Clapper-type electromagnetic release for miniature circuit breaker

11302503 · 2022-04-12

Assignee

Inventors

Cpc classification

International classification

Abstract

A clapper-type electromagnetic release for a miniature circuit breaker is characterized by including an armature, a magnet yoke, a coil, an iron core, a shaft, and an armature torsion spring. The iron core is mounted on the magnet yoke. The coil is sleeved on the iron core. The armature is mounted on the shaft and can rotate around the shaft. The armature torsion spring is mounted on the shaft. The armature torsion spring presses against the armature, so that the armature can be reset. In the clapper-type electromagnetic release for a miniature circuit breaker, by the rotation of the armature, the armature is not closed in absorption and the circuit breaker mechanism is not tripped within a specified current range; and when the specified current range is exceeded, the armature is closed in absorption and the armature claps a lock, so that the circuit breaker mechanism is tripped.

Claims

1. A clapper-type electromagnetic release for a miniature circuit breaker, comprising an armature, a magnet yoke, a coil, an iron core, a shaft and an armature torsion spring, wherein the iron core is mounted on the magnet yoke, the coil is sleeved on the iron core, the armature is mounted on the shaft and is rotatable around the shaft, the armature torsion spring is mounted on the shaft, and the armature torsion spring presses against the armature, so as to make the armature reset, wherein the magnet yoke comprises a pair of magnet yoke plates which are disposed face to face, fixation plates protrude from inner side surfaces of the respective magnet yoke plates, the fixation plates are respectively provided therein with fixing holes, and the fixing holes are mounted on a fixing post on a housing to fix the magnet yoke.

2. The clapper-type electromagnetic release for a miniature circuit breaker according to claim 1, wherein two ends of the iron core are respectively mounted in installation holes in the magnet yoke plates, the two ends of the iron core are steps, and step surfaces of the steps abut against the respective magnet yoke plates.

3. The clapper-type electromagnetic release for a miniature circuit breaker according to claim 1, wherein an inner side surface of the armature extends out of the mounting plates, shaft installation holes are respectively provided in the mounting plates, two ends of the shaft are respectively mounted in the shaft installation holes, the armature torsion spring is mounted on the shaft and located between the mounting plates, and the armature torsion spring has one end lapped on the housing of the circuit breaker, and the other end lapped on a lower surface of the armature.

4. The clapper-type electromagnetic release for a miniature circuit breaker according to claim 1, wherein the armature is a flat plate, upper surfaces of the magnet yoke plates are flat surfaces corresponding to the flat plate, and a front end of the armature is provided with a tripping boss.

5. The clapper-type electromagnetic release for a miniature circuit breaker according to claim 1, wherein the shaft is fixedly mounted on the housing of the circuit breaker.

6. The clapper-type electromagnetic release for a miniature circuit breaker according to claim 3, wherein the shaft is fixedly mounted on the housing of the circuit breaker.

Description

BRIEF DESCRIPTION OF DRAWINGS

(1) FIG. 1 is a structural schematic view of Embodiment 1 of the present disclosure;

(2) FIG. 2 is an exploded view of Embodiment 1 of the present disclosure;

(3) FIG. 3 is a diagram showing a state in which Embodiment 1 of the present disclosure is not clapped;

(4) FIG. 4 is a diagram showing a state in which Embodiment 1 of the present disclosure is clapped;

(5) FIG. 5 is a diagram showing a state in which Embodiment 1 of the present disclosure is not clapped in a circuit breaker;

(6) FIG. 6 is a diagram showing a state in which Embodiment 1 of the present disclosure is clapped in the circuit breaker;

(7) FIG. 7 is a structural schematic view of Embodiment 2 of the present disclosure;

(8) FIG. 8 is a schematic front view of Embodiment 2 of the present disclosure;

(9) FIG. 9 is a structural schematic view of Embodiment 3 of the present disclosure; and

(10) FIG. 10 is a structural schematic view of Embodiment 4 of the present disclosure.

DETAILED DESCRIPTION OF EMBODIMENTS

(11) The present disclosure is further described below in connection with accompanying drawings and embodiments.

Embodiment 1

(12) As shown in FIG. 1 and FIG. 2, a clapper-type electromagnetic release for a miniature circuit breaker includes an armature 1, a magnet yoke 2, a coil 3, an iron core 4, a shaft 5 and an armature torsion spring 6, wherein the iron core 4 is mounted on the magnet yoke 2, the coil 3 is sleeved on the iron core 4, the armature 1 is mounted on the shaft 5 and is rotatable around the shaft 5, the armature torsion spring 6 is mounted on the shaft 5, and the armature torsion spring 6 presses against the armature 1, so that the armature can be reset.

(13) Specifically, in the present embodiment, the magnet yoke 2 includes a pair of magnet yoke plates 201, 201′ which are disposed face to face, fixation plates 201a, 201a′ respectively protrude from inner side surfaces of the magnet yoke plates 201, 201′, the fixation plates 201a, 201a′ are respectively provided therein with fixing holes 201a01, 201a01′, and the fixing holes 201a01, 201a01′ are provided on a fixing post 701 on a housing 7 to fix the magnet yoke 2. Two ends of the iron core 4 are respectively mounted in installation holes 201b, 201b′ in the magnet yoke plates 201, 201′, the two ends of the iron core 4 are steps 401, wherein step surfaces of the steps 401 abut against the respective magnet yoke plates 201, 201′. An inner side surface of the armature 1 extends out of the mounting plates 101, 101′, shaft installation holes 101a, 101a′ are respectively provided in the mounting plates 101, 101′, wherein two ends of the shaft 5 are respectively mounted in the shaft installation holes 101a, 101a′, and two ends of the shaft 5 pass through the shaft installation holes 101a, 101a′ and then are fixedly mounted on the housing 7. The armature torsion spring 6 is mounted on the shaft 5 and located between the mounting plates 101, 101′, and the armature torsion spring 6 has one end lapped on the housing 7, and the other end lapped on a lower surface of the armature 1.

(14) The armature 1 is a flat plate, wherein upper surfaces of the magnet yoke plates 201, 201′ are flat surfaces corresponding to the flat plate, and a front end of the armature 1 is provided with a tripping boss 102.

(15) As shown in FIG. 3 and FIG. 5, when a relatively small current passes through the coil 3 of the electromagnetic release, an attraction force between the armature 1 and the magnet yoke 2 of the electromagnetic release is smaller than a counter force from the armature torsion spring 6, then the armature 1 is kept in a static state under the action of the armature torsion spring 6, and the armature 1 does not flap the lock, so that the circuit breaker is not tripped;

(16) As shown in FIG. 4 and FIG. 6, when the circuit breaker is closed, and when the current passing through the coil 3 is greater than a certain value, the attraction force between the armature 1 and the magnet yoke 2 of the electromagnetic release is greater than the counter force from the armature torsion spring 6, then the armature 1 overcomes the counter force from the armature torsion spring 6 under the action of the attraction force to rotate around the shaft 5 towards the direction of the magnet yoke 2, and flaps the lock so that the circuit breaker is tripped.

(17) After the circuit breaker is open, the armature 1 will restore to an unclapped state under the action of the armature torsion spring 6.

Embodiment 2

(18) As shown in FIG. 7 and FIG. 8, the iron core 4 is in a rectangular shape, wherein two ends of the iron core 4 are mounted in corresponding rectangular holes 201c, 201c′ in the magnet yoke plates 201, 201′, and the two ends of the iron core 4 pass through the rectangular holes 201c, 201c′ and then are fixedly mounted on the housing 7. A working process of the present embodiment is the same as Embodiment 1 and will not be further illustrated herein.

Embodiment 3

(19) As shown in FIG. 9, the iron core 4 can also form an integral U-shaped structure with the magnet yoke plates 201, 201′, and the coil 3 is mounted on a bottom plate of the U-shaped structure.

Embodiment 4

(20) As shown in FIG. 10, the iron core 4 can also form an integral L-shaped magnet yoke iron core with one of the magnet yoke plates 201, 201′, the armature 1 forms an integral L shape with the other one of the magnet yoke plates 201, 201′, and the coil 3 is mounted on a bottom plate of the L-shaped magnet yoke iron core.

(21) The structures, ratios, sizes, quantities and so on depicted in the accompanying drawings of the present embodiment are only used to match the contents disclosed in the description, to be understood and read by those familiar with the art, rather than being used for limiting conditions under which the present disclosure can be implemented, therefore, they do not have technical significance, and any structural modifications, changes of ratio relations, or adjustments of sizes, without affecting the efficacy and the purpose that can be produced and achieved by the present disclosure, shall still fall within the scope that can be covered by the technical contents disclosed in the present disclosure. Meanwhile, wordings such as “upper”, “lower”, “left”, “right”, “middle”, “clockwise”, and “counterclockwise” referred to in the present description are also used for clarity of description only, rather than being used to limit the implementable scope of the present disclosure, and changes or adjustment of the relative relationship therebetween, without substantial technical changes, also should be considered as the implementable scope of the present disclosure.