A trip mechanism and circuit breaker
By optimizing the tripping mechanism of the circuit breaker, and utilizing the design of the rotating connection points of the bracket, locking element, and tripping element with an included angle of less than 90° and the elastic element, the problem of the large size of traditional circuit breakers has been solved, achieving miniaturization of the circuit breaker and simplification of transmission, thereby improving production efficiency.
Patent Information
- Application Number
- CN202111555155.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-17
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2041-12-17
AI Technical Summary
Traditional circuit breakers are large in size, making it difficult to meet the requirements for miniaturization, especially in small distribution boxes where the operating space for the control handle is limited.
A tripping mechanism is designed, including a bracket, a locking member and a tripping member. By optimizing the angle of the rotating connection point and the setting of the elastic member, the transmission structure is simplified, the occupied space is reduced, and the miniaturization of the circuit breaker is achieved.
The circuit breaker is reduced in size, the transmission action is simplified, and the production efficiency and automated production capacity are improved.
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Figure CN116266521B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of electrical switches, and in particular to a tripping mechanism and a circuit breaker. Background Art
[0002] With the rapid development of the social economy and urban construction, people's living standards and housing conditions have significantly improved, leading to a more comprehensive understanding of electricity safety. To increase electricity safety, circuit breakers are often installed in power circuits. Circuit breakers are switching devices that can close, carry, and interrupt current under normal circuit conditions, and close, carry, and interrupt current under abnormal circuit conditions within a specified timeframe. When faults such as leakage, overload, and short circuit occur in the system, circuit breakers can quickly disconnect the faulty circuit or shut off the entire power supply to prevent the fault from escalating and causing significant economic losses and casualties.
[0003] The distribution box is the last level of power distribution facilities in the power supply system, which is used to realize the distribution and protection of electric energy. It is embedded in the wall and has a small size. The traditional circuit breaker is convex in shape as a whole, and its wiring terminals usually use screw wiring. The circuit breaker itself is relatively high, and is limited by the wiring direction, so the height required for wiring installation is also very large. This type of circuit breaker using screw wiring will occupy the operating space of the operating handle of the circuit breaker. In order to ensure that the operating handle has enough space for movement, the overall size of the circuit breaker will inevitably increase. Smaller distribution boxes (for example, 86 base boxes, 118 base boxes, 120 base boxes, etc. are set as distribution boxes) have very high requirements for the miniaturization of the circuit breakers set therein. This type of circuit breaker will be difficult to meet the needs due to its own height defects. Therefore, a more miniaturized circuit breaker is needed to meet market demand. Summary of the Invention
[0004] The object of the present invention is to provide a tripping mechanism and a circuit breaker, which can solve the problem of large volume of traditional circuit breakers.
[0005] The embodiment of the present invention is achieved as follows:
[0006] In one aspect of an embodiment of the present invention, a tripping mechanism is provided, comprising a bracket, a latch, and a tripping member, wherein the bracket, the latch, and the tripping member are respectively disposed within a circuit breaker housing; the bracket is rotationally connected to the housing, the latch, the tripping member, and the moving contact of the circuit breaker, respectively; the latch is configured to engage with the tripping member; the tripping member is transmission-connected to a handle of the circuit breaker; the handle is driven through the bracket, the latch, and the tripping member to jointly drive the moving contact and the static contact of the circuit breaker to close or open; wherein a line connecting the rotational connection point of the bracket and the housing and the rotational connection point of the tripping member and the bracket is in a first direction, a line connecting the rotational connection point of the bracket and the housing and the rotational connection point of the moving contact and the bracket is in a second direction, and the angle between the first and second directions is less than 90°. This tripping mechanism can solve the problem of the large size of conventional circuit breakers.
[0007] Optionally, the bracket is respectively provided with a first rotating shaft, a second rotating shaft and a third rotating shaft, the bracket is rotatably connected to the shell through the first rotating shaft, the locking member is rotatably connected to the bracket through the first rotating shaft, and the locking member is located between the bracket and the shell, the jumping member is rotatably connected to the bracket through the second rotating shaft, and the moving contact is rotatably connected to the bracket through the third rotating shaft.
[0008] Optionally, the locking member and the jumping member are respectively arranged on the same side of the bracket, and the moving contact is arranged on the other side of the bracket.
[0009] Optionally, the tripping mechanism further includes a first elastic member sleeved on the first rotating shaft, one end of the first elastic member abuts against the locking member, and the other end abuts against the bracket, and the first elastic member is used to provide a reset force for the movement of the locking member relative to the bracket; the tripping mechanism further includes a second elastic member sleeved on the first rotating shaft, one end of the second elastic member abuts against the moving contact, and the other end abuts against the housing, and the second elastic member is used to provide a reset force for the movement of the moving contact relative to the housing.
[0010] Optionally, a avoidance hole is further provided on the bracket, and the avoidance hole is located between the first rotating shaft and the third rotating shaft. One end of the second elastic member passes through the avoidance hole and abuts against the moving contact, so that the moving contact abuts against the bracket.
[0011] Optionally, the tripping mechanism also includes a transmission member rotatably arranged in the shell, the handle is connected to the jumper member through the transmission member, the transmission member and the jumper member are connected through a first connecting rod, and the handle is connected to the transmission member through a gear or a second connecting rod; a mounting shaft is provided on the transmission member, and the transmission member is rotatably connected to the shell through the mounting shaft, and the tripping mechanism also includes a third elastic member sleeved on the mounting shaft, one end of the third elastic member abuts against the transmission member, and the other end abuts against the shell, and the third elastic member is used to provide a reset force for the movement of the transmission member relative to the shell.
[0012] Another aspect of the present invention provides a circuit breaker comprising a housing, a handle disposed within the housing, a movable contact, a stationary contact, an input terminal, an output terminal, and the aforementioned tripping mechanism, wherein the input terminal and the output terminal are respectively configured to be plugged into a distribution box, and the handle is driven by the tripping mechanism to close or open the movable contact and the stationary contact. The input terminal and the output terminal are spaced apart on the same side of the housing, and the handle is disposed on a side of the housing opposite the input terminal. When the circuit breaker is closed, the side of the handle facing away from the housing is flush with the side of the housing opposite the input terminal. This tripping mechanism can address the problem of the large size of conventional circuit breakers.
[0013] Optionally, the circuit breaker also includes an electromagnetic release, the coil of the electromagnetic release is connected to the end of the moving contact away from the static contact through a first flexible connecting wire, a first protrusion is provided on the locking piece of the tripping mechanism, and the electromagnetic release corresponds to the position of the tripping mechanism. When the current is short-circuited, the top rod of the electromagnetic release pushes the first protrusion to drive the locking piece and the tripping piece of the tripping mechanism to release, so that the moving contact and the static contact are disconnected.
[0014] Optionally, the circuit breaker further includes a thermal release located on a side of the electromagnetic release away from the handle, the fixed end of the thermal release being connected to the output terminal via a second flexible connecting wire, the movable end of the thermal release being connected to an end of the coil of the electromagnetic release away from the moving contact, a second protrusion being further provided on the locking member, the thermal release corresponding to the position of the tripping mechanism, when the current is overloaded, the movable end of the thermal release pushes the second protrusion to drive the locking member and the tripping member of the tripping mechanism to release, so as to open the moving contact and the static contact.
[0015] Optionally, the circuit breaker further includes an arc extinguishing mechanism located on a side of the thermal release away from the electromagnetic release, the arc extinguishing mechanism including a first arc striking plate and a second arc striking plate arranged opposite to each other and an arc extinguishing chamber located between the first arc striking plate and the second arc striking plate, the inlet of the arc extinguishing chamber being arranged opposite to the moving contact and the static contact, and the outlet of the arc extinguishing chamber being toward a side close to the output terminal and being electrically insulated from the output terminal.
[0016] The beneficial effects of the embodiments of the present invention include:
[0017] The tripping mechanism includes a bracket, a locking member and a jumping member, which are respectively arranged in the housing of the circuit breaker, and the bracket is rotationally connected to the housing, the locking member, the jumping member and the moving contact of the circuit breaker respectively, the locking member is used to engage with the jumping member, and the jumping member is transmission-connected to the handle of the circuit breaker, and the handle is driven by the bracket, the locking member and the jumping member to drive the moving contact and the static contact of the circuit breaker to close or open; wherein, the connection direction of the rotation connection point between the bracket and the housing and the rotation connection point between the jumping member and the bracket is a first direction, and the connection direction of the rotation connection point between the bracket and the housing and the rotation connection point between the moving contact and the bracket is a second direction, and the angle between the first direction and the second direction is less than 90°, which can make the specific structure and installation coordination of the tripping mechanism simpler, thereby making the occupied space of the tripping mechanism smaller and the transmission action simpler, which helps to realize the miniaturization of the circuit breaker and is conducive to the realization of automated production. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.
[0019] Figure 1 A cross-sectional view of a circuit breaker provided in an embodiment of the present invention in a manually closed state;
[0020] Figure 2 A cross-sectional view of a circuit breaker provided in an embodiment of the present invention in a manually opened state;
[0021] Figure 3 A cross-sectional view of a circuit breaker provided in an embodiment of the present invention in a fault-tripped state;
[0022] Figure 4 A schematic structural diagram of a locking member and a jumper provided in an embodiment of the present invention in a fastened state;
[0023] Figure 5A schematic structural diagram of a locking member and a jumper provided in an embodiment of the present invention in an unlocked state;
[0024] Figure 6 A schematic structural diagram of a bracket of a tripping mechanism provided in an embodiment of the present invention;
[0025] Figure 7 A schematic structural diagram of a moving contact of a circuit breaker provided in an embodiment of the present invention;
[0026] Figure 8 A schematic structural diagram of a circuit breaker provided in an embodiment of the present invention.
[0027] Icons: 100-tripping mechanism; 110-bracket; 111-first rotating shaft; 112-second rotating shaft; 113-third rotating shaft; 114-avoidance hole; 120-locking member; 121-first protrusion; 122-second protrusion; 130-jumping member; 140-first elastic member; 150-second elastic member; 160-transmission member; 161-first connecting rod; 162-gear; 170-third elastic member; 200-circuit breaker; 210-housing; 211-adjusting member; 220- Handle; 230-moving contact; 231-contact part; 232-welding part; 233-mounting hole; 234-connecting hole; 235-yield hole; 240-static contact; 250-input terminal; 260-output terminal; 270-electromagnetic release; 271-first flexible connecting wire; 280-thermal release; 281-second flexible connecting wire; 290-arc extinguishing mechanism; 291-first arc-starting plate; 292-second arc-starting plate; 293-arc extinguishing chamber; A-first direction; B-second direction. DETAILED DESCRIPTION
[0028] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings herein can be arranged and designed in various different configurations.
[0029] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the invention as claimed, but rather merely represents selected embodiments of the present invention. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort shall fall within the scope of protection of the present invention.
[0030] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings.
[0031] In the description of the present invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer" and the like indicate positions or locations based on the positions shown in the accompanying drawings, or the positions or locations in which the inventive product is typically placed when in use. These terms are intended solely to facilitate the description of the present invention and to simplify the description, and are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and "third," etc., are used solely to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0032] Furthermore, terms such as "horizontal" and "vertical" do not necessarily mean that a component must be absolutely horizontal or overhanging, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but rather that it can be slightly tilted.
[0033] In the description of the present invention, it should also be noted that, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections, indirect connections through an intermediate medium, or connections within two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.
[0034] Please refer to Figures 1 to 8 The present invention provides a circuit breaker 200, comprising a housing 210, a handle 220, a movable contact 230, a stationary contact 240, an input terminal 250, an output terminal 260, and a trip mechanism 100 disposed within the housing 210. The input terminal 250 and the output terminal 260 are respectively configured to be plugged into a distribution box. The handle 220 is driven by the trip mechanism 100 to drive the movable contact 230 and the stationary contact 240 to close or open the circuit breaker. The input terminal 250 and the output terminal 260 are spaced apart and disposed on the same side of the housing 210. The handle 220 is disposed on a side of the housing 210 opposite the input terminal 250. When the circuit breaker 200 is closed, the side of the handle 220 facing away from the housing 210 is flush with the side of the housing 210 opposite the input terminal 250. The trip mechanism 100 can solve the problem of the large size of conventional circuit breakers 200.
[0035] It should be noted that if Figures 1 to 3As shown, the housing 210 may be two sub-housings 210 disposed opposite each other. The two sub-housings 210 together enclose a space for accommodating various components, thereby improving the simplicity of the circuit breaker 200 during the manufacturing process. In order to plug the circuit breaker 200 into the distribution box, the circuit breaker 200 also includes input terminals 250 and output terminals 260 disposed within the housing 210. For example, the input terminals 250 and the output terminals 260 may be pluggable terminals, so that the input terminals 250 can be plugged into the input terminal block within the distribution box, and the output terminals 260 can be plugged into the output terminal block within the distribution box, thereby connecting the circuit breaker 200 to a power circuit with a load.
[0036] In order to realize the breaking function of the circuit breaker 200, as Figures 1 to 3 As shown, the circuit breaker 200 further includes a handle 220, a movable contact 230, a stationary contact 240, and a trip mechanism 100 disposed within the housing 210. The handle 220 is rotatably connected to the housing 210 so that the handle 220 can rotate relative to the housing 210. The handle 220 is transmission-connected to the movable contact 230 via the trip mechanism 100. The stationary contact 240 is fixedly connected to the housing 210. The movable contact 230 is connected to the output terminal 260, and the stationary contact 240 is connected to the input terminal 250. When driven by an external force, the handle 220 can drive the trip mechanism 100 to move, thereby driving the movable contact 230 toward or away from the stationary contact 240, thereby closing or opening the circuit breaker 200. The handle 220 is transmission-connected to the movable contact 230 via the trip mechanism 100, and a transmission relationship can be established at all times or only when needed.
[0037] Specifically, if Figure 1 and Figure 2 As shown, when the moving contact 230 moves toward the side close to the static contact 240 so that the moving contact 230 comes into contact with the static contact 240, the circuit breaker 200 can be closed. At this time, the conductive circuit formed by the input terminal block, the input terminal 250, the static contact 240, the moving contact 230, the output terminal 260 and the output terminal block can be turned on; when the moving contact 230 moves toward the side away from the static contact 240 so that the moving contact 230 is out of contact with the static contact 240, the circuit breaker 200 can be opened. At this time, the conductive circuit formed by the input terminal block, the input terminal 250, the static contact 240, the moving contact 230, the output terminal 260 and the output terminal block can be turned off, thereby realizing the switching of the on state and the off state of the load through the circuit breaker 200.
[0038] In addition, the input terminal 250 and the output terminal 260 are respectively arranged at intervals on the same side of the housing 210 (eg Figures 1 to 3As shown, the input terminals 250 and the output terminals 260 are respectively disposed below the housing 210, thereby achieving the same-side input and same-side output function. This simplified description is based on the conduction direction of the load circuit (or, in other words, the side of the housing 210 where the input terminals 250 and the output terminals 260 are disposed is regarded as the rear end), thus forming a back-in, back-out wiring configuration, thereby improving the convenience of wiring when the circuit breaker 200 is plugged into the distribution box. In addition, the input terminals 250 and the output terminals 260 are arranged in a spaced-apart manner, which can increase the spacing between the incoming and outgoing lines and prevent interference between the two lines.
[0039] At the same time, if Figure 1 and Figure 2 As shown, the handle 220 is disposed on the side of the housing 210 opposite the input terminal 250. When the circuit breaker 200 is in the manual closing state, the side of the handle 220 facing away from the housing 210 is flush with the side of the housing 210 facing the input terminal 250. When the circuit breaker 200 is in the manual opening state, the side of the handle 220 facing away from the housing 210 and the side of the housing 210 facing the input terminal 250 form an angle. While ensuring that the handle 220 can drive the movable contact 230 and the static contact 240 to close or open the circuit breaker via the trip mechanism 100, the smaller the angle, the smaller the operating space of the handle 220, thereby reducing the size of the circuit breaker 200. For example, the angle can be less than 30°.
[0040] like Figure 4 and Figure 5As shown, the trip mechanism 100 includes a bracket 110, a lock 120, and a trip 130. The bracket 110, the lock 120, and the trip 130 are respectively disposed in a housing 210 of a circuit breaker 200. The bracket 110 is rotatably connected to the housing 210, the lock 120, the trip 130, and the moving contact 230 of the circuit breaker 200. The lock 120 is used to engage with the trip 130. The trip 130 is transmission-connected to the handle 220 of the circuit breaker 200. The handle 220 is driven by the bracket 110, the lock 120, and the trip 130 to drive the moving contact 230 and the static contact 240 of the circuit breaker 200 to close or open. The direction of the line connecting the rotation connection point between the bracket 110 and the housing 210 and the rotation connection point between the tripping member 130 and the bracket 110 is the first direction A, and the direction of the line connecting the rotation connection point between the bracket 110 and the housing 210 and the rotation connection point between the moving contact 230 and the bracket 110 is the second direction B. The angle between the first direction A and the second direction B is less than 90°. For example, the angle can be 30°, which can make the specific structure and installation coordination of the tripping mechanism 100 simpler, thereby making the tripping mechanism 100 occupy smaller space and the transmission action simpler, which helps to realize the miniaturization of the circuit breaker 200 and is conducive to the realization of automated production.
[0041] Specifically, if Figures 4 to 6 As shown, the bracket 110 is respectively provided with a first rotating shaft 111, a second rotating shaft 112, and a third rotating shaft 113. The bracket 110 is rotatably connected to the housing 210 via the first rotating shaft 111. The locking member 120 is rotatably connected to the bracket 110 via the first rotating shaft 111, and the locking member 120 is located between the bracket 110 and the housing 210. The tripping member 130 is rotatably connected to the bracket 110 via the second rotating shaft 112. The moving contact 230 is rotatably connected to the bracket 110 via the third rotating shaft 113. At this time, the angle between the first direction A and the second direction B is less than 90°, that is, the angle between the direction of the line connecting the first rotating shaft 111 and the second rotating shaft 112 (i.e., the first direction A) and the direction of the line connecting the first rotating shaft 111 and the third rotating shaft 113 (i.e., the second direction B) is less than 90°.
[0042] The height of the first rotating shaft 111 needs to be greater than the thickness of the locking member 120 so that the locking member 120 can be mounted on the first rotating shaft 111. At the same time, a certain gap can be left between the locking member 120 and the adjacent housing 210 to prevent the housing 210 from interfering with the relative movement of the locking member 120, the tripping member 130, and the bracket 110. Similarly, the height of the second rotating shaft 112 needs to be greater than the thickness of the tripping member 130 so that the tripping member 130 can be mounted on the second rotating shaft 112. At the same time, a certain gap can be left between the tripping member 130 and the adjacent housing 210 to prevent the housing 210 from interfering with the relative movement of the tripping member 130, the locking member 120, and the bracket 110. The height of the third rotating shaft 113 needs to be greater than the thickness of the moving contact 230 so that the moving contact 230 can be mounted on the third rotating shaft 113. At the same time, a certain gap can be provided between the moving contact 230 and the adjacent shell 210 to avoid interference of the shell 210 with the relative movement of the moving contact 230 and the bracket 110.
[0043] Optionally, the locking member 120 and the tripping member 130 are respectively arranged on the same side of the bracket 110, and the moving contact 230 is arranged on the other side of the bracket 110. To this end, the first rotating shaft 111 and the second rotating shaft 112 are arranged at intervals on the same side of the bracket 110, and the third rotating shaft 113 is arranged on the other side of the bracket 110, so that the assembly and disassembly of the tripping mechanism 100 are simpler and more convenient, without the need for other auxiliary tools, thereby improving the production efficiency and product qualification rate of the circuit breaker.
[0044] For example, in this embodiment, the locking member 120 can be in the form of a fan-shaped structure with a hollow interior (or a triangular structure, as long as the locking member 120 has a movable space for accommodating the jumper 130), so that the jumper 130 can be located inside the locking member 120, and one side of the locking member 120 is used to engage with the jumper 130, and the thickness of the side matches that of the locking member 120. The arc edge connecting the two side edges of the locking member 120 (or the side opposite to the first rotating shaft 111) is thinner, so that when the locking member 120 and the jumper 130 are unfastened, the jumper 130 can extend out of the locking member 120 through the arc edge portion. Specifically, as Figure 4 As shown, when the locking member 120 and the jumper 130 are in a fastened state, the jumper 130 is located inside the locking member 120, as shown in FIG. Figure 5 As shown, when the circuit breaker 200 is in a fault tripping state (current overload or short circuit), the locking member 120 and the tripping member 130 are in a disengaged state. At this time, the portion of the tripping member 130 close to the second rotating shaft 112 is still located in the locking member 120, and the portion of the tripping member 130 away from the second rotating shaft 112 extends out of the locking member 120.
[0045] In order to enable the locking member 120 to restore its original state during the closing and opening process of the moving contact 230 and the static contact 240, Figure 4 and Figure 5 As shown, in this embodiment, the tripping mechanism 100 also includes a first elastic member 140 mounted on the first rotating shaft 111, one end of the first elastic member 140 abuts against the locking member 120, and the other end abuts against the bracket 110, and the first elastic member 140 is used to provide a reset force for the movement of the locking member 120 relative to the bracket 110.
[0046] In order to enable the above-mentioned moving contact 230 to restore its own initial state during the closing and opening process of the moving contact 230 and the static contact 240, in this embodiment, as shown in FIG. Figure 4 and Figure 5 As shown, the tripping mechanism 100 also includes a second elastic member 150 sleeved on the first rotating shaft 111, one end of the second elastic member 150 abuts against the moving contact 230, and the other end abuts against the shell 210. The second elastic member 150 is used to provide a reset force for the movement of the moving contact 230 relative to the shell 210.
[0047] In this embodiment, if Figures 4 to 6 As shown, the bracket 110 is further provided with an escape hole 114, which is located between the first rotating shaft 111 and the third rotating shaft 113. One end of the second elastic member 150 passes through the escape hole 114 and abuts against the movable contact 230, so that the movable contact 230 abuts against the bracket 110. In this way, the second elastic member 150 can cause the end of the movable contact 230 away from the static contact 240 (or, in other words, the end of the movable contact 230 close to the first rotating shaft 111 of the bracket 110) to abut against the bracket 110, thereby providing the movable contact 230 with contact pressure during closing and reset force during opening via the second elastic member 150.
[0048] Alternatively, as Figures 1 to 3 As shown, the trip mechanism 100 further includes a transmission member 160 rotatably disposed within the housing 210. The handle 220 is connected to the tripping member 130 via the transmission member 160. The transmission member 160 and the tripping member 130 are connected via a first connecting rod 161. The handle 220 and the transmission member 160 are connected via a gear 162 or a second connecting rod. For example, in this embodiment, the handle 220 is provided with a toothed portion, and the transmission member 160 is correspondingly provided with a gear 162. The toothed portion and the gear 162 engage with each other, thereby establishing a transmission connection between the handle 220 and the transmission member 160. Compared to a connecting rod transmission method, a transmission method using gears 162 can save more space.
[0049] In order to enable the transmission member 160 to restore its original state during the closing and opening process of the moving contact 230 and the static contact 240, in this embodiment, Figures 1 to 3 As shown, a mounting shaft is provided on the transmission member 160, and the transmission member 160 is rotatably connected to the shell 210 through the mounting shaft. The tripping mechanism 100 also includes a third elastic member 170 sleeved on the mounting shaft, one end of the third elastic member 170 abuts against the transmission member 160, and the other end abuts against the shell 210. The third elastic member 170 is used to provide a reset force for the movement of the transmission member 160 relative to the shell 210, thereby providing a reset force for the handle 220 and the tripping member 130 that are transmission-connected to the transmission member 160.
[0050] In this embodiment, if Figures 1 to 3 As shown, the circuit breaker 200 also includes an electromagnetic release 270. The coil of the electromagnetic release 270 is connected to the end of the moving contact 230 away from the static contact 240 through a first flexible connecting line 271. A first protrusion 121 is provided on the locking member 120 of the tripping mechanism 100. The electromagnetic release 270 corresponds to the position of the tripping mechanism 100. When the current is short-circuited, the top rod of the electromagnetic release 270 pushes the first protrusion 121 to drive the locking member 120 and the tripping member 130 of the tripping mechanism 100 to unlock, so that the moving contact 230 and the static contact 240 are disconnected.
[0051] In this embodiment, if Figures 1 to 3 As shown, the circuit breaker 200 also includes a thermal release 280 located on the side of the electromagnetic release 270 away from the handle 220. The fixed end of the thermal release 280 is connected to the output terminal 260 via a second flexible connecting wire 281. The movable end of the thermal release 280 is connected to the end of the coil of the electromagnetic release 270 away from the moving contact 230. A second protrusion 122 is also provided on the locking member 120. The position of the thermal release 280 corresponds to that of the tripping mechanism 100. When the current is overloaded, the movable end of the thermal release 280 pushes the second protrusion 122 to drive the locking member 120 to release the tripping member 130 of the tripping mechanism 100, so as to open the moving contact 230 and the static contact 240. Among them, the thermal release 280 can be a bimetallic strip, for example, made of a material with a thermal expansion coefficient. In this way, when the temperature rises, the bimetallic strip will expand and deform due to the heat, thereby driving the moving contact 230 to move toward the side away from the static contact 240 to enable the circuit breaker 200 to be opened.
[0052] It is worth noting that since the coil of the electromagnetic release 270 is connected to the end of the moving contact 230 away from the static contact 240 through the first flexible connecting wire 271, when the internal layout of the circuit breaker 200 is performed, it is only necessary to make the electromagnetic release 270 and the moving contact 230 as close as possible to facilitate the wiring of the first flexible connecting wire 271. The position of the electromagnetic release 270 corresponds to that of the tripping mechanism 100, so it is necessary to ensure that when the current is short-circuited, the top rod of the electromagnetic release 270 can drive the locking member 120 and the tripping member 130 of the tripping mechanism 100 to unlock by pushing the first protrusion 121.
[0053] Similarly, since the fixed end of the thermal release 280 is connected to the output terminal 260 via the second flexible connecting wire 281, when the internal layout of the circuit breaker 200 is performed, it is only necessary to place the thermal release 280 and the output terminal 260 as close as possible to facilitate the wiring of the second flexible connecting wire 281. The thermal release 280 corresponds to the position of the trip mechanism 100, so it is necessary to ensure that when the current is overloaded, the movable end of the thermal release 280 can drive the locking member 120 to disengage the tripping member 130 of the trip mechanism 100 by pushing the second protrusion 122. For example, in this embodiment, the extension direction of the top rod of the electromagnetic release 270 is parallel to the extension direction of the thermal release 280 before deformation due to heat, and the thermal release 280 is located on the side of the electromagnetic release 270 away from the handle 220 to be closer to the output terminal 260.
[0054] In this embodiment, if Figure 7 As shown, the moving contact 230 includes a contact portion 231 and a welding portion 232, so that the contact portion 231 contacts or separates from the static contact 240, thereby closing or opening the circuit breaker 200. At the same time, the welding portion 232 also realizes electrical connection with the electromagnetic release 270. In addition, the moving contact 230 is also provided with a mounting hole 233, a connecting hole 234 and a giveway hole 235, wherein the third rotating shaft 113 is assembled in the mounting hole 233 to enable the moving contact 230 to be rotatably connected to the bracket 110, and one end of the second elastic member 150 passes through the avoidance hole 114 on the bracket 110 and is connected to the connecting hole 234 of the moving contact 230, so that the moving contact 230 is abutted against the bracket 110, and the giveway hole 235 corresponds to the position of the first rotating shaft 111 on the bracket 110, so that the first rotating shaft 111 is given way through the giveway hole 235, thereby avoiding the moving contact 230 from interfering with the relative movement of the bracket 110 and the shell 210.
[0055] Here, the transmission action of the tripping mechanism 100 is explained with the circuit breaker 200 being in the open state as the initial state. When the circuit breaker 200 is to be closed, the locking member 120 and the tripping member 130 are engaged with each other (e.g., Figure 4As shown), therefore, the lock member 120 and the jumper 130, the lock member 120 and the bracket 110, and the jumper 130 and the bracket 110 are all fixed and immovable. Moreover, since the end of the moving contact 230 away from the static contact 240 (or the end of the moving contact 230 close to the first rotating shaft 111 of the bracket 110) and the bracket 110 abut against each other, the moving contact 230 and the bracket 110 are also fixed and immovable. In other words, at this time, the bracket 110, the lock member 120, the jumper 130 and the moving contact 2 30 form an integral body, so that when the handle 220 is driven by an external force, the bracket 110, the lock member 120 and the trip member 130 can cooperate to drive the moving contact 230 toward the side close to the static contact 240; when the circuit breaker 200 encounters a fault and needs to be opened, the thermal release 280 or the electromagnetic release 270 will correspondingly push the first protrusion 121 or the second protrusion 122 on the lock member 120, so that the lock member 120 rotates relative to the bracket 110, driving the lock member 120 and the trip member 130 to release the fastening (such as Figure 5 As shown), the bracket 110, the locking member 120, the jumping member 130 and the moving contact 230 are separated from each other, and the locking member 120 is reset relative to the bracket 110 under the action of the first elastic member 140, the moving contact 230 is reset relative to the housing 210 under the action of the second elastic member 150, and the transmission member 160 drives the jumping member 130 to reset relative to the housing 210 under the action of the third elastic member 170, so that the bracket 110 is reset relative to the housing 210 under the joint action of the locking member 120, the moving contact 230 and the jumping member 130.
[0056] In this embodiment, if Figures 1 to 3 As shown, the circuit breaker 200 also includes an arc extinguishing mechanism 290 located on the side of the thermal release 280 away from the electromagnetic release 270. The arc extinguishing mechanism 290 includes a first arc-strike plate 291 and a second arc-strike plate 292 arranged opposite to each other and an arc-strike chamber 293 located between the first arc-strike plate 291 and the second arc-strike plate 292. The entrance of the arc-strike chamber 293 is arranged opposite to the moving contact 230 and the static contact 240, and the outlet of the arc-strike chamber 293 is toward the side close to the output terminal 260 and is electrically insulated from the output terminal 260.
[0057] It should be noted that when the internal layout of the circuit breaker 200 is carried out, since the arc generated between the moving contact 230 and the static contact 240 when the circuit breaker is opened needs to be introduced into the arc extinguishing mechanism 290 for arc extinguishing, the arc extinguishing mechanism 290 includes a first arc-striking plate 291 and a second arc-striking plate 292 arranged opposite to each other and an arc-striking chamber 293 located between the first arc-striking plate 291 and the second arc-striking plate 292. The inlet of the arc-striking chamber 293 is arranged opposite to the moving contact 230 and the static contact 240, and the outlet of the arc-striking chamber 293 is toward the side close to the output terminal 260 and is electrically insulated from the output terminal 260. In this way, during the opening process of the circuit breaker 200, the arc generated between the moving contact 230 and the static contact 240 can be guided into the arc extinguishing chamber 293 through the entrance of the arc extinguishing chamber 293 by the cooperation of the first arc-striking plate 291 and the second arc-striking plate 292 for rapid extinguishing. The gas generated after the arc extinguishing can be discharged to the outside of the shell 210 through the outlet of the arc extinguishing chamber 293, thereby reducing the electrical loss caused by the arc to the circuit breaker 200. At the same time, it can also avoid the gas generated after the arc extinguishing from causing electrical interference to the output terminal 260 arranged adjacent to the arc extinguishing chamber 293, thereby improving the service life of the circuit breaker 200.
[0058] Alternatively, as Figures 1 to 3 As shown, an adjusting member 211 is provided on the housing 210. The end of the adjusting member 211 abuts against the first arc-starting plate 291 and is used to adjust the distance between the movable end of the thermal release 280 and the tripping mechanism 100, thereby adjusting the overload protection operating current of the circuit breaker 200. The adjusting member 211 can be an adjusting screw that adjusts the distance between the movable end of the thermal release 280 and the tripping mechanism 100 by screwing.
[0059] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. A tripping mechanism (100), characterized in that: The invention comprises a bracket (110), a locking member (120) and a tripping member (130), wherein the bracket (110), the locking member (120) and the tripping member (130) are respectively arranged in a housing (210) of a circuit breaker (200), and the bracket (110) is rotatably connected to the housing (210), the locking member (120), the tripping member (130) and the moving contact (230) of the circuit breaker (200). The locking member (120) is used to be fastened with the tripping member (130), the tripping member (130) is in transmission connection with the handle (220) of the circuit breaker (200), and the handle (220) is driven through the bracket (110), the locking member (120) and the tripping member (130) to drive the moving contact (230) and the static contact (240) of the circuit breaker (200) to close or open; The direction of a line connecting the rotational connection point between the bracket (110) and the housing (210) and the rotational connection point between the jumper (130) and the bracket (110) is a first direction, the direction of a line connecting the rotational connection point between the bracket (110) and the housing (210) and the rotational connection point between the moving contact (230) and the bracket (110) is a second direction, and the angle between the first direction and the second direction is less than 90°; a first rotating shaft (111) is provided on the bracket (110), the bracket (110) is rotationally connected to the housing (210) via the first rotating shaft (111), and the locking member (120) is rotationally connected to the bracket (110) via the first rotating shaft (111).
2. The tripping mechanism (100) according to claim 1, characterized in that: The bracket (110) is provided with a second rotating shaft (112) and a third rotating shaft (113); the locking member (120) is located between the bracket (110) and the housing (210); the jumper (130) is rotatably connected to the bracket (110) via the second rotating shaft (112); and the moving contact (230) is rotatably connected to the bracket (110) via the third rotating shaft (113).
3. The tripping mechanism (100) according to claim 1, characterized in that: The locking member (120) and the jumping member (130) are respectively arranged on the same side of the bracket (110), and the moving contact (230) is arranged on the other side of the bracket (110).
4. The tripping mechanism (100) according to claim 2, characterized in that: The tripping mechanism (100) further comprises a first elastic member (140) sleeved on the first rotating shaft (111), one end of the first elastic member (140) abutting against the locking member (120) and the other end abutting against the bracket (110), and the first elastic member (140) is used to provide a reset force for the movement of the locking member (120) relative to the bracket (110); The tripping mechanism (100) further comprises a second elastic member (150) sleeved on the first rotating shaft (111), one end of the second elastic member (150) abutting against the moving contact (230) and the other end abutting against the housing (210), and the second elastic member (150) is used to provide a reset force for the movement of the moving contact (230) relative to the housing (210).
5. The tripping mechanism (100) according to claim 4, characterized in that: The bracket (110) is also provided with an avoidance hole (114), the avoidance hole (114) being located between the first rotating shaft (111) and the third rotating shaft (113), and one end of the second elastic member (150) passes through the avoidance hole (114) and abuts against the moving contact (230), so that the moving contact (230) abuts against the bracket (110).
6. The tripping mechanism (100) according to claim 1, characterized in that: The tripping mechanism (100) further comprises a transmission member (160) rotatably disposed within the housing (210); the handle (220) is transmission-connected to the tripping member (130) via the transmission member (160); the transmission member (160) and the tripping member (130) are connected via a first connecting rod (161); and the handle (220) and the transmission member (160) are connected via a gear (162) or a second connecting rod. The transmission member (160) is provided with a mounting shaft, and the transmission member (160) is rotatably connected to the housing (210) via the mounting shaft. The tripping mechanism (100) further includes a third elastic member (170) sleeved on the mounting shaft, one end of the third elastic member (170) abuts against the transmission member (160) and the other end abuts against the housing (210). The third elastic member (170) is used to provide a reset force for the movement of the transmission member (160) relative to the housing (210).
7. A circuit breaker (200), characterized in that: The invention comprises a housing (210), a handle (220), a moving contact (230), a static contact (240), an input terminal (250), an output terminal (260) and a tripping mechanism (100) as claimed in any one of claims 1 to 6, wherein the input terminal (250) and the output terminal (260) are respectively used for plugging into a distribution box, and the handle (220) is driven by the tripping mechanism (100) to drive the moving contact (230) and the static contact (240) to close or open the circuit breaker; The input terminal (250) and the output terminal (260) are arranged at intervals on the same side of the housing (210), and the handle (220) is arranged on a side of the housing (210) opposite to the input terminal (250). When the circuit breaker (200) is in a closed state, a side of the handle (220) facing away from the housing (210) is flush with a side of the housing (210) opposite to the input terminal (250).
8. The circuit breaker (200) according to claim 7, characterized in that The circuit breaker (200) further comprises an electromagnetic release (270), wherein the coil of the electromagnetic release (270) is connected to an end of the moving contact (230) away from the static contact (240) via a first flexible connecting wire (271), a first protrusion (121) is provided on the locking member (120) of the tripping mechanism (100), and the electromagnetic release (270) corresponds to the position of the tripping mechanism (100). When the current is short-circuited, the top rod of the electromagnetic release (270) pushes the first protrusion (121) to drive the locking member (120) and the tripping member (130) of the tripping mechanism (100) to be unlocked, so that the moving contact (230) and the static contact (240) are disconnected.
9. The circuit breaker (200) according to claim 8, characterized in that The circuit breaker (200) further comprises a thermal release (280) located on a side of the electromagnetic release (270) away from the handle (220), wherein a fixed end of the thermal release (280) is connected to the output terminal (260) via a second flexible connecting wire (281), and a movable end of the thermal release (280) is connected to an end of the coil of the electromagnetic release (270) away from the moving contact (230), and a second protrusion (122) is further provided on the locking member (120), wherein the thermal release (280) corresponds to the position of the tripping mechanism (100), and when the current is overloaded, the movable end of the thermal release (280) pushes the second protrusion (122) to drive the locking member (120) and the tripping member (130) of the tripping mechanism (100) to be unlocked, so that the moving contact (230) and the static contact (240) are disconnected.
10. The circuit breaker (200) according to claim 9, characterized in that The circuit breaker (200) further comprises an arc extinguishing mechanism (290) located on a side of the thermal release (280) away from the electromagnetic release (270), the arc extinguishing mechanism (290) comprising a first arc striking plate (291) and a second arc striking plate (292) arranged opposite to each other, and an arc extinguishing chamber (293) located between the first arc striking plate (291) and the second arc striking plate (292), an inlet of the arc extinguishing chamber (293) being arranged opposite to the moving contact (230) and the static contact (240), and an outlet of the arc extinguishing chamber (293) facing a side close to the output terminal (260) and being electrically insulated from the output terminal (260).
Citation Information
Patent Citations
Tripping mechanism and circuit breaker
CN216902766U