1. Field of the Invention
The present invention relates to the electromagnetic release field, more particularly, relates to an adjustable electromagnetic release for large capacity circuit breakers.
2. The Related Art
Circuit breakers are electrical apparatuses for cutting off fault current such as overload current or short circuit current in circuits so as to protect circuit loads. The circuit breakers cut off the short circuit current via releases. The releases for cutting off short circuit current mainly include electromagnetic releases and electronic releases.
Usually, the releases are required to have different protection scopes in different working environments. Such requirements mean that the releases shall have adjustment abilities so as to satisfy different scales of short circuit current.
The present invention discloses an adjustable electromagnetic release with single variable adjustment ability.
According to an embodiment of the present invention, an adjustable electromagnetic release is disclosed. The adjustable electromagnetic release comprises: an armature, a magnetic yoke, a push rod, a conductor, a blocking piece, an adjusting piece, a shaft, an adjusting screw, a bracket, an adjusting rod and a torsion spring. The magnetic yoke is fixed on the bracket, the conductor passes through the bracket and the magnetic yoke and is mounted on the bracket. The shaft is mounted on the top of the bracket and is above the conductor, the shaft is rotatable about the bracket. The push rod is mounted on the shaft, the push rod rotates with the shaft about the bracket, the armature is fixed on the push rod, the armature and the magnetic yoke are spaced apart. Two adjusting mechanisms are mounted on the shaft, the two adjusting mechanisms are mounted on both sides of the push rod, and between the push rod and the bracket. The torsion spring is surrounded on the shaft, the torsion spring is positioned within the adjusting mechanism. One pin of the torsion spring is connected to the armature, the adjusting mechanism contacts with the push rod. The adjusting rod is provided with a plurality of adjusting surfaces, the adjusting mechanism contacts with the adjusting surfaces, the adjusting rod is able to move along the longitudinal direction. The spring force of the torsion spring enable the push rod rotates towards a direction which makes the armature and the magnetic yoke separate. When large current passes through the conductor, the armature and the magnetic yoke attract each other under the electromagnetic force. When the electromagnetic force is larger than the spring force, the push rod rotates towards a direction which makes the armature and the magnetic yoke close, the push rod strikes the release mechanism to release and cut off the circuit. The electromagnetic force disappears, the push rod resets under the spring force of the torsion spring.
According to an embodiment, the two adjusting mechanisms are disposed on both ends of the shaft respectively, each adjusting mechanism comprises a blocking piece and an adjusting piece. The blocking piece comprises a first plate and a second plate which are perpendicular to each other. The first plate is provided with an obround hole, the second plate is provided with a first shaft hole. The adjusting piece comprises a first side wall, a second side wall and a connecting wall which connects the first side wall and the second side wall. The first side wall has an extension section extending upwards, the first side wall is provided with a second shaft hole. A first arm is provided at the bottom of the extension section, the first arm contacts with the push rod and pushes the push rod. A second arm is provided at the top of the extension section. The second side wall is provided with a third shaft hole. The second shaft hole and the third shaft hole align to each other. The connecting wall is provided with a threaded hole.
According to an embodiment, the blocking piece is assembled with the adjusting piece, the second plate of the blocking piece is close to the inner side of the second side wall of the adjusting piece, the first shaft hole aligns to the third shaft hole, the shaft passes through the first shaft hole, the second shaft hole and the third shaft hole. The adjusting screw passes through the obround hole and the threaded hole, one end of the adjusting screw is screwed on the threaded hole, the adjusting screw is able to move in the obround hole, the blocking piece is able to rotate about the adjusting piece.
According to an embodiment, the outer side of the second side wall of the adjusting piece is close to the bracket, the outer side of the first side wall of the adjusting piece is close to the push rod.
According to an embodiment, the torsion spring is positioned between the second plate of the blocking piece and the first side wall of the adjusting piece. One pin of the torsion spring is connected to the inner side of the blocking piece, the other pin of the torsion spring is connected to a lower portion of the armature.
According to an embodiment, the adjusting rod is provided with a plurality of adjusting surfaces, the plurality of adjusting surfaces are arranged in pairs and are inclined. Two second arms of two adjusting pieces in two adjusting mechanisms are pressed on a pair of the adjusting surfaces.
According to an embodiment, the adjusting rod is provides with a gear rack, the gear rack enables the movement of the adjusting rod along the longitudinal direction.
When adjusting an instantaneous electromagnetic release rate of the electromagnetic release, the adjustable electromagnetic release of the present invention only adjusts the air gap as a single variable. The adjustable electromagnetic release has a small reaction spring force, a small volume and requires a small adjusting force.
The above and other features, natures, and advantages of the invention will be apparent by the following description of the embodiments incorporating the drawings, wherein,
The present invention discloses an adjustable electromagnetic release. As shown in
As shown in
As shown in
The torsion spring 120 is positioned between the second plate 152 of the blocking piece 105 and the first side wall 161 of the adjusting piece 106. One pin of the torsion spring 120 is connected to the inner side of the blocking piece 105, the other pin of the torsion spring 120 is connected to a lower portion of the armature 101.
As shown in
The spring force of the torsion spring 120 enables the push rod 103 to rotate towards a direction which makes the armature 101 and the magnetic yoke 102 separate. When large current passes through the conductor, the armature 101 and the magnetic yoke 102 attract each other under the electromagnetic force. When the electromagnetic force is larger than the spring force, the push rod 103 rotates towards a direction which makes the armature 101 and the magnetic yoke 102 close. The push rod 103 strikes the release mechanism to release and cut off the circuit, the electromagnetic force disappears, the push rod 103 resets under the spring force of the torsion spring 120.
The working principle of the adjustable electromagnetic release is described hereafter. The torsion spring 120 is surrounded on the shaft 107 and positioned between the adjusting piece 106 and the blocking piece 105. One pin of the torsion spring 120 is connected to a lower portion of the armature 101 and the other pin of the torsion spring 120 is connected to the inner side of the blocking piece 105. The armature 101 and the push rod 103 may be regarded as an entirety as the armature 101 and the push rod 103 are relatively fixed. The armature 101 and the push rod 103 receive a torque from the torsion spring 120. The other pin of the torsion spring 120 is connected to the inner side of the blocking piece 105, so the blocking piece 105 receives a torque which makes the blocking piece 105 rotate outward. The torque was transmitted to the adjusting screw 108 from the blocking piece 105 through the obround hole 111. The blocking piece 105 is close against and pressed on the adjusting screw 108. The adjusting screw 108 is connected to the adjusting piece 106 through threaded connection, so the adjusting screw 108 and the adjusting piece 106 may be regarded as an entirety. When the adjusting screw 108 is fixed to a particular position, the adjusting piece 106 and the blocking piece 105 may be regarded as an entirety as well. The adjusting piece 106 and the blocking piece 105 form the adjusting mechanism. The adjusting mechanism as a whole receives a torque from the torsion spring 120. The adjusting piece 106 and the push rod 103 are arranged on a same shaft, the shaft 107. The adjusting piece 106 and the push rod 103 have the same rotation center, but the torque direction of the adjusting piece 106 and the push rod 103 are opposite. The first arm 112 of the adjusting piece 106 contacts with the push rod 103 and make the adjusting piece 106 and the push rod 103 to be an entirety. The spring force of the torsion spring 120 becomes an internal force and makes the entirety relatively fixed. The two adjusting pieces, the two blocking pieces and the two torsion springs are bilateral symmetric, respectively.
When the magnetic yoke 102 is mounted on the bracket 109, under the function of a reaction spring (the reaction spring is not shown in the drawings), the adjusting mechanism as a whole is pressed on the adjusting rod 110. As shown in
When large current passes through the conductor 104, the armature 101 and the magnetic yoke 102 attract each other under the function of the magnetic field. The armature 101 and the push rod 103 rotate about the shaft 107 towards a direction close to the magnetic yoke 102. The adjusting piece 106 follows the armature 101 to rotate as the adjusting piece 106 is pressed on the adjusting rod 110. One pin of the torsion spring 120 is pressed down by the armature 101 and the other pin of the torsion spring 120 is fixed in the adjusting mechanism. The spring force of the torsion spring 120 forms a reaction force to the armature 101. The armature 101 rotates under the electromagnetic attraction force and drives the push rod 103 to strike the release mechanism, so as to break the circuit breaker. When the circuit breaker is open, the electromagnetic force disappears and the torsion spring 120 drives the armature 101 and the push rod 103 to reset.
The initial reaction force to the armature 101 is generated by the torsion force of the torsion spring 120. The torsion force of the torsion spring 120 may be adjusted via the adjustment of the adjusting screw 108. By adjusting the adjusting screw 108 to change the screwed length which is screwed into the adjusting piece 106, the blocking piece 105 may rotate and drive the pin of the torsion spring 120 to rotate, then the initial reaction force of the electromagnet is adjusted. While adjusting the air gap of the electromagnet, the reaction force remains unchanged. Therefore, only one variable is adjusted and accuracy of the adjustment is significantly increased.
When the adjusting rod 110 is moving, the adjusting rod 110 only receives a friction force from the adjusting piece 106. The friction force is associated with the spring force of the spring which is in contact with the magnetic yoke. As the spring force is only a “pre pressure” which makes the adjusting piece pressed on the adjusting rod, the spring force may be a relatively small force, thus the friction force may also be small, which means only a small adjusting force is required to adjust the adjusting rod 110. A small adjusting force may bring great convenience to the users and avoid potential damages to the adjusting components. The gear rack 116 shown in
When adjusting an instantaneous electromagnetic release rate of the electromagnetic release, the adjustable electromagnetic release of the present invention only adjusts the air gap as a single variable. The adjustable electromagnetic release has a small reaction spring force, a small volume and requires a small adjusting force.
The above embodiments are provided to those skilled in the art to realize or use the invention, under the condition that various modifications or changes being made by those skilled in the art without departing the spirit and principle of the invention, the above embodiments may be modified and changed variously, therefore the protection scope of the invention is not limited by the above embodiments, rather, it should conform to the maximum scope of the innovative features mentioned in the Claims.
Number | Date | Country | Kind |
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2013 1 0438966 | Sep 2013 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2014/086922 | 9/19/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2015/043424 | 4/2/2015 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5870008 | Pannenborg et al. | Feb 1999 | A |
8040209 | Faik | Oct 2011 | B2 |
9425013 | Augusta | Aug 2016 | B2 |
20040251994 | Tobin et al. | Dec 2004 | A1 |
20080122563 | Song | May 2008 | A1 |
Number | Date | Country |
---|---|---|
1819096 | Aug 2006 | CN |
201084663 | Jul 2008 | CN |
102543607 | Jul 2012 | CN |
102779698 | Nov 2012 | CN |
202678240 | Jan 2013 | CN |
203103245 | Jul 2013 | CN |
2011-238550 | Nov 2011 | JP |
Number | Date | Country | |
---|---|---|---|
20160217959 A1 | Jul 2016 | US |