the open state and the exciting circuit to the coil 6a of the reverse-rotation electromagnetic contactor 1a is cut off. Therefore, electrical interlock is performed such as to prevent the two electromagnetic contactors 1a, 1b from being closed at the same time.
Conversely, when the reverse-rotation electromagnetic contactor 1a is in the closed state and the first interlock plate 21 of the reversible unit 20 moves in the closing operation direction, the lock piece 23 restricts the movement of the second interlock plate 22 in the closing operation direction and maintains the released state of the direct-rotation electromagnetic contactor 1b, and mechanical interlock is performed such as to prevent the two electromagnetic contactors 1a, 1b from being closed at the same time. Further, in the first interlock plate 21 of the reversible unit 20, the first opening operation engagement portion 34 that has moved in the closing operation direction sets the first normally-closed contact 24 to the open state and the exciting circuit to the coil 6b of the direct-rotation electromagnetic contactor 1b is cut off. Therefore, electrical interlock is performed such as to prevent the two electromagnetic contactors 1a, 1b from being closed at the same time.
Thus, with the reversible electromagnetic contact provided with the reversible unit 20 according to the present embodiment, mechanical and electrical interlock can be performed such as to prevent the two electromagnetic contactors 1a, 1b from being closed at the same time.
The normally-closed contacts (contacts (b)) are necessary to ensure the electrical interlock, but in the present embodiment the first normally closed contact 24 and the second normally closed contact 25 are provided inside the reversible unit 20. Therefore, it is not necessary to connect auxiliary contact units for adding the normally-closed contacts (contacts (b)) to the auxiliary contacts 10 of the normally-open contacts (contacts (a)) incorporated by one pole thereof in the two electromagnetic contactors 1a, 1b. Since the auxiliary contact units are thus not connected, the external dimensions of the device are not increased and expenses on the auxiliary contact unit are unnecessary. Therefore, the device can be reduced in size and cost.
The first normally-closed contact 24 incorporated in the reversible unit 20 is configured to be open when the first opening operation engagement portion 34 provided at the first interlock plate 21 moving in the closing operation direction elastically deforms the first movable contact 24b constituted by a plate spring and withdraws the first movable contact from the first fixed contact 24a. The second normally-closed contact 25 is also configured to be open when the second opening operation engagement portion 35 provided at the second interlock plate 22 moving in the closing operation direction elastically deforms the second movable contact 25b constituted by a plate spring and withdraws the second movable contact from the fifth fixed contact 24a. Because of a simple structure in which the first normally closed contact 24 or the second normally-closed contact 25 is in an open state when the first opening operation engagement portion 34 engages with the first interlock plate 21 moving in the closing operation direction or the second opening operation engagement portion 35 engages with the second interlock plate 22 moving in the closing operation direction, the production cost of the reversible unit 20 can be reduced.
Industrial Applicability
As described hereinabove, the reversible electromagnetic contactor in accordance with the present invention is suitable for connecting other additional circuits, without using auxiliary contacts incorporated in the electromagnetic contactor, when performing mechanical and electrical interlock to prevent two electromagnetic contactors from being closed at the same time, and also enables size reduction and cost reduction.
1
a . . . reverse-rotation electromagnetic contactor; 1b . . . direct-rotation electromagnetic contactor; 2a, 2b . . . arc-extinguishing covers; 3a, 3b . . . display windows, 4a, 4h . . . operation indicating pieces; 5 . . . case; 6a, 6b . . . coils; 7a . . . power-supply-side main circuit terminal; 7b . . . load-side main circuit terminal; 8a, 8b . . . auxiliary contact terminals; 9a, 9b . . . coil terminals; 10 . . . auxiliary contact; 20 . . . reversible unit; 20a . . . bottom plate; 20b . . . unit frame; 20b2 . . . accommodation recess; 20c, 20d . . . openings; 20e, 20f . . . display windows; 20g . . . circumferential wall apex; 20g2 . . . first tilted circumferential wall; 20g3 . . . second tilted circumferential wall; 21 . . . first interlock plate; 21a . . . elongated portion; 21b . . . bent portion; 21c . . . pin engagement orifice; 21d . . . connection bridge; 21e . . . reversible unit operation indication piece; 22 . . . second interlock plate; 22a . . . elongated portion; 22b . . . bent portion; 22c . . . pin engagement orifice; 22d . . . connection bridge;
22
e . . . reversible unit operation indication piece; 23 . . . lock piece; 23a . . . plate-shaped main body; 23b . . . first apex; 23c . . . second apex; 23d, 23e . . . rotation pins; 23f . . . third apex; 23g . . . lock surface; 24 . . . first normally-closed contact; 24a . . . first fixed contact; 24b . . . first movable contact; 25 . . . second normally-closed contact; 25a . . . second fixed contact; 25b . . . second movable contact; 26, 27 . . . unit connection terminals; 28, 30, 31, 33 . . . inner connection wire; 29 . . . first extending connection wire; 32 . . . second extending connection wire; 34 . . . first opening operation engagement portion; 35 . . . second opening operation engagement portion; 36 . . . thermal relay; 37 . . . induction motor; 38 . . . control button
Number | Date | Country | Kind |
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2010-018288 | Jan 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/005586 | 9/13/2010 | WO | 00 | 6/12/2012 |
Publishing Document | Publishing Date | Country | Kind |
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WO2011/092763 | 8/4/2011 | WO | A |
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3815063 | Grunert et al. | Jun 1974 | A |
4045628 | Schienda | Aug 1977 | A |
4513181 | Boysen et al. | Apr 1985 | A |
4876418 | Fournier | Oct 1989 | A |
5164694 | DeVault et al. | Nov 1992 | A |
8378767 | Okubo et al. | Feb 2013 | B2 |
8466759 | Takaya et al. | Jun 2013 | B2 |
Number | Date | Country |
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H03-266325 | Nov 1991 | JP |
H04-99317 | Aug 1992 | JP |
H06-076719 | Mar 1994 | JP |
Number | Date | Country | |
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20120280771 A1 | Nov 2012 | US |