Circuit breaking device

By setting stops and slots in the buffer cavity of the circuit breaker device, the cut-off parts are ensured to stop accurately, which solves the problem of punch rebound in traditional circuit breakers and improves the breaking capability and reliability of the circuit breaker.

CN222980426UActive Publication Date: 2025-06-13SCHNEIDER ELECTRIC IND SAS
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Patent Information

Application Number
CN202422148616.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-06-13
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

Traditional pyrotechnic circuit breakers have punch rebound during their work, resulting in reduced breaking capacity and damage to the circuit breaker.

Method used

A circuit breaker is designed, including a buffer cavity, a conductive plate and a cutting member. A stopper and a slit groove are provided in the buffer cavity. The piston part of the cutting member includes a slit groove. The stopper is locked in the slit groove to ensure that the cutter stops moving accurately and avoids rebound.

Benefits of technology

By avoiding the rebound of the cut-off parts, the stability of the arc length is ensured, the arc voltage maintenance ability is improved, the breaking capacity and reliability of the circuit breaker are enhanced, and the safety of electrical equipment and systems is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model provides a circuit breaking device. The circuit breaking device comprises a buffer cavity which comprises a pair of cut-off channels which are arranged at intervals along the axis direction of the buffer cavity, a supporting part is arranged between the pair of cut-off channels, and the supporting part comprises a stop piece which is arranged along the axis direction; a conductive plate disposed at an opening at one end of the pair of cutoff channels in the axial direction; the cutting-off piece comprises a piston part and a pair of cutting-off parts, and the pair of cutting-off parts are coupled to the side, close to the buffer cavity, of the piston part in the axis direction and are aligned with the pair of cutting-off channels in the axis direction so that the pair of cutting-off parts can be allowed to cut off the conductive plate and move along the cutting-off channels under the condition that the circuit breaking condition is met; the piston part comprises a clamping groove formed between the pair of cutting-off parts, and the clamping groove is arranged to contain the stop piece after the pair of cutting-off parts move in place along the pair of cutting-off channels so that the cutting-off piece can stop moving. Therefore, the cut-off piece can be prevented from rebounding, so that the breaking capacity of the circuit breaking device is ensured.
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Description

Technical Field

[0001] Example embodiments of the present disclosure generally relate to the field of electrically controlled devices, and particularly to a circuit breaker device. Background Art

[0002] In the field of circuit protection, pyrotechnic circuit breakers are widely used in high-voltage and high-current power systems. However, during the operation of current detonating circuit breakers, there is a phenomenon of punch rebound, which may lead to problems such as reduced breaking capacity and damage to the circuit breaker. Summary of the Utility Model

[0003] The purpose of the present disclosure is to provide a circuit breaker device to at least partially solve the above problems and / or other potential problems existing in traditional circuit breaker devices.

[0004] In a first aspect of the present disclosure, a circuit breaker device is provided. The circuit breaker device includes: a buffer cavity including a pair of cutting channels spaced along the axis of the buffer cavity, a support portion provided between the pair of cutting channels, and the support portion including a stop member arranged along the axis; a conductive plate disposed at the openings at one end of the pair of cutting channels in the axial direction and at least partially covering the pair of cutting channels; and a cutting member including a piston portion and a pair of cutting portions. The pair of cutting portions are coupled to the side of the piston portion close to the buffer cavity in the axial direction, are located on the side of the conductive plate away from the cutting channels, and are aligned with the pair of cutting channels in the axial direction to allow the pair of cutting portions to cut the conductive plate and move along the cutting channels when the circuit breaking condition is met. The piston portion includes a card slot arranged between the pair of cutting portions, and the card slot is arranged to accommodate the stop member after the pair of cutting portions move in place along the pair of cutting channels, so that the cutting member stops moving.

[0005] In an embodiment according to the present disclosure, by providing a stop member on the support portion of the buffer cavity and a card slot on the piston portion of the cutting member, after the cutting portion moves in place along the cutting channel, the card slot and the stop member cooperate with each other, enabling the cutting member to accurately stop moving, realizing effective positioning of the cutting member (also referred to as a punch), and avoiding the occurrence of punch rebound. Secondly, avoiding punch rebound ensures the stability of the arcing length. During the circuit breaking process, a stable arcing length can ensure that the arc voltage is maintained at an appropriate level, thereby guaranteeing the reliability of the breaking capacity. Therefore, the circuit breaker can efficiently and accurately cut off the circuit during a circuit fault, providing a strong guarantee for the safety of electrical equipment and systems. Other benefits will be described in conjunction with the corresponding embodiments below.

[0006] In some embodiments, the stop member includes: a pair of elastic portions, which are spaced apart and coupled to the support portion in the axial direction and are adapted to elastically deform in the force direction perpendicular to the axial direction; and a pair of clamping portions, which are respectively coupled to the ends of the elastic portions away from the support portion and are adapted to cause the pair of elastic portions to elastically deform during the movement of the stop member along the card slot and to be clamped in the card slot after the stop member moves into place.

[0007] In some embodiments, the card slot includes: a reduced-diameter portion, which is provided at the opening of the card slot and is adapted to abut against the clamping portion during the movement of the stop member along the card slot to cause the pair of elastic portions to elastically deform; and a receiving portion, which is arranged at one end of the reduced-diameter portion away from the opening and is adapted to receive the pair of clamping portions after the stop member moves into place and to allow the pair of elastic portions to rebound.

[0008] In some embodiments, the buffer cavity further includes: a buffer space connecting each of the pair of cutting channels, the cross-sectional shape of the buffer space in the cross-section parallel to the axial direction is in a U-shaped structure, and one branch of the U-shaped structure is connected to the corresponding cutting channel; and an orifice plate, which is arranged between the cutting channel and the branch of the U-shaped structure of the corresponding buffer space.

[0009] In some embodiments, the conductive plate includes: a plurality of narrow-diameter portions, which are respectively aligned with a pair of cutting portions and are adapted to cause the conductive plate to break at at least one of the plurality of narrow-diameter portions under the action of the impact force in the axial direction of the pair of cutting portions when the circuit breaker is in the working state.

[0010] In some embodiments, each of the plurality of narrow-diameter portions includes a V-shaped break point structure.

[0011] In some embodiments, the conductive plate further includes: a through hole, which is provided at a position corresponding to the stop member and is adapted to allow the stop member to pass through the through hole so that the conductive plate is arranged on the buffer cavity.

[0012] In some embodiments, the cutting member further includes: a guiding portion, which is coupled to both sides of the cutting portion along the cutting direction, and the buffer cavity further includes a guiding groove cooperating with the guiding portion to be adapted for the pair of cutting portions to enter the cutting channel.

[0013] In some embodiments, there is an arc extinguishing narrow slit between the cutting portion and the cutting channel.

[0014] In some embodiments, the circuit breaker further includes: an impact cavity, which is coupled to the buffer cavity, and the cutting member is axially coupled inside the impact cavity.

[0015] In some embodiments, the circuit breaker further includes: an ignition assembly, which is axially coupled to the top end of the impact cavity.

[0016] In some embodiments, the piston portion of the cutting member further includes: an explosion chamber, which is arranged corresponding to the ignition assembly and is adapted to detonate the explosive in the explosion chamber via the ignition assembly under the condition of meeting the open-circuit condition, so as to generate a thrust for the cutting member to move in the axial direction.

[0017] It should be understood that the content described in this part is not intended to limit the key features or important features of the embodiments of the present disclosure, nor is it used to limit the scope of the present disclosure. Other features of the present disclosure will become easily understood through the following description. Brief Description of the Drawings

[0018] In combination with the drawings and with reference to the following detailed description, the above and other features, advantages and aspects of the embodiments of the present disclosure will become more obvious. In the drawings, the same or similar reference numerals represent the same or similar elements, where:

[0019] Figure 1 shows a schematic structural view of an open-circuit device according to some embodiments of the present disclosure;

[0020] Figure 2 shows an exploded schematic view of an open-circuit device according to some embodiments of the present disclosure;

[0021] Figure 3 shows a schematic structural view of a buffer cavity according to some embodiments of the present disclosure;

[0022] Figure 4 shows a top view of a buffer cavity according to some embodiments of the present disclosure;

[0023] Figure 5 shows a schematic internal structural view of a buffer cavity according to some embodiments of the present disclosure;

[0024] Figure 6 shows a schematic structural view of a conductive plate according to some embodiments of the present disclosure;

[0025] Figure 7 shows a schematic structural view of a cutting member according to some embodiments of the present disclosure;

[0026] Figure 8 shows a front view of a cutting member according to some embodiments of the present disclosure;

[0027] Figure 9 shows a sectional view of a cutting member according to some embodiments of the present disclosure;

[0028] Figure 10 shows a schematic structural view of the open-circuit condition not being met according to some embodiments of the present disclosure; and

[0029] Figure 11A structural schematic diagram after the open - circuit condition is satisfied according to some embodiments of the present disclosure is shown. Detailed implementation manners

[0030] Embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. Although certain embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure can be implemented in various forms and should not be construed as limited to the embodiments set forth herein. On the contrary, these embodiments are provided to more thoroughly and completely understand the present disclosure. It should be understood that the drawings and embodiments of the present disclosure are only for exemplary purposes and are not used to limit the protection scope of the present disclosure.

[0031] In the description of the embodiments of the present disclosure, the term "including" and its similar terms should be understood as open inclusion, that is, "including but not limited to". The term "based on" should be understood as "at least partially based on". The term "an embodiment" or "the embodiment" should be understood as "at least one embodiment". The term "some embodiments" should be understood as "at least some embodiments". There may also be other explicit and implicit definitions hereinafter. The terms "first", "second", etc. may refer to different or the same objects. There may also be other explicit and implicit definitions hereinafter.

[0032] As briefly mentioned above, there is the problem of punch rebound. When the punch (also called the cutting member) of this circuit breaker punches through the copper busbar (also called the conductive plate), an arc will be generated. In this process, as the cutting length of the punch continuously increases, the arc voltage will gradually rise, and at the same time, the energy of the buffer cavity will also increase accordingly. At the same time, due to the reaction force generated after the copper busbar is impacted, the punch will rebound. The rebound of the punch reduces the arc length, and the reduction of the arc length directly reduces the arc voltage, ultimately resulting in a reduction in the breaking capacity of this circuit breaker and being unable to effectively ensure the safe and stable operation of the circuit.

[0033] In addition, during the operation of this circuit breaker, when the punch completes the punching operation on the copper busbar, the punch is extremely prone to deflection during the rebound stage. The deflection of the punch will cause abnormal cooperation between it and other components inside the circuit breaker, and then local damage and jamming will occur. This local damage and jamming will not only cause a certain degree of damage to the internal structure of the circuit breaker, but also make the circuit breaker unable to effectively and reliably cut off the circuit safely when facing a circuit fault, bringing potential risks to the stable operation of the electrical system.

[0034] In addition, traditional circuit breakers usually use mechanical operating mechanisms to complete opening and closing actions. However, this mechanical circuit breaker has problems such as slow speed, low reliability (such as difficulty in DC breaking with large current), and high maintenance costs.

[0035] To solve or at least partially solve the above problems or other potential problems of the circuit breaker in the traditional solution, embodiments of the present disclosure provide a circuit breaker solution. According to the solution of the embodiments of the present disclosure, the circuit breaker includes a buffer cavity, a conductive plate, and a cutting member. Specifically, the buffer cavity includes a pair of cutting channels, the pair of cutting channels are arranged at intervals along the axial direction of the buffer cavity, and a support portion is provided between the pair of cutting channels. The support portion includes a stop member arranged along the axial direction. Further, the conductive plate is arranged at the opening at one end of the pair of cutting channels in the axial direction and at least partially covers the pair of cutting channels. Further, the cutting member includes a piston portion and a pair of cutting portions. The pair of cutting portions are coupled to the side of the piston portion close to the buffer cavity along the axial direction, are located on the side of the conductive plate away from the cutting channels, and are aligned with the pair of cutting channels in the axial direction to allow the pair of cutting portions to cut the conductive plate and move along the cutting channels when the circuit breaking condition is met, wherein the piston portion includes a card slot arranged between the pair of cutting portions, and the card slot is arranged to accommodate the stop member after the pair of cutting portions move in place along the pair of cutting channels, so that the cutting member stops moving.

[0036] In this way, when the cutting portion moves in place along the cutting channel, the card slot and the stop member cooperate with each other, enabling the cutting member to accurately stop moving, achieving effective positioning of the cutting member, and avoiding the occurrence of the cutting member rebounding phenomenon. Secondly, avoiding the punch rebound ensures the stability of the arcing length. During the circuit breaking process, a stable arcing length can ensure that the arc voltage is maintained at an appropriate level, guaranteeing the reliability of the breaking capacity, enabling the circuit breaker to efficiently and accurately cut off the circuit during a circuit fault, and providing protection for the safety of electrical equipment and systems.

[0037] In addition, the installation direction of this circuit breaker is not limited to users, thereby improving the convenience and flexibility of its use. In other words, users do not need to consider specific direction restrictions during the installation process, can flexibly arrange according to actual needs and installation environments, reduce the installation difficulty and cost, expand its application range, and can adapt to various complex electrical installation scenarios.

[0038] In addition, compared with traditional circuit breakers, the pyrotechnic circuit breaker has a faster response speed than traditional circuit breakers. For example, the cutting time of the pyrotechnic circuit breaker is only 0.2 ms, and the arc extinguishing time is less than 1 ms, while the cutting time of traditional circuit breakers is 800 ms and the arc extinguishing time is 2 s.

[0039] In terms of breaking capacity, the pyrotechnic circuit breaker solves the problem of difficult breaking of large current direct current by traditional circuit breakers, can effectively cope with various complex circuit current conditions, and ensures reliable circuit breaking under conditions such as high current.

[0040] In terms of protection mode, the pyrotechnic circuit breaker adopts an active protection mechanism, which can actively monitor the circuit state and respond in a timely manner, while traditional circuit breakers are usually passive protection.

[0041] From the perspective of physical characteristics, the pyrotechnic circuit breaker has no arcing phenomenon, thus improving the safety of use and reducing potential safety hazards such as fires that may be caused by arcing. And its volume is small. Compared with the large volume of traditional circuit breakers, it is more flexible and convenient in installation and layout, can adapt to various complex installation environments, and saves installation space. At the same time, compared with traditional circuit breakers, the pyrotechnic circuit breaker reduces costs.

[0042] The following will be combined with Figures 1 to 11 to describe the exemplary structure of the circuit breaking device 100. In the following text, the concept of the present disclosure will be mainly described in the case of a pyrotechnic circuit breaker applied to electric vehicles, UPS, charging piles, energy storage, photovoltaic, wind power, and ships. It should be understood that the situation of the circuit breaking device 100 with other scenario applications is similar, and will not be separately described hereinafter.

[0043] As Figures 1 to 11 shown, the circuit breaking device 100 provided according to an embodiment of the present disclosure includes a buffer cavity 121, a conductive plate 200, and a cutting member 130.

[0044] Specifically, the buffer cavity 121 includes a pair of cutting channels 1211, a support portion 122, and a stop member 123. The pair of cutting channels 1211 are spaced apart in the axial direction A of the buffer cavity 121, and the pair of cutting channels 1211 provide a path for subsequent circuit cutting and related operations. When the breaking condition is met, some components of the cutting member 130 can move orderly along these two cutting channels 1211.

[0045] The support portion 122 is disposed between the pair of cutting channels 1211. Further, the support portion 122 provides a stable support for the conductive plate 200. When the breaking condition is met, the support portion 122 works together with other components to provide necessary support and assistance for the action of cutting the conductive plate 200, so that during the process of cutting the conductive plate 200, the accuracy and effectiveness of the cutting action can be ensured. Further, the stop member 123 is disposed on the support portion 122 along the axial direction A. The stop member 123 can accurately prevent the cutting member 130 from rebounding due to the reaction force of the conductive plate 200, realizing precise control of the motion state of the cutting member 130. In some embodiments, the stop member 123 can be integrally formed on the support portion 122, or can be assembled on the support portion 122 by welding, riveting, bonding or other connection methods, and specific limitations are not made in the embodiments of the present disclosure.

[0046] Further, the conductive plate 200 is arranged at the opening of one end of a pair of cutting channels 1211 along the axial direction A, so that the conductive plate 200 can form a tight fitting relationship with the cutting channels 1211 and other related components. At the same time, the conductive plate 200 at least partially covers the pair of cutting channels 1211. In the normal circuit operating state, the conductive plate 200 can effectively conduct current through the area where the cutting channels 1211 are located to maintain the normal operation of the circuit. In addition, when the open circuit condition is met, the cutting member 130 corresponding to the conductive plate 200 can accurately interact with the conductive plate 200 in the area where it covers the cutting channels 1211, so as to achieve efficient cutting of the conductive plate 200 to disconnect the circuit.

[0047] Further, the cutting member 130 includes a piston portion 1301 and a pair of cutting portions 1302. The pair of cutting portions 1302 are tightly coupled to the side of the piston portion 1301 close to the buffer cavity 121 along the axial direction A. At the same time, the pair of cutting portions 1302 are located on the side of the conductive plate 200 away from the cutting channels 1211 and are accurately aligned with the pair of cutting channels 1211 in the axial direction A. When the open circuit condition is met, the cutting portions 1302 can quickly perform a cutting operation on the conductive plate 200 at a preset angle and position. By using its alignment relationship with the cutting channels 1211 in the axial direction A, after cutting the conductive plate 200, the cutting portions 1302 can move along the cutting channels 1211 smoothly, ensuring the coherence and efficiency of the open circuit operation.

[0048] Continue to describe the piston portion 1301. The piston portion 1301 includes a card slot 131, and the card slot 131 is located between the pair of cutting portions 1302. During the movement of the pair of cutting portions 1302 along the cutting channels 1211, the card slot 131 also moves together with the piston portion 1301. When the pair of cutting portions 1302 move along the pair of cutting channels 1211 to a specified position, that is, when they reach the in-place position, the card slot 131 is arranged to be able to exactly accommodate the stop member 123. At this time, the stop member 123 is snapped into the card slot 131, and through the mutual cooperation of the two, a mechanical blocking effect is generated, so that the cutting member 130 can stop moving in time. Therefore, the movement range and final position of the cutting member 130 can be accurately controlled, ensuring the accuracy and stability of the open circuit operation, and avoiding affecting the performance and effect of the open circuit device 100 due to the rebound or excessive movement of the cutting member 130.

[0049] As Figure 1 and Figure 2As shown, in some embodiments, the circuit breaker device 100 further includes an impact cavity 111. In the circuit breaker device 100, the impact cavity 111 is tightly coupled to the buffer cavity 121, and the two together constitute the main structure of the circuit breaker device 100. In addition, the circuit breaker device 100 further includes an upper housing 110 outside the impact cavity 111 for fixing and protecting the impact cavity 111. At the same time, the circuit breaker device 100 further includes a lower housing 120 outside the buffer cavity 121 for fixing and protecting the buffer cavity 121. The upper housing 110 and the lower housing 120 can be connected by bolts 101 or other connection methods, which are not specifically limited herein.

[0050] The cutting member 130 described above is coupled inside the impact cavity 111 along the axial direction A. Through this coupling method, the impact cavity 111 provides a stable installation and operation environment for the cutting member 130. The impact cavity 111 can protect the cutting member 130 from being interfered with and damaged by external environmental factors. In addition, through the coupled connection with the buffer cavity 121, the impact cavity 111 can cooperate with the buffer cavity 121 to achieve precise control and guidance of the cutting member 130 during the circuit breaking operation.

[0051] When the circuit breaker device 100 needs to work, the tight connection between the impact cavity 111 and the buffer cavity 121 ensures the structural stability of the entire device, enabling the cutting member 130 to maintain an accurate movement trajectory when moving along the axial direction A. The internal structure of the impact cavity 111 and its cooperation with the cutting member 130 can, when the circuit breaking condition is met, provide the necessary power transmission and movement guidance for the cutting member 130, ensuring that a pair of cutting portions 1302 of the cutting member 130 can start from the initial position and move along the axial direction A towards the cutting channel 1211 of the buffer cavity 121 to complete the cutting operation of the conductive plate 200, and then continue to move along the cutting channel 1211 until the slot 131 of the piston portion 1301 interacts with the stop member 123 of the support portion 122 of the buffer cavity 121 to stop the movement of the cutting member 130, thereby accurately and efficiently completing the entire circuit breaking process.

[0052] In some embodiments, the circuit breaker device 100 further includes an ignition assembly 1111. The ignition assembly 1111 is coupled to the top of the impact cavity 111 along the axial direction A, enabling the ignition assembly 1111 to quickly receive and respond to a trigger signal when the circuit breaking operation needs to be started.

[0053] When the circuit breaking condition is met, the ignition assembly 1111 is activated. Due to its tight coupling relationship with the impact cavity 111, the ignition assembly 1111 can efficiently transfer the generated energy to the cutting member 130 to provide the initial power for the start of the cutting member 130.

[0054] The coupling mode of the ignition component 1111 along the axial direction A ensures the directivity and stability of energy transfer. Along the axial direction A, the ignition component 1111 can concentrate and accurately transfer energy to the part that needs to perform actions, enabling the cutting member 130 to start operating along the axial direction A, such as pushing a pair of cutting portions 1302 of the cutting member 130 towards the conductive plate 200 to achieve the cutting operation of the conductive plate 200.

[0055] Meanwhile, the ignition component 1111 located at the top of the impact cavity 111 is connected to an external control circuit or trigger device, capable of timely receiving external control signals to ensure that the open circuit operation is initiated at the accurate timing, safeguarding the safety and stability of the entire circuit system.

[0056] In some embodiments, the piston portion 1301 of the cutting member 130 further includes an explosion chamber 1304. The explosion chamber 1304 is correspondingly arranged with the ignition component 1111 at the top of the impact cavity 111, which can ensure an efficient energy transfer and conversion process when the open circuit conditions are met.

[0057] When the triggering condition for the open circuit is achieved, the ignition component 1111 quickly starts to operate. At this time, the ignition component 1111 will precisely ignite the explosive placed in advance in the explosion chamber 1304. After the explosive is detonated, a huge amount of energy will be released instantaneously.

[0058] Since the explosion chamber 1304 is located in the piston portion 1301, the energy released by it can directly act on the cutting member 130. This energy will be converted into thrust to push the cutting member 130 to move along the axial direction A. This thrust has strong explosive power and directivity, enabling a pair of cutting portions 1302 of the cutting member 130 to advance towards the conductive plate 200 at a very high speed, thereby achieving the cutting operation of the conductive plate 200.

[0059] As Figures 3 to 5 shown, in some embodiments, the buffer cavity 121 further includes a buffer space and a perforated plate 124. Each buffer space is closely connected to the corresponding cutting channel 1211. In a cross-section parallel to the axial direction A, the cross-sectional shape of the buffer space is a U-shaped structure. One branch of the U-shaped structure is connected to the corresponding cutting channel 1211, forming a smooth channel connection system. When the open circuit operation is carried out, the energy generated in the cutting channel 1211 can enter the buffer space through the cutting channel 1211 connected to the buffer space for temporary storage or buffering. For example, the arc energy generated during the process of cutting the conductive plate 200 can be guided to a certain extent into the buffer space to avoid their interference or damage to the cutting channel 1211 and other parts.

[0060] Further, the orifice plate 124 is disposed between the cut-off channel 1211 and the branch of the U-shaped structure of the corresponding buffer space. The orifice plate 124 can regulate the flow rate, velocity, etc. of the cutting residues or energy entering the buffer space from the cut-off channel 1211. At the moment of interruption, when an electric arc or the like is generated, the orifice plate 124 can, through its own pore structure and physical properties, impose certain constraints and guidance on the diffusion direction and velocity of the electric arc, so that it can enter the buffer space or a preset path more orderly for flow. At the same time, the orifice plate 124 can also prevent the cutting residues from entering the buffer space, thereby ensuring the working order and stability inside the entire interruption device 100. Through the synergistic effect of the buffer space and the orifice plate 124, the buffer cavity 121 can better cope with various situations generated during the interruption process, improving the reliability and safety of the interruption device 100. For example, the orifice plate 124 can be integrally formed inside the buffer cavity 121, and can also be formed inside the buffer cavity 121 by means of pasting, welding or other connection methods, and specific limitations are not made in the embodiments of the present disclosure.

[0061] In addition, when the interruption device 100 is operating, when an electric arc is generated in the arc extinguishing narrow slit 102 described below, it will instantaneously cause an increase in the gas pressure inside the arc extinguishing narrow slit 102. If the pressure cannot be released in a timely and effective manner, the excessive pressure may damage the structure of the entire interruption device 100, and even cause the interruption device 100 to explode, triggering an external short circuit or the like. However, in the embodiments of the present disclosure, the orifice plate 124 is connected between the cut-off channel 1211 and the corresponding buffer space 125, and the orifice plate 124 is located at the bottom of the cut-off channel 1211. When the pressure in the cut-off channel 1211 gradually rises to a certain level, pressure relief begins through the orifice plate 124 to the buffer space 125. Further, the orifice plate 124 has a certain number and size of holes, and these holes allow the gas in the cut-off channel 1211 to flow towards the buffer space 125 under the action of the pressure difference. In this way, the orifice plate 124 realizes the release of the pressure in the cut-off channel 1211 without affecting the normal progress of the arc extinguishing process.

[0062] Such as Figure 6As shown, in some embodiments, the conductive plate 200 includes a plurality of narrow diameter portions 210. The positions of the plurality of narrow diameter portions 210 are precisely aligned with a pair of cutting portions 1302 respectively to achieve efficient and reliable open circuit operation. When the open circuit device 100 enters the working state, under the action of the triggering mechanism, a pair of cutting portions 1302 start to rapidly move along the axial direction A and generate a strong impact force. At this time, the narrow diameter portions 210 on the conductive plate 200 become the target areas for the action of the cutting portions 1302. Under the impact force of the pair of cutting portions 1302 along the axial direction A, the conductive plate 200 is disconnected at at least one of the plurality of narrow diameter portions 210. Compared with other conventional parts of the conductive plate 200, the material distribution of the narrow diameter portions 210 is relatively less and the structure is relatively weak, which enables the narrow diameter portions 210 to be disconnected with less resistance when impacted by the cutting portions 1302. For example, the plurality of narrow diameter portions 210 include 4 narrow diameter portions 210, and every 2 narrow diameter portions 210 correspond to one cutting portion 1302.

[0063] When the impact force of the cutting portion 1302 acts on the narrow diameter portion 210, the narrow diameter portion 210 can quickly respond and break. This breaking process is not only fast, but also has high certainty and reliability. Through the plurality of narrow diameter portions 210, it can be ensured that the conductive plate 200 can be effectively disconnected under different working conditions, thereby interrupting the conduction state of the circuit and realizing the function of the open circuit device 100. At the same time, the distribution of the plurality of narrow diameter portions 210 also makes the energy distribution of the open circuit operation more uniform, reduces the potential damage caused by local stress concentration to the conductive plate 200 and the entire open circuit device 100, and improves the stability of the open circuit device 100.

[0064] In some embodiments, each of the plurality of narrow diameter portions 210 of the conductive plate 200 can be set to a V-shaped break point structure.

[0065] Specifically, when the V-shaped break point structure is subjected to the impact force of the cutting portion 1302, the force can be effectively dispersed and guided between the two branches of the V shape. This dispersion effect makes the stress acting at the break point more concentrated, so that a faster and more reliable disconnection effect can be achieved with a smaller impact force.

[0066] At the same time, the two branches of the V-shaped break point structure can also guide and restrict the movement direction of the cutting portion 1302 to a certain extent, ensuring that the cutting portion 1302 can accurately act on the break point position and avoiding the occurrence of open circuit failure or incomplete open circuit caused by deviation.

[0067] In some embodiments, the conductive plate 200 includes a through hole 220. The through hole 220 is provided at a position corresponding to the stopper 123 of the buffer cavity 121. During the installation process, the stopper 123 can pass through the through hole 220 on the conductive plate 200. In this way, the through hole 220 provides a passage for the stopper 123 to pass through, enabling the conductive plate 200 to be installed at a preset position of the buffer cavity 121 and maintaining a relatively stable positional relationship. This not only realizes the reliable fixation of the conductive plate 200 on the buffer cavity 121 but also ensures the relative position accuracy between the conductive plate 200 and the buffer cavity 121.

[0068] When the open circuit operation is performed, as the cutting member 130 moves, the stopper 123 needs to be stopped at a specific stage with the card slot 131 on the cutting member 130, and the presence of the through hole 220 ensures that the movement path for the stopper 123 to interact with the card slot is not blocked by the conductive plate 200. For example, when the card slot 131 of the cutting member 130 is about to cooperate with the stopper 123 to stop the movement of the cutting member 130, due to the connection relationship between the conductive plate 200 and the stopper 123 through the through hole 220, it can better adapt to this change and avoid affecting the accuracy and reliability of the entire open circuit process due to its own position deviation or instability.

[0069] As Figures 7 to 9 shown, in some embodiments, the cutting member 130 includes a guiding portion 1303. The guiding portion 1303 is tightly coupled to both sides of the cutting portion 1302 along the cutting direction B, providing a guiding function for the precise movement of the cutting member 130 during operation.

[0070] When the open circuit condition is met, the cutting member 130 needs to accurately insert a pair of cutting portions 1302 into the cutting channel 1211 of the buffer cavity 121 to complete the cutting operation. At this time, the guiding portion 1303 and the guiding groove 1212 provided on the buffer cavity 121 cooperate with each other to form a precise guiding system.

[0071] When the cutting member 130 starts to move, the guiding portions 1303 located on both sides of the cutting portion 1302 can slide along the guiding groove 1212 of the buffer cavity 121. This cooperation method enables the cutting member 130 to always maintain the correct trajectory when moving along the cutting direction B, ensuring that a pair of cutting portions 1302 can accurately enter the cutting channel 1211. Therefore, the guiding groove 1212 provides a stable movement path for the guiding portion 1303, restricting the movement or deviation of the guiding portion 1303 and the connected cutting portion 1302 in other directions, thus ensuring the accuracy and reliability of the cutting operation.

[0072] In some embodiments, there is an arc extinguishing narrow slit 102 between the cutting portion 1302 and the cutting channel 1211. This arc extinguishing narrow slit 102 provides a path and environment for the treatment of the electric arc. When the cutting portion 1302 starts the cutting operation and contacts the conductive plate 200, the circuit is instantaneously disconnected. At this time, due to the changes in current and voltage in the circuit, an electric arc will be generated between the cutting portion 1302 and the conductive plate 200. For example, the width of the arc extinguishing narrow slit 102 is 0.2 mm to 2 mm.

[0073] Furthermore, the narrow spatial structure of the arc extinguishing narrow slit 102 can exert a strong constraining effect on the electric arc. When the electric arc is generated, it will be attracted by the arc extinguishing narrow slit 102 and enter it. Inside the arc extinguishing narrow slit 102, due to the limitation of space, the electric arc will be stretched and cooled. The stretching of the electric arc causes its voltage to increase, thereby accelerating the extinguishing process of the electric arc. At the same time, the wall surface of the arc extinguishing narrow slit 102 can absorb the heat of the electric arc, further reducing the temperature of the electric arc and making it lose the energy to maintain combustion more quickly.

[0074] In addition, the arc extinguishing narrow slit 102 can also prevent the electric arc from spreading to the surroundings, avoiding damage to other components or affecting the normal operation of the circuit breaker 100. It concentrates the electric arc in a relatively small area for treatment, ensuring that the electric arc can be quickly and safely eliminated, thereby guaranteeing the performance and safety of the circuit breaker 100.

[0075] In some embodiments, the stop member 123 of the cutting member 130 includes a pair of elastic portions 1231 and a pair of clamping portions 1232. The pair of elastic portions 1231 are spaced and coupled to the support portion 122 along the axial direction A. The elastic portion 1231 has good elastic properties and can undergo elastic deformation in the force direction perpendicular to the axial direction A. For example, when the cutting member 130 moves to the card slot 131 and starts to contact the stop member 123, the stop member 123 will be subjected to the extrusion force from the wall of the card slot 131. At this time, the elastic portion 1231 can adapt to this pressure change through its own elastic deformation, ensuring that the movement process of the cutting member 130 is relatively smooth, and at the same time reducing the possible component damage or movement jamming caused by rigid collision.

[0076] Further, a pair of clamping portions 1232 are respectively coupled to the ends of the elastic portions 1231 away from the support portion 122, and they perform a clamping function during the operation of the stopper 123. When the cutting member 130 moves along the axial direction A, the card slot 131 will move together with the cutting member 130. Due to the structural characteristics and movement trajectory of the card slot 131, the clamping portion 1232 will be subjected to resistance from the wall of the card slot 131 during this process, and this resistance prompts the pair of elastic portions 1231 to undergo elastic deformation. This elastic deformation enables the clamping portion 1232 to adapt to the shape change and resistance change of the card slot 131 to a certain extent, ensuring that the cutting member 130 can continue to move along the correct path. When the cutting member 130 moves into place, the clamping portion 1232 can just be clamped in the card slot 131. At this time, the elastic restoring force of the elastic portion 1231 tightly fixes the clamping portion 1232 in the card slot 131 to prevent the cutting member 130 from accidentally moving or rebounding. This clamped state can ensure the stable stop of the cutting member 130 after completing the cutting operation, ensuring the state stability of the circuit breaker 100 after the work is completed.

[0077] In some embodiments, the card slot 131 of the cutting member 130 includes a reduced-diameter portion 1305 and a receiving portion 1306. The reduced-diameter portion 1305 is provided at the opening of the card slot 131. When the stopper 123 starts to enter the card slot 131 along the movement trajectory of the card slot 131, the reduced-diameter portion 1305 first contacts the clamping portion 1232 of the stopper 123. Since the diameter of the reduced-diameter portion 1305 is relatively small, during the movement of the cutting member 130, the reduced-diameter portion 1305 can closely abut against the clamping portion 1232. This abutting effect can prompt a pair of elastic portions 1231 connected to the clamping portion 1232 to undergo elastic deformation. After the elastic portion 1231 is subjected to the extrusion force from the reduced-diameter portion 1305, it will contract and bend in the direction of the force perpendicular to the axial direction A according to its own elastic characteristics. This process of elastic deformation enables the stopper 123 to adapt to the narrow space at the opening of the card slot 131 to a certain extent, and also provides conditions for the clamping portion 1232 to enter the inside of the card slot 131. In this way, the reduced-diameter portion 1305 effectively guides and adjusts the movement state and structural form of the stopper 123 at the initial stage when the stopper 123 enters the card slot 131.

[0078] Further, the receiving portion 1306 is disposed at one end of the reduced-diameter portion 1305 away from the opening. When the stopper 123 continues to move after overcoming the resistance of the reduced-diameter portion 1305, it will finally reach the receiving portion 1306. The space of the receiving portion 1306 is relatively large, and its size and shape are set to be suitable for completely accommodating a pair of engaging portions 1232 after the cutting member 130 moves into place. When the engaging portions 1232 enter the receiving portion 1306, due to the sudden increase in space, the previously compressed pair of elastic portions 1231 can rebound at this time. This rebounding force enables the engaging portions 1232 to be stably fixed within the receiving portion 1306 to ensure the stable position of the stopper 123 within the card slot 131. Therefore, the receiving portion 1306 not only provides a suitable staying space for the engaging portions 1232, but also cooperates with the reduced-diameter portion 1305 to jointly complete the precise positioning and fixing operation of the stopper 123.

[0079] As Figure 5 , Figure 10 and Figure 11 shown, in some embodiments, the buffer cavity 121 of the circuit breaker device 100 further includes a unidirectional air flow channel 126. The unidirectional air flow channel 126 is disposed at a preset position in the buffer cavity 121 between the side wall of the cutting channel 1211 and the end of the buffer space.

[0080] When a pair of cutting portions 1302 move within a pair of cutting channels 1211, gas flow will be generated. During this process, the gas state within the buffer space will be affected. The presence of the unidirectional air flow channel 126 provides a flow path for the gas in the buffer space, and its function is to allow the gas in the buffer space to flow from the end along the unidirectional air flow direction towards the arc extinguishing narrow slit 102. When the cutting portions 1302 move within the cutting channel 1211 and phenomena such as electric arcs occur, the gas flowing towards the arc extinguishing narrow slit 102 can effectively process and cool these electric arcs.

[0081] Further, the flow of the gas along the unidirectional air flow channel 126 is directional, and this unidirectionality ensures that the gas can stably and continuously flow towards the arc extinguishing narrow slit 102 without reverse flow or disorder. When the gas reaches the arc extinguishing narrow slit 102, it can blow and cool the electric arc, helping the electric arc to extinguish more quickly. At the same time, the gas flow can also carry away a part of the heat and impurities generated by the electric arc, maintaining the cleanliness and stability of the environment around the arc extinguishing narrow slit 102.

[0082] Exemplarily, the circuit breaker device 100 in the embodiments of the present disclosure can be applied to the breaking in high-current and high-voltage environments. For example, it can be applied to an environment with a voltage of 700V and a current of 5000A. Of course, it can also be applied to other voltage and current environments, and the embodiments of the present disclosure do not make specific limitations thereto.

[0083] In this way, during the operation of the breaking device 100, the unidirectional air flow channel 126 effectively guides and utilizes the gas, improving the arc extinguishing efficiency and performance stability of the breaking device 100.

[0084] In some embodiments, the unidirectional air flow channel 126 includes a flow channel main body 1261 and a plurality of side flow channels 1262, which together constitute an efficient gas guiding system.

[0085] Furthermore, the flow channel main body 1261 is arranged along the gas flow direction and is the main path for gas transmission. It contains multiple sub-flow channels arranged in a zigzag manner inside. The multiple sub-flow channels increase the path length of the gas flow, allowing the gas to have sufficient time and space for energy transfer and exchange within the flow channel main body 1261. For example, when the gas carries heat, the zigzag flow channel can allow the heat to be more fully dissipated into the surrounding environment, thereby reducing the temperature of the gas.

[0086] Furthermore, the plurality of side flow channels 1262 are respectively arranged on its side wall at intervals along the flow channel main body 1261 and are connected to the flow channel main body 1261. Each side flow channel 1262 includes a straight section and a transition section. The straight section is connected to the corresponding sub-flow channel in the flow channel main body 1261 and extends a certain distance in the direction opposite to the unidirectional air flow direction, so that when there is gas attempting to flow reversely, the straight section can first block and guide it. Since the extending direction of the straight section is opposite to the normal unidirectional air flow direction, it can change the flow direction of the reverse gas to a certain extent, making it difficult to continue flowing backward. The transition section is connected to the sub-flow channel upstream of the corresponding sub-flow channel in the unidirectional air flow direction after bending or arc transition from the end of the straight section. This not only realizes the smooth connection between the side flow channel 1262 and the flow channel main body 1261, but also can further guide the blocked reverse gas back into the correct flow direction of the flow channel main body 1261.

[0087] In other words, the tangent direction of the side flow channel 1262 is consistent with the reverse flow direction of the flow channel main body 1261. When the gas flows reversely, the side flow channel 1262 can exert a blocking effect on the reverse gas according to its tangent direction, just like a dam set in a river, preventing the reverse gas from advancing, thereby ensuring that the gas always flows in the preset unidirectional air flow direction. In addition, the cross-sectional shape of the side flow channel 1262 is various shapes such as rectangular, trapezoidal or circular, and no specific limitation is made in the embodiments of the present disclosure. Different cross-sectional shapes will affect the flow characteristics and resistance of the gas in the side flow channel 1262, and the most suitable cross-sectional shape can be selected according to specific situations to achieve the best gas flow effect and unidirectional air flow control.

[0088] Exemplarily, during the operation of the cutting member 130, the flow state of the gas changes. When the open - circuit condition is satisfied and an electric arc is generated, the gas in the arc - extinguishing narrow slit 102 expands rapidly due to the energy released by the electric arc. This expansion causes the gas to form a specific flow direction in the unidirectional gas - flow channel 126, that is, to flow from top to bottom. This is because in the initial stage, the pressure in the arc - extinguishing narrow slit 102 is relatively high, and the gas naturally flows towards the direction with lower pressure under the action of the pressure difference, thus forming the initial gas - flow direction.

[0089] However, as the cutting member 130 continues to operate, the situation gradually changes. Since the gas continuously flows from the cutting channel 1211 to the buffer space 125, the pressure in the buffer space 125 begins to rise. At the same time, the resistance of the unidirectional gas - flow channel 126 from bottom to top is small, and its function is similar to that of a one - way valve. When the pressure in the buffer space 125 rises to a certain level, the flow direction of the gas switches and flows from bottom to top.

[0090] At this time, the gas in the buffer space 125 starts to enter the arc - extinguishing narrow slit 102 under the push of the pressure. By the gas flowing from bottom to top, not only can the pressure distribution in different regions inside the open - circuit device 100 be adjusted, but also the gas in the buffer space 125 can be provided for the arc - extinguishing narrow slit 102 to meet the gas - environment requirements during the arc - extinguishing process. For example, the gas in the buffer space 125 can further help cool the electric arc or participate in the gas - exchange process after the electric arc is extinguished.

[0091] On the other hand, as the cutting member 130 moves, the low - temperature gas in the buffer space 125 enters the arc - extinguishing narrow slit 102 through the unidirectional gas - flow channel 126 under the guidance of the pressure difference and the unidirectional gas - flow channel 126. The low - temperature gas entering the arc - extinguishing narrow slit 102 through the unidirectional gas - flow channel 126 contacts the high - temperature gas in the arc - extinguishing narrow slit 102 and rapidly absorbs the heat of the high - temperature gas through heat transfer, thereby gradually reducing the temperature of the arc - extinguishing narrow slit 102. As the temperature decreases, the energy of the electric arc gradually weakens, and the arc voltage also changes accordingly, thus extinguishing the electric arc.

[0092] The above has described the various implementations of the present disclosure. The above description is exemplary and not exhaustive, and is not limited to the disclosed implementations. Many modifications and variations are obvious to those of ordinary skill in the art in the technical field without departing from the scope and spirit of the described implementations. The choice of terms used herein is intended to best explain the principles of the implementations, practical applications, or improvements to the technologies in the market, or to enable other ordinary technical personnel in the technical field to understand the various implementation manners disclosed herein.

Claims

1. A circuit breaker device, characterized in that: include: A buffer cavity (121), comprising a pair of cut-off channels (1211) arranged at intervals along an axial direction (A) of the buffer cavity (121), a support portion (122) being provided between the pair of cut-off channels (1211), and the support portion (122) comprising a stopper (123) arranged along the axial direction (A); a conductive plate (200) arranged at the opening of the pair of cut-off channels (1211) at one end in the axial direction (A) and at least partially covering the pair of cut-off channels (1211); and A cutting member (130) comprises a piston portion (1301) and a pair of cutting portions (1302), wherein the pair of cutting portions (1302) are coupled to a side of the piston portion (1301) close to the buffer cavity (121) along the axial direction (A), and are located on a side of the conductive plate (200) away from the cutting channel (1211), and are aligned with the pair of cutting channels (1211) in the axial direction (A), so as to allow the pair of cutting portions (1302) to cut the conductive plate (200) and move along the cutting channel (1211) when a circuit-breaking condition is met. The piston portion (1301) comprises a slot (131) arranged between the pair of cutting portions (1302), and the slot (131) is arranged to accommodate the stop member (123) after the pair of cutting portions (1302) move into position along the pair of cutting channels (1211), so that the cutting member (130) stops moving.

2. The circuit breaker device according to claim 1, characterized in that: The stop member (123) comprises: a pair of elastic parts (1231), coupled to the support part (122) at intervals along the axial direction (A), and adapted to elastically deform in a force direction perpendicular to the axial direction (A); and A pair of clamping portions (1232) are respectively coupled to the ends of the elastic portion (1231) away from the supporting portion (122), and are suitable for causing the pair of elastic portions (1231) to elastically deform during the movement of the stop member (123) along the clamping groove (131), and to be clamped in the clamping groove (131) after the stop member (123) moves into place.

3. The circuit breaker device according to claim 2, characterized in that: The card slot (131) comprises: a reduced diameter portion (1305) disposed at the opening of the clamping slot (131) and adapted to abut against the clamping portion (1232) during the movement of the stopper (123) along the clamping slot (131) to promote elastic deformation of the pair of elastic portions (1231); and The accommodating portion (1306) is arranged at one end of the reduced diameter portion (1305) away from the opening, and is suitable for accommodating the pair of clamping portions (1232) after the stop member (123) moves into place, and allowing the pair of elastic portions (1231) to rebound.

4. The circuit breaker device according to any one of claims 1 to 3, characterized in that: The buffer cavity (121) further comprises: a buffer space (125) connected to each of the pair of cutting channels (1211), wherein the cross-sectional shape of the buffer space (125) in a cross-section parallel to the axial direction (A) is a U-shaped structure, and a branch of the U-shaped structure is connected to the corresponding cutting channel (1211); and The orifice plate (124) is arranged between the cut-off channel (1211) and a branch of the U-shaped structure of the corresponding buffer space (125).

5. The circuit breaker device according to any one of claims 1 to 3, characterized in that: The conductive plate (200) comprises: The plurality of narrow diameter portions (210) are respectively aligned with the pair of cutting portions (1302), and are suitable for causing the conductive plate (200) to be disconnected at at least one narrow diameter portion (210) among the plurality of narrow diameter portions (210) under the impact force of the pair of cutting portions (1302) along the axial direction (A) when the circuit breaker is in a working state.

6. The circuit breaker device according to claim 5, characterized in that: Each of the plurality of narrow diameter portions (210) comprises a V-shaped breakpoint structure.

7. The circuit breaker device according to any one of claims 1 to 3 and 6, characterized in that: The conductive plate (200) further comprises: A through hole (220) is provided at a position corresponding to the stopper (123), and is suitable for the stopper (123) to pass through the through hole (220), so that the conductive plate (200) is arranged on the buffer cavity (121).

8. The circuit breaker device according to any one of claims 1 to 3 and 6, characterized in that: The cutting member (130) further comprises: The guide portion (1303) is coupled to both sides of the cutting portion (1302) along the cutting direction (B), and the buffer cavity (121) also includes a guide groove (1212) cooperating with the guide portion (1303) to facilitate the pair of cutting portions (1302) to enter the cutting channel (1211).

9. The circuit breaker device according to any one of claims 1 to 3 and 6, characterized in that: An arc-extinguishing narrow gap (102) is provided between the cutting portion (1302) and the cutting channel (1211).

10. The circuit breaker device according to any one of claims 1 to 3 and 6, characterized in that: Also includes: An impact cavity (111) is coupled to the buffer cavity (121), and the cutting piece (130) is coupled inside the impact cavity (111) along the axial direction (A).

11. The circuit breaker device according to claim 10, characterized in that: Also includes: An ignition assembly (1111) is coupled to the top end of the impact cavity (111) along the axial direction (A).

12. The circuit breaker device according to claim 11, characterized in that: The piston portion (1301) of the cutting member (130) further comprises: The explosion chamber (1304) is arranged corresponding to the ignition assembly (1111) so as to be suitable for detonating the explosive in the explosion chamber (1304) via the ignition assembly (1111) when a circuit-breaking condition is met, so as to generate a thrust for the cutting piece (130) to move along the axial direction (A).