Circuit breaker
The circuit breaker uses a gas generator and porous cooling bodies to separate conductors and extinguish arcs, addressing the challenge of arc formation during high current conditions by promoting rapid arc extinction and preventing pressure buildup.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
- Filing Date
- 2024-08-28
- Publication Date
- 2026-04-10
AI Technical Summary
Existing circuit breakers face challenges in effectively extinguishing arcs that form when conductors are broken under high current conditions.
The circuit breaker incorporates a gas generator to drive an operating pin, which separates a conductor into two parts, and uses a cooling body composed of porous metal or inorganic oxides to promote arc extinction by increasing surface area contact and preventing pressure buildup.
The solution accelerates arc extinction and prevents pressure increases within the circuit breaker, enhancing safety and reliability.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure relates to a cutoff device, and more particularly to a cutoff device for cutting off an electric circuit.
Background Art
[0002] The circuit breaker described in Patent Document 1 includes at least one conductor designed to be connected to an electric circuit, a housing, a matrix, a punch, and an actuator using an explosive. The actuator is designed to move the punch from a first position to a second position when ignited. When the punch and the matrix move the punch from the first position to the second position, they break at least one conductor into at least two separate parts.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In a cutoff device such as the circuit breaker described in Patent Document 1, when the conductor is broken while a large current is flowing through the conductor, an arc may occur at the broken portion.
[0005] An object of the present disclosure is to provide a cutoff device capable of promoting arc extinction.
Means for Solving the Problems
[0006] The cutoff device according to one aspect of the present disclosure includes a gas generator, an operating pin, a conductor, and a fibrous member. Regulatory bodies andThe gas generator generates gas. The operating pin is located below the gas generator and moves downward due to the pressure of the gas generated by the gas generator. The conductor has a separation portion located below the operating pin, a first terminal portion connected to one end of the separation portion, and a second terminal portion connected to the other end of the separation portion. The fibrous member is located below the separation portion. The restrictor is positioned between the operating pin and the fibrous member. When the operating pin moves downward, the separation portion is separated from the first terminal portion and the second terminal portion and moves downward, the lower surface of the separation portion comes into contact with the fibrous member, and the fibrous member is compressed. When the operating pin moves downward, the restrictor moves downward. [Effects of the Invention]
[0007] This disclosure has the advantage of being able to accelerate the extinguishing of the arc. [Brief explanation of the drawing]
[0008] [Figure 1] Figure 1 is a cross-sectional perspective view of a circuit breaker according to one embodiment. [Figure 2] Figure 2 is a perspective view of the same circuit breaker. [Figure 3] Figure 3 is a perspective view of the main part of the circuit breaker shown above. [Figure 4] Figure 4 is a cross-sectional perspective view of the same circuit breaker with some of its components removed. [Figure 5] Figure 5 is a cross-sectional view of the same circuit breaker, showing the state before the operating pin is driven. [Figure 6] Figure 6 is a cross-sectional view of the same circuit breaker, showing the state immediately after the operating pin is driven. [Figure 7] Figure 7 is a cross-sectional view of the same circuit breaker, showing the state in which the movement of the operating pin has been completed. [Figure 8] Figure 8 is a cross-sectional view of the circuit breaker according to Modified Example 1. [Figure 9] Figure 9 is a cross-sectional view of the circuit breaker according to the modified example 2. [Figure 10] Figure 10 is a cross-sectional view of the circuit breaker according to the modified example 3. [Figure 11] FIG. 11 is a cross-sectional view of the cutoff device according to Modification 4. [Figure 12] FIG. 12 is a cross-sectional view of the cutoff device according to Modification 5. MODE FOR CARRYING OUT THE INVENTION
[0009] Hereinafter, the cutoff device according to the embodiment of the present disclosure will be described with reference to the accompanying drawings. However, each of the following embodiments is only a part of various embodiments of the present disclosure. Each of the following embodiments can be variously modified according to the design and the like as long as the object of the present disclosure can be achieved. In addition, each drawing described in each of the following embodiments is a schematic drawing, and the ratio of the size and thickness of each component in the drawing does not necessarily reflect the actual dimensional ratio.
[0010] (1) Embodiment (1.1) Outline As shown in FIG. 1, the cutoff device 1 of the present embodiment includes a conductor 2, a cooling body 3, and a housing 9.
[0011] The conductor 2 is connected to an external circuit. A current supplied from the external circuit can flow through the conductor 2. At least a part of the conductor 2 is accommodated in the internal space 90 of the housing 9.
[0012] The cooling body 3 is disposed in the internal space 90 of the housing 9. The cooling body 3 cools an arc generated in the internal space 90.
[0013] For example, when the conductor 2 is broken in the internal space 90 while a current is flowing through the conductor 2, an arc may be generated in the internal space 90. The cooling body 3 contacts the arc generated in the internal space 90. Thereby, the arc is cooled and the arc extinction is promoted. When the arc contacts the cooling body 3, the metal gas constituting the arc adheres to the cooling body 3. Therefore, the presence of the cooling body 3 can suppress an increase in the pressure of the internal space 90 caused by the generation of the arc.
[0014] The cooling body 3 has a porous body 30. The porous body 30 constituting the cooling body 3 is composed of at least one of a metal oxide and an inorganic oxide.
[0015] The porous body 30 in the present disclosure may be a single member having a large number of fine pores, or may be a collection of one or more members (the members themselves may or may not have pores) arranged to form a gap between themselves or with other members. The porous body 30 in the cutoff device 1 of the present embodiment is a collection of a plurality of members provided with a fibrous skeleton 300 (see FIG. 1). In the cutoff device 1 of the present embodiment, the porous body 30 is deformable. Also, the members themselves provided with the fibrous skeleton 300 constituting the porous body 30 are also deformable. The members constituting the porous body 30 may include only the fibrous skeleton 300, or may further include one or more side chain portions branched from the fibrous skeleton 300.
[0016] As described above, according to the cutoff device 1 of the present embodiment, the cooling body 3 for cooling the arc has the porous body 30. Therefore, the surface area can be increased and it becomes easy to contact the arc. Thereby, according to the cutoff device 1 of the present embodiment, it is possible to promote the arc extinction. In the present disclosure, promoting arc extinction may include shortening the duration of the generated arc or reducing the energy of the generated arc.
[0017] Also, the metal oxide and the inorganic oxide are unlikely to generate gas even when melted. Therefore, if the porous body 30 constituting the cooling body 3 is composed of at least one of a metal oxide and an inorganic oxide as in the cutoff device 1 of the present embodiment, the cooling body 3 is unlikely to generate gas even when melted by the heat of the arc. Therefore, even if an arc occurs in the internal space 90, the pressure in the internal space 90 of the housing 9 is unlikely to rise. Therefore, according to the cutoff device 1 of the present embodiment, it is possible to suppress the occurrence of problems caused by the increase in the pressure in the internal space 90.
[0018] (1.2) Configuration The circuit breaker 1 of this embodiment will be described in more detail with reference to Figures 1 to 7.
[0019] The circuit breaker 1 comprises a conductor 2, a cooling element 3, and a housing 9, as well as a restrictor 4, a drive mechanism 7, and an operating pin 8. The conductor 2 comprises a first terminal portion 21, a second terminal portion 22, and a separation portion 23.
[0020] The circuit breaker 1 is installed, for example, in an electric vehicle. The circuit breaker 1 is installed, for example, in an electrical circuit connecting the power supply and the motor of an electric vehicle, and switches whether or not current is supplied from the power supply to the motor. The operation of the drive mechanism 7 in the circuit breaker 1 is controlled, for example, by a control unit (ECU: Electronic Control Unit, etc.) installed in the electric vehicle.
[0021] In the following, for the sake of explanation, the direction in which the operating pin 8 moves and the direction in which the operating pin 8 and the conductor 2 face each other (the up-down direction in Figure 5) will be referred to as the up-down direction, the side of the conductor 2 as seen from the perspective of the operating pin 8 will be referred to as the lower side, and the side of the operating pin 8 as seen from the perspective of the conductor 2 will be referred to as the upper side. The longitudinal direction of the conductor 2 in which the first terminal portion 21 and the second terminal portion 22 are aligned (the left-right direction in Figure 5) will be referred to as the left-right direction. The direction perpendicular to both the up-down and left-right directions (the direction perpendicular to the plane of the paper in Figure 5) will be referred to as the front-back direction. Note that these directions are for the sake of explanation of the structure of the circuit breaker 1 and do not specify the orientation of the circuit breaker 1 when it is in use.
[0022] The conductor 2 is made of, for example, copper. As shown in Figures 3 and 5, the conductor 2 is formed in the shape of a rectangular plate with thickness in the vertical direction. As shown in Figure 3, the first terminal portion 21, the second terminal portion 22, and the separation portion 23 have equal width (dimension in the front-to-back direction) and thickness (dimension in the vertical direction).
[0023] The first terminal portion 21 and the second terminal portion 22 are parts of the conductor 2 that are electrically connected to an external circuit (the electrical circuit of the electric vehicle). Each of the first terminal portion 21 and the second terminal portion 22 has, for example, a through hole. Each of the first terminal portion 21 and the second terminal portion 22 can be electrically connected to the external circuit by passing a screw through the through hole and connecting this screw to a terminal of the external circuit. The first terminal portion 21 and the second terminal portion 22 are not limited to a configuration with a through hole, and any terminal structure can be adopted.
[0024] The separation portion 23 is the part of the conductor 2 that connects the first terminal portion 21 and the second terminal portion 22. The first terminal portion 21, the second terminal portion 22, and the separation portion 23 are formed integrally. In the longitudinal direction of the conductor 2, the first terminal portion 21, the separation portion 23, and the second terminal portion 22 are arranged in this order.
[0025] The conductor 2 has two grooves 24 aligned in the longitudinal direction of the conductor 2. Each groove 24 is formed on the first surface F1 (see Figure 5) of the conductor 2 and on the second surface F2 (see Figure 5) opposite to the first surface F1. The first surface F1 is the surface facing the operating pin 8. The depth direction of each groove 24 is aligned with the thickness direction of the conductor 2. Each of the two grooves 24 is partially cylindrical (arc-shaped). The two grooves 24 are formed concentrically. The outer diameter (farthest from the center) and inner diameter (closer to the center) of the two grooves 24 are equal.
[0026] The two grooves 24 define the boundary portion 240 between the first terminal portion 21 and the separation portion 23, and the boundary portion 240 between the second terminal portion 22 and the separation portion 23. The breaking strength of the boundary portions 240 is less than or equal to the breaking strength of the first terminal portion 21 and the second terminal portion 22. Furthermore, the breaking strength of the boundary portions 240 is less than or equal to the breaking strength of the separation portion 23. In other words, the boundary portions 240 are more prone to breaking than other parts of the conductor 2.
[0027] The housing 9 is formed of, for example, resin. The housing 9 has a space (internal space 90) inside it. The internal space 90 is a sealed space isolated from the outside of the housing 9.
[0028] As shown in Figures 1, 2, and 4, the housing 9 comprises a first body 91, a second body 92, a third body 93, a fourth body 94, a first holder 95, and a second holder 96.
[0029] The first body 91 is rectangular in shape. A recess 910 is formed in the center of the upper surface of the first body 91, having an inner surface with a circular cross-section and opening upwards. The bottom surface of the recess 910 is curved.
[0030] The second body 92 is rectangular in shape. The second body 92 is placed on top of the first body 91. A through hole 920 with a circular cross-section extending vertically is formed in the center of the second body 92. The diameter of the through hole 920 is approximately equal to the diameter of the recess 910 in the first body 91.
[0031] On the upper surface of the second body 92, a recess 921 is formed around the through hole 920, with a diameter larger than the diameter of the through hole 920. The lower part of the first holder 95 is fitted into this recess 921. Additionally, an annular recess is formed on the lower surface of the second body 92 (the surface in contact with the upper surface of the first body 91). The O-ring 61 is fitted into this recess.
[0032] Furthermore, a fitting recess extending in the left-right direction is formed on the upper surface of the second body 92. The lower part of the conductor 2 is fitted into this fitting recess.
[0033] The third body 93 is rectangular and box-shaped. The third body 93 is placed on top of the second body 92. A through hole 930 with a circular cross-section that extends vertically is formed in the center of the third body 93.
[0034] On the lower surface of the third body 93, a recess 931 is formed around the through hole 930, with a diameter larger than the diameter of the through hole 930. The upper part of the first holder 95 is fitted into this recess 931.
[0035] Furthermore, a fitting recess extending in the left-right direction is formed on the lower surface of the third body 93. The upper portion of the conductor 2 is fitted into this fitting recess.
[0036] The fourth body 94 has a shape that combines a rectangular box-shaped portion and a cylindrical portion formed on its upper surface. The fourth body 94 is superimposed on the upper surface of the third body 93.
[0037] A through-hole extending vertically is formed in the center of the fourth body 94. Additionally, an annular recess is formed on the lower surface of the fourth body 94 (the surface in contact with the upper surface of the third body 93). An O-ring 62 is fitted into this recess.
[0038] The first holder 95 is formed in a hollow cylindrical shape with its axis aligned vertically. The first holder 95 has a through hole 950 in its center that extends vertically. The through hole 950 includes a first hole 951 and a second hole 952 that are connected to each other in the vertical direction. The first hole 951 has a circular cross-section. The first hole 951 extends vertically and its diameter is constant in the vertical direction. The diameter of the first hole 951 is approximately equal to the diameter of the through hole 920 of the second body 92. The second hole 952 has a circular cross-section. The second hole 952 extends upward from the upper end of the first hole 951 and is a tapered hole whose diameter gradually widens as it goes upward. That is, the inner circumferential surface of the first holder 95 has a partially conical inclined surface at its upper end, whose diameter gradually narrows as it goes downward. The diameter of the upper end of the second hole 952 is approximately equal to the diameter of the through hole 930 of the third body 93.
[0039] On the inner circumferential surface of the first holder 95 (the inner surface of the through hole 950), an annular step 953 is formed at the portion where the first hole 951 and the second hole 952 connect.
[0040] As shown in Figure 1, the first holder 95 is held between the second body 92 and the third body 93 with the lower part of the first holder 95 fitted into the recess 921 of the second body 92 and the upper part of the first holder 95 fitted into the recess 931 of the third body 93.
[0041] With the first holder 95 fitted into the recess 921, the lower end of the first hole 951 of the first holder 95 is connected to the upper end of the inner circumferential surface of the through hole 920 of the second body 92. With the first holder 95 fitted into the recess 931, the upper end of the second hole 952 of the first holder 95 is connected to the lower end of the inner circumferential surface of the through hole 930 of the third body 93.
[0042] Through holes 954 are formed in the left and right side walls of the first holder 95, extending in the left-right direction. The cross-sectional shape of the through holes 954 is approximately the same as the cross-sectional shape of the conductor 2. The conductor 2 is held in the first holder 95 by being inserted into the left and right through holes 954 of the first holder 95.
[0043] As shown in Figures 1 and 4, the diameter of the first hole 951 in the through hole 950 of the first holder 95 is approximately equal to the diameter of the groove 24 in the conductor 2. More specifically, the diameter of the first hole 951 is smaller than the outer diameter of the groove 24 and larger than the inner diameter. The conductor 2 is held in the first holder 95 at a position where the groove 24 faces the inner surface of the first hole 951. In other words, in the conductor 2, the end of the first terminal portion 21 on the separation portion 23 side and the end of the second terminal portion 22 on the separation portion 23 side are held in the housing 9 (first holder 95).
[0044] With the conductor 2 passed through the through hole 954 and the first holder 95 fitted into the recesses 921 and 931, the conductor 2 is fitted into the fitting recess on the upper surface of the second body 92 and the fitting recess on the lower surface of the third body 93 (see Figure 4).
[0045] In the conductor 2, the separation portion 23 is housed in the internal space 90 of the housing 9. As shown in Figure 1, the conductor 2 is positioned such that the separation portion 23 faces the lower surface of the operating pin 8. In the conductor 2, the end of the first terminal portion 21 opposite to the separation portion 23, and the end of the second terminal portion 22 opposite to the separation portion 23 are exposed to the outside of the housing 9.
[0046] As shown in Figure 1, on the outer circumferential surface of the first holder 95, the area around the through hole 954 is an enlarged diameter section, which is larger in diameter than other parts. The diameter of the enlarged diameter section decreases as it moves away from the through hole 954 (up and down). This enlarged diameter section improves the strength of the first holder 95.
[0047] The first holder 95 may be made of a material that has higher heat resistance than, for example, the material of the second body 92 and the material of the third body 93.
[0048] The second holder 96 is positioned within the through-hole of the fourth body 94. The second holder 96 has a shape in which its outer circumferential surface conforms to the inner circumferential surface of the through-hole of the fourth body 94.
[0049] The second holder 96 has a circular inner surface in cross-section and a recess 960 that opens downwards. The diameter of the inner surface of the recess 960 is approximately equal to the diameter of the through hole 930 of the third body 93. When the second holder 96 is positioned inside the fourth body 94, the lower end of the inner surface of the recess 960 of the second holder 96 is connected to the upper end of the inner surface of the through hole 930 of the third body 93.
[0050] Furthermore, the second holder 96 is equipped with a cylindrical housing wall 961 at its upper end. The gas generator 70 of the drive mechanism 7 is positioned inside the housing wall 961. An O-ring 64 is positioned between the housing wall 961 and the gas generator 70. The position of the gas generator 70 inside the housing wall 961 seals the internal space 90 of the housing 9.
[0051] As shown in Figure 4, the internal space 90 (sealed space) of the housing 9 includes a first space SP1 and a second space SP2. The first space SP1 and the second space SP2 are connected.
[0052] The first space SP1 is the space enclosed by the portion of the inner surface of the through-hole 950 of the first holder 95 above the conductor 2 (before it is broken), the inner surface of the through-hole 930 of the third body 93, the inner surface of the recess 960 of the second holder 96, and the lower surface of the gas generator 70. In other words, the first space SP1 is the space above the conductor 2 in the internal space 90. The operating pin 8 is positioned in this first space SP1.
[0053] The second space SP2 is the space enclosed by the portion of the inner surface of the through-hole 950 of the first holder 95 below the conductor 2 (before it is broken), the inner surface of the through-hole 920 of the second body 92, and the inner surface of the recess 910 of the first body 91. In other words, the second space SP2 is the space below the conductor 2 in the internal space 90. The second space SP2 is the space in which the separation portion 23, separated from the first terminal portion 21 and the second terminal portion 22, is housed. For this reason, the second space SP2 will also be referred to as the "housing space SP20" below.
[0054] The drive mechanism 7 includes a gas generator 70. The drive mechanism 7 moves the operating pin 8 in conjunction with the pressure of the gas generated by the gas generator 70. The gas generator 70 is located inside the housing wall 961. The gas generator 70 generates gas by the combustion of fuel 74. As shown in Figure 1, the gas generator 70 includes fuel 74, a case 71, two pin electrodes 72 for energization, and a heating element 73.
[0055] The case 71 is a hollow cylindrical shape. The case 71 has an internal space at its lower end. The fuel 74 and the heating element 73 are housed in this internal space of the case 71. The case 71 has, for example, a cross groove formed in the lower wall that constitutes the internal space, and the part where this groove is formed is more prone to fracture than other parts.
[0056] Fuel 74 burns and produces gas when the temperature rises. Fuel 74 is, for example, explosives such as nitrocellulose, lead azide, black powder, or glycidyl azidopolymer.
[0057] The two pin electrodes 72 are held in the case 71. The first end of each of the two pin electrodes 72 is exposed to the outside of the housing 9. The second end of each of the two pin electrodes 72 is connected to a heating element 73. In other words, the heating element 73 is connected between the two pin electrodes 72. The heating element 73 generates heat when an electric current is passed through it. The heating element 73 is, for example, a nichrome wire, an alloy wire of iron, chromium, and aluminum, etc.
[0058] The gas generator 70 generates gas by burning fuel 74. More specifically, when current is passed between the two pin electrodes 72 of the gas generator 70, the heating element 73 generates heat, raising the temperature of the fuel 74 around the heating element 73. This causes the fuel 74 to burn and gas is generated.
[0059] As shown in Figure 1, the operating pin 8 is located in the internal space 90 of the housing 9. The operating pin 8 is located between the gas generator 70 and the separation unit 23. The operating pin 8 has electrical insulation properties. The operating pin 8 is made of, for example, resin.
[0060] The operating pin 8 comprises a first columnar portion, a second columnar portion, and a third columnar portion. The first columnar portion is cylindrical and located on the side closer to the separation portion 23 (lower side). The third columnar portion is cylindrical with a larger outer diameter than the first columnar portion and is located on the side further away from the separation portion 23 (upper side). The second columnar portion connects the first columnar portion and the third columnar portion and is frustoconical in shape, with the diameter gradually increasing from the first columnar portion to the third columnar portion. In other words, as shown in Figure 3, the outer circumferential surface 80 of the operating pin 8 includes a first side surface 81 corresponding to the outer surface of the first columnar portion, a second side surface (inclined surface) 82 corresponding to the outer surface of the second columnar portion, and a third side surface 83 corresponding to the outer surface of the third columnar portion.
[0061] The diameter of the first side surface 81 is approximately equal to the diameter of the first hole 951 of the through hole 950 of the first holder 95. The diameter of the third side surface 83 is approximately equal to the diameter of the inner circumferential surface of the recess 960 of the second holder 96 and the diameter of the through hole 930 of the third body 93. The inclination of the second side surface (inclined surface) 82 is approximately equal to the inclination of the second hole 952 of the through hole 950 of the first holder 95.
[0062] As shown in Figure 3, an annular recess is formed on the outer circumferential surface of the third columnar portion of the operating pin 8. An O-ring 65 is positioned in this recess (see Figure 1). The outer edge of the O-ring 65 is in contact with the inner surface of the recess 960. The frictional force between the O-ring 65, the operating pin 8, and the second holder 96 holds the operating pin 8 within the first space SP1 of the housing 9. In addition, a recess 84 is formed on the upper surface of the operating pin 8.
[0063] The operating pin 8 is positioned within the first space SP1 of the housing 9 such that its first surface (top surface) in the height direction faces the gas generator 70. With the operating pin 8 positioned, an airtight space (pressurized chamber 75) is formed within the housing 9, surrounded by the recess 84 of the operating pin 8, the bottom surface of the gas generator 70, and the inner surface of the recess 960 (see Figure 1).
[0064] The height (vertical dimension) of the operating pin 8 is smaller than the vertical dimension of the first space SP1. The operating pin 8 is positioned within the first space SP1 of the housing 9 such that a gap (hereinafter also referred to as "gap space SP11") is created between the tip of the operating pin 8 in the direction of movement (the surface facing the separation portion 23 of the conductor 2; the lower surface) and the conductor 2.
[0065] The cooling body 3 is located in the internal space 90 of the housing 9. The cooling body 3 has electrical insulating properties. In the circuit breaker 1 of this embodiment, the cooling body 3 is located in both the first space SP1 and the second space SP2 in the internal space 90. That is, the cooling body 3 is located on both sides of the conductor 2 (separation part 23) in the thickness direction (vertical direction) within the internal space 90. The cooling body 3 is located around the conductor 2. The cooling body 3 is in contact with the conductor 2 (separation part 23). The cooling body 3 is located within the projection area of the separation part 23 in the direction of movement of the operating pin 8.
[0066] More specifically, the cooling element 3 is positioned in the gap (gap space SP11) between the conductor 2 (separation part 23) and the operating pin 8 within the first space SP1. The cooling element 3 is positioned throughout the entire gap space SP11. Hereinafter, the portion of the cooling element 3 positioned in the gap space SP11 will also be referred to as the first cooling element 31. The first cooling element 31 is in contact with the upper surface of the conductor 2 (separation part 23).
[0067] Furthermore, the cooling element 3 is located in the second space SP2 (housing space SP20). The cooling element 3 is located throughout the entire housing space SP20. Hereinafter, the portion of the cooling element 3 located in the housing space SP20 will also be referred to as the second cooling element 32. The second cooling element 32 is in contact with the lower surface of the conductor 2 (separation part 23).
[0068] The cooling element 3 may be placed in the space between the side surface of the conductor 2 and the inner circumferential surface of the housing 9.
[0069] As described above, the cooler 3 has a porous body 30. The porous body 30 constituting the cooler 3 contains at least one of a metal oxide or an inorganic oxide. Here, the material of the porous body 30 (cooler 3) is at least one of a metal oxide or an inorganic oxide.
[0070] The metal oxide material for the cooler 3 includes at least one of the following: aluminum oxide, zirconia oxide, and iron oxide. The inorganic oxide material for the cooler 3 includes at least one of the following: silicon oxide, zinc oxide, and magnesium oxide. Preferably, the metal oxide or inorganic oxide material for the cooler 3 is a substance that does not generate gas when melted. Note that "does not generate gas when melted" does not mean that no gas is generated at all when melted, but rather that a small amount of gas may be generated as long as it does not affect the performance of the shutoff device 1 (for example, to the extent that the pressure in the internal space 90 does not rise excessively).
[0071] In the shut-off device 1 of this embodiment, the material of the coolant 3 mainly contains aluminum oxide (Al2O3) and silicon oxide (SiO2). The ratio of aluminum oxide to silicon oxide is, for example, in the range of 7:3 to 9:1. The material of the coolant 3 may also be, for example, mullite (aluminosilicate mineral).
[0072] In the shutoff device 1 of this embodiment, as described above, the porous body 30 constituting the cooling body 3 is an assembly of multiple members having a fibrous skeleton 300. The members having a fibrous skeleton 300 are, in this case, so-called mineral wool, and more specifically, alumina fibers mainly composed of aluminum oxide. For example, the average diameter (fiber diameter) of mineral wool is about a few to a dozen μm, and the density (true specific gravity) is about 3 to 4 g / cm3.
[0073] The first cooler 31 and the second cooler 32 may be made of the same material or different material. Also, the ratio of aluminum oxide to silicon oxide in the first cooler 31 and the second cooler 32 may be the same or different material. In the shut-off device 1 of this embodiment, the first cooler 31 and the second cooler 32 are made of the same material (aluminum oxide and silicon oxide), and the ratio of aluminum oxide to silicon oxide is the same in each.
[0074] In the shut-off device 1 of this embodiment, the density of the coolant 3 is approximately 0.1 to 0.3 g / cm³. The porosity of the coolant 3 (the ratio of gaps contained within the coolant 3 to its volume) is, for example, approximately 90 to 95%. Therefore, the coolant 3 is compressible and deformable when subjected to external force. When the coolant 3 is positioned in contact with the conductor 2, it is preferable that the coolant 3 has a density such that it does not collapse under its own weight and separate from the conductor 2. However, the density required to prevent the coolant 3 from collapsing under its own weight and separating from the conductor 2 can vary depending on the volume of the coolant 3, the frictional force between the coolant 3 and the inner surface of the internal space 90 of the housing 9, etc.
[0075] The first cooler 31 and the second cooler 32 may have the same or different densities. In the shut-off device 1 of this embodiment, the first cooler 31 has a higher density than the second cooler 32. That is, the density of the cooler 3 is greater in the portion (first cooler 31) placed in the gap (gap space SP11) than in the portion (second cooler 32) placed in the containment space SP20. In the shut-off device 1 of this embodiment, the density of the first cooler 31 is greater than that of the second cooler 32 due to the different packing rates of the alumina fibers (see Figure 1).
[0076] The regulating body 4 is located in the internal space 90 of the housing 9. The regulating body 4 is located in the first space SP1. The regulating body 4 has electrical insulating properties. In this case, the regulating body 4 is made of resin.
[0077] The restrictor 4 is disc-shaped. The outer diameter of the restrictor 4 is larger than the diameter of the first hole 951. The outer diameter of the restrictor 4 is approximately equal to the diameter of the annular step 953 of the first holder 95. The restrictor 4 is fitted into the step 953 and held by the first holder 95. The restrictor 4 is positioned between the operating pin 8 and the conductor 2 (separation part 23). The restrictor 4 is positioned between the operating pin 8 and the coolant 3 (first coolant 31). The restrictor 4 divides the first space SP1 into a gap space SP11 and an arrangement space SP12 where the operating pin 8 is positioned. Because of the restrictor 4, the first coolant 31, which is positioned in the gap space SP11, has difficulty moving toward the arrangement space SP12. In short, the restrictor 4 restricts the movement of the coolant 3.
[0078] A groove 41 is formed on the surface (upper surface) of the regulating body 4 that faces the operating pin 8, and is concentric with the outer edge of the regulating body 4. The diameter of the groove 41 is approximately equal to the diameter of the lower surface of the operating pin 8. The groove 41 faces the outer edge of the lower surface of the operating pin 8. When the regulating body 4 is subjected to force in the thickness direction (vertical direction), it is prone to fracture at the portion of the groove 41. In addition to or instead of the groove 41, the regulating body 4 may also have a groove similar to the groove 41 formed on the surface (lower surface) that faces the first cooling body 31.
[0079] The operating pin 8 is driven by the drive mechanism 7. The operating pin 8 is driven by the pressure of the gas generated in the gas generator 70 and moves toward the conductor 2 in the direction of movement (downward).
[0080] The operating pin 8 is driven downward by the drive mechanism 7, thereby separating the separation portion 23 from at least one of the first terminal portion 21 and the second terminal portion 22. Here, the operating pin 8 separates the separation portion 23 from both the first terminal portion 21 and the second terminal portion 22. Here, as shown in Figures 6 and 7, the operating pin 8 separates the separation portion 23 from the first terminal portion 21 and the second terminal portion 22 by breaking the conductor 2. The operating pin 8 pushes the separation portion 23 from above (here via the first coolant 31 and the restrictor 4), thereby separating the separation portion 23 from the first terminal portion 21 and the second terminal portion 22. This causes the first terminal portion 21 and the second terminal portion 22 to separate.
[0081] (1.3) Operation Next, the operation of the circuit breaker 1 will be explained with reference to Figures 5 to 7.
[0082] When the pin electrodes 72 of the gas generator 70 are not energized and the drive mechanism 7 is not driven, the first terminal section 21 and the second terminal section 22 are electrically connected via the separation section 23, as shown in Figure 5. Therefore, the conductor 2 functions as an electrical circuit, and current flows through the conductor 2 from the external electrical circuit that is electrically connected to the first terminal section 21 and the second terminal section 22.
[0083] When the control unit of the electric vehicle energizes the two pin electrodes 72, the drive mechanism 7 is driven, and the heating element 73 connected to the pin electrodes 72 generates heat. The heat generated by this heating element 73 ignites the fuel 74, causing the fuel 74 to burn and produce gas. The gas increases the pressure in the internal space containing the fuel 74 in the case 71, causing it to break through the wall (lower wall) that makes up the internal space. The gas is then introduced into the pressurized chamber 75 through this broken section, increasing the pressure in the pressurized chamber 75. The pressure of the gas in the pressurized chamber 75 causes a downward force to act on the operating pin 8 toward the separation section 23.
[0084] The operating pin 8 is driven downward (in the direction of movement) against the frictional force of the O-ring 65, and the lower surface of the operating pin 8 pushes the regulating body 4 downward. The regulating body 4, pushed by the operating pin 8, breaks at the groove 41.
[0085] The operating pin 8 moves downward, pushing the first cooler 31 from above (through the restrictor 4). The first cooler 31 is compressed vertically (its volume decreases) by being pushed by the operating pin 8.
[0086] The operating pin 8 moves further downward, pushing the separation portion 23 of the conductor 2 from above (through the restrictor 4 and the compressed first coolant 31). As the separation portion 23 is pushed by the operating pin 8, the conductor 2 is fractured at the groove 24 of the boundary portion 240 between the first terminal portion 21 and the separation portion 23, and at the groove 24 of the boundary portion 240 between the second terminal portion 22 and the separation portion 23, as shown in Figure 6. This separates the separation portion 23 from the first terminal portion 21 and the second terminal portion 22, and the first terminal portion 21 and the second terminal portion 22 are separated. The separation portion 23, separated from the first terminal portion 21 and the second terminal portion 22, is pushed by the operating pin 8 into the lower housing space SP20.
[0087] After the separation unit 23 is separated from the first terminal unit 21 and the second terminal unit 22, the operating pin 8 moves further downward, pushing the second cooler unit 32 from above (through the restricting body 4, the compressed first cooler unit 31, and the separation unit 23). The second cooler unit 32 is compressed (its volume is reduced) by being pushed by the operating pin 8.
[0088] Here, when the separation portion 23 in the conductor 2 is separated from the first terminal portion 21 and the second terminal portion 22, an arc may be generated between the separated portions in the conductor 2. The arc may be generated, for example, to connect the first terminal portion 21 and the separation portion 23, and to connect the second terminal portion 22 and the separation portion 23. In Figure 6, the arc A1 generated between the first terminal portion 21 and the separation portion 23, and the arc A2 generated between the second terminal portion 22 and the separation portion 23 are schematically shown by dotted lines.
[0089] As described above, a first cooling body 31, made of a porous material 30, is present between the separation section 23 and the operating pin 8. Therefore, arcs A1 and A2 can pass through the gaps in the first cooling body 31 and come into contact with the porous material 30 (alumina fibers) that make up the first cooling body 31. Arcs A1 and A2 that come into contact with the first cooling body 31 can be cooled by heat absorption by the first cooling body 31. This promotes the extinguishing of arcs A1 and A2.
[0090] Furthermore, a second cooling body 32, composed of a porous material 30, is present in the containment space SP20 where the separated separation section 23 is housed. Parts of the arcs A1 and A2 can wrap around to the second cooling body 32, which has a high porosity, and come into contact with the porous material 30 (alumina fibers) that make up the second cooling body 32. The arcs A1 and A2 that come into contact with the second cooling body 32 can be cooled by the absorption of heat by the second cooling body 32. This promotes the extinguishing of the arcs A1 and A2.
[0091] In short, the cooling body 3 cools the arc that is generated when the separation part 23 is separated from the first terminal part 21 and / or the second terminal part 22 while current is flowing through the conductor 2.
[0092] The operating pin 8 moves further and stops moving when its inclined surface 82 contacts the inner surface of the second hole 952 of the first holder 95 of the housing 9 (see Figure 7). In other words, the operating pin 8 is restricted from moving excessively by the housing 9. In short, the housing 9 has a restricting portion (the inner surface of the second hole 952) on the wall surface that forms the space (first space SP1) that houses the operating pin 8, which restricts the excessive movement of the operating pin 8.
[0093] When the operating pin 8 stops moving, the first columnar portion of the operating pin 8 is interposed between the first terminal portion 21 and the second terminal portion 22. Therefore, the first terminal portion 21 and the second terminal portion 22 are electrically insulated by the operating pin 8.
[0094] (1.4) Advantages As described above, the shut-off device 1 of this embodiment is equipped with a cooling body 3. The cooling body 3 is placed in the internal space 90 of the housing 9 and cools the arc generated in the internal space 90. Therefore, even if an arc is generated in the internal space 90, the cooling body 3 cools this arc, thereby promoting its extinguishing.
[0095] Furthermore, the cooler 3 has a porous body 30 composed of at least one of a metal oxide or an inorganic oxide. In particular, the porous body 30 has a fibrous skeleton 300 and is deformable. Therefore, the surface area of the cooler 3 can be increased, making it easier for the arc to come into contact with the cooler 3, and further promoting the extinguishing of the arc. In addition, because the cooler 3 is a porous body 30 with a fibrous skeleton 300, the handling of the shutoff device 1 is improved.
[0096] Furthermore, if the operating pin 8 is driven while no current is flowing through the conductor 2, or while the magnitude of the current flowing through the conductor 2 is small, it is possible that an arc may not be generated even if the conductor 2 is fractured.
[0097] (2) Variant The embodiments described above are merely one of many embodiments of this disclosure. These embodiments can be modified in various ways depending on the design, etc., as long as the objectives of this disclosure are achieved. The following lists some modifications of the embodiments described above. These modifications can be combined and applied as appropriate. In the following, the embodiments described above may also be referred to as "basic examples."
[0098] (2.1) Variation 1 The circuit breaker 1A of this modified example will be described with reference to Figure 8. In the circuit breaker 1A of this modified example, components similar to those of the circuit breaker 1 of the basic example are denoted by the same reference numerals and their descriptions are omitted as appropriate.
[0099] As shown in Figure 8, the shut-off device 1A does not have a restrictor 4 (see Figure 5). Also, the lower end of the operating pin 8 is fitted into the first hole 951 of the through hole 950, thereby restricting the upward movement of the cooling body 3 (first cooling body 31). The other configurations are the same as those of the shut-off device 1.
[0100] In this modified example of the shut-off device 1A, the first cooling element 31 is in contact with the lower surface of the operating pin 8, but this is not the only option; it does not have to be in contact.
[0101] In this modified example of the shut-off device 1A, as with the shut-off device 1, the cooling body 3 can promote arc extinguishing. Furthermore, the configuration can be simplified by omitting the regulating body 4.
[0102] However, if the first cooler 31 is equipped with a fibrous skeleton 300, it is preferable to have a restrictor 4 from the viewpoint of ease of positioning and / or initial placement of the first cooler 31.
[0103] (2.2) Modification 2 The modified circuit breaker 1B will be described with reference to Figure 9. In the modified circuit breaker 1B, components similar to those in the basic example of the circuit breaker 1 are denoted by the same reference numerals and their descriptions are omitted as appropriate.
[0104] As shown in Figure 9, in the shut-off device 1B, the cooling body 3 is located only in the first space SP1 (more specifically, the gap space SP11) and not in the second space SP2 (accommodation space SP20). That is, the cooling body 3 includes the first cooling body 31 but does not include the second cooling body 32 (see Figure 5). In addition, the shut-off device 1B is equipped with a second regulating body 42 in addition to the first regulating body 4.
[0105] The second restrictor 42 is disc-shaped, similar to the restrictor 4, and has an annular groove on its upper surface, similar to the restrictor 4. The second restrictor 42 is fitted into an annular groove formed on the inner circumferential surface of the first holder 95 and is held by the first holder 95. The second restrictor 42 is positioned within the internal space 90 of the housing 9 so as to be in contact with the lower surface of the conductor 2. The second restrictor 42 separates the first space SP1 from the second space SP2. The second restrictor 42 restricts the movement (downward movement) of the cooler 3 (first cooler 31).
[0106] In this modified example of the shut-off device 1B, as with the shut-off device 1, the cooling element 3 (first cooling element 31) can promote arc extinguishing. Furthermore, by omitting the second cooling element 32, it is possible to simplify the configuration and reduce manufacturing costs.
[0107] The second regulating body 42 may be positioned so as to be in contact with the upper surface of the conductor 2, that is, between the cooler 3 (first cooler 31) and the conductor 2.
[0108] (2.3) Modification 3 The circuit breaker 1C of this modified example will be described with reference to Figure 10. In the circuit breaker 1C of this modified example, components similar to those of the circuit breaker 1 of the basic example are denoted by the same reference numerals and their descriptions are omitted as appropriate.
[0109] As shown in Figure 10, in the circuit breaker 1C, the cooling body 3 is located only in the second space SP2 (accommodating space SP20) and not in the first space SP1 (gap space SP11). That is, the cooling body 3 includes the second cooling body 32 but does not include the first cooling body 31 (see Figure 5). Also, in the circuit breaker 1C, the lower surface of the operating pin 8C is directly facing (or in contact with) the separation portion 23 of the conductor 2. That is, when the operating pin 8C is driven by the drive mechanism 7, it contacts the conductor 2 and pushes the conductor 2 directly, separating the separation portion 23 from the first terminal portion 21 and the second terminal portion 22.
[0110] In this modified example of the shut-off device 1C, as with the shut-off device 1, the cooling element 3 (second cooling element 32) can promote arc extinguishing. Furthermore, by omitting the first cooling element 31, it is possible to simplify the configuration and reduce manufacturing costs.
[0111] (2.4) Modification 4 The modified circuit breaker 1D will be described with reference to Figure 11. In the modified circuit breaker 1D, components similar to those in the basic example of the circuit breaker 1 are denoted by the same reference numerals and their descriptions are omitted as appropriate.
[0112] As shown in Figure 11, in the shut-off device 1D, the second cooling body 32 is not located throughout the entire containment space SP20, but only in the region of the containment space SP20 that is close to the conductor 2. In addition, the shut-off device 1D is equipped with a second regulating body 43 in addition to the first regulating body 4.
[0113] The second restrictor 43 is disc-shaped, similar to the restrictor 4, and has an annular groove on its upper surface, similar to the restrictor 4. The second restrictor 43 is fitted into an annular groove 911 (see Figure 4) formed on the inner circumferential surface of the second space SP2 of the housing 9 and is held in place by the housing 9. The second restrictor 43 divides the second space SP2 into two spaces (a space in which the second cooler 32 is placed and a space in which it is not placed). The second restrictor 43 restricts the movement (downward movement) of the cooler 3 (second cooler 32).
[0114] In this modified example of the shut-off device 1D, as with the shut-off device 1, the cooling body 3 can promote arc extinguishing. Furthermore, by omitting a portion of the second cooling body 32, it is possible to reduce manufacturing costs.
[0115] In this modified example, the first cooling element 31 may be omitted, similar to the shut-off device 1C in Modified Example 3.
[0116] (2.5) Modification 5 The circuit breaker 1E of this modified example will be described with reference to Figure 12.
[0117] The circuit breaker 1E in this modified example is a so-called fuse.
[0118] The circuit breaker 1E comprises a conductor 2E, a housing 9E, and a cooling element 3E.
[0119] The housing 9E has electrical insulation properties. The housing 9E is formed in the shape of a rectangular box. The housing 9E has an internal space 90E inside.
[0120] The conductor 2E has a first terminal portion 21E, a second terminal portion 22E, and a cutting portion 24E.
[0121] The first terminal section 21E and the second terminal section 22E are connected to an external circuit. The first terminal section 21E and the second terminal section 22E are held in the housing 9E.
[0122] The cutting section 24E is housed in the internal space 90E of the housing 9E. The cutting section 24E melts due to heat generation when a current exceeding the allowable value flows through it.
[0123] The cooler 3E is placed in the internal space 90E of the housing 9E. The cooler 3E is distributed throughout the entire internal space 90E. The cooler 3E is in contact with the conductor 2. The cooler 3E is in contact with the cutting section 24E. The cooler 3E has a porous body 30 (see Figure 1). The porous body 30 is composed of at least one of a metal oxide or an inorganic oxide.
[0124] In the modified circuit breaker 1E, when a current exceeding the allowable value flows through the conductor 2E, the fusion section 24E melts due to heat generation. This causes the first terminal section 21E and the second terminal section 22E to separate. When the fusion section 24E melts while current is flowing through the conductor 2E, an arc may be generated between the melted parts of the conductor 2. This generated arc may come into contact with the cooler 3E, and its heat may be absorbed. In other words, the cooler 3E cools the arc generated in the internal space 90E. This promotes the extinguishing of the arc.
[0125] In this modified example, the shut-off device 1E, as with the shut-off device 1, can also be made to accelerate arc extinguishing by the cooling body 3E.
[0126] (2.6) Other variations In one modified example, the operating pins 8,8C may be composed of multiple members. For example, the operating pins 8,8C may be composed of separate members, the first columnar portion, the second columnar portion and the third columnar portion, which are made of different materials. In the operating pins 8,8C, the portions that do not face the conductor 2 (first terminal portion 21 and second terminal portion 22) after the movement of the operating pins 8,8C, for example, the second columnar portion and the third columnar portion, do not need to have electrical insulating properties.
[0127] In one modified example, the shape of the operating pins 8 and 8C is not limited to the example shape, but may be any polygonal prism shape, for example.
[0128] In one modified example, the diameter of the groove 24 and the diameter of the operating pins 8,8C may be smaller than the diameter of the first hole 951 of the first holder 95. That is, the entire boundary portion 240 (the portion of the conductor 2 that is broken) of the conductor 2 may be located within the internal space 90 of the housing 9, and a part of the first terminal portion 21 (the end on the separation portion 23 side) and a part of the second terminal portion 22 (the end on the separation portion 23 side) may also be located within the internal space 90. In this case, the cooling body 3 may be in contact with the boundary portion 240, a part of the first terminal portion 21 and / or a part of the second terminal portion 22.
[0129] In one modified example, the coolant 3 does not need to be in contact with the conductor 2.
[0130] In one modified example, the first cooling body 31 does not need to be compressible.
[0131] In one modified example, the groove 24 may be formed on the second surface F2 instead of or in addition to the first surface F1 of the conductor 2.
[0132] In one modified example, the circuit breakers 1,1A~1E may be equipped with permanent magnets for extending the generated arc. The permanent magnets may be placed, for example, in the space within the housings 9,9E, or embedded in the housings 9,9E.
[0133] In one modified example, the first terminal portion 21, the second terminal portion 22, and the separation portion 23 do not necessarily have to be made of a single conductive material 2.
[0134] In one modified example, the drive mechanism 7 is not limited to the gas generator 70. The drive mechanism 7 can be any mechanism capable of separating the first terminal portion 21 and the second terminal portion 22.
[0135] In one modified example, the cooling body 3 may be placed in an area other than the projection area of the operating pins 8, 8C. For example, the cooling body 3 may be placed in a recess formed on the inner wall surface of the second space SP2 of the housing 9.
[0136] (3) Summary Based on the embodiments and modifications described above, the following embodiments are disclosed.
[0137] The first embodiment of the circuit breaker (1,1A~1B) comprises a conductor (2,2E), a housing (9,9E), and a cooler (3,3E). The conductor (2,2E) is connected to an external circuit. The housing (9,9E) has an internal space (90,90E). At least a portion of the conductor (2,2E) is housed in the internal space (90,90E). The cooler (3,3E) is placed in the internal space (90,90E). The cooler (3,3E) cools the arc generated in the internal space (90,90E). The cooler (3,3E) has a porous body (30) composed of at least one of a metal oxide or an inorganic oxide.
[0138] According to this embodiment, the surface area of the cooling element (3,3E) can be increased, making it easier for it to come into contact with the arc, thus promoting arc extinguishing. Furthermore, even if an arc occurs in the internal space (90,90E), it is possible to suppress the rise in pressure within the internal space (90,90E) of the housing (9,9E).
[0139] In the second embodiment of the shutoff device (1,1A~1E), in the first embodiment, the porous body (30) is deformable and has a fibrous skeleton (300).
[0140] According to this embodiment, the porosity of the cooler (3) can be adjusted.
[0141] In the third embodiment of the circuit breaker (1,1A~1E), the cooling element (3,3E) is in contact with the conductor (2,2E) in the first or second embodiment.
[0142] According to this embodiment, when an arc is generated from the conductor (2,2E), the arc is more likely to come into contact with the coolant (3,3E), thus promoting the extinguishing of the arc.
[0143] The fourth embodiment of the circuit breaker (1,1A~1D) further comprises a gas generator (70) and operating pins (8,8C) in any one of the first to third embodiments. The gas generator (70) generates gas by the combustion of fuel (74). The operating pins (8,8C) are located in an internal space (90). The operating pins (8,8C) are driven by the pressure of the gas generated in the gas generator (70) and move in the direction of movement. The conductor (2) comprises terminals (first terminal 21, second terminal 22) and a separation part (23). The terminals are held in a housing (9) and connected to an external circuit. The separation part (23) is housed in the internal space (90) of the housing (9) and is separated from the terminals by the movement of the operating pins (8,8C). The cooling body (3) cools the arc generated when the separation part (23) separates from the terminal part while current is flowing through the conductor (2).
[0144] According to this embodiment, it is possible to promote the extinguishing of the arc generated when the terminal portion and the separation portion (23) are separated.
[0145] In the fifth embodiment of the shutoff device (1, 1A, 1C, 1D), as in the fourth embodiment, the internal space (90) has a housing space (SP20) that houses a separation part (23) separated from the terminal part (first terminal part 21, second terminal part 22). The cooling body (3) is placed in the housing space (SP20).
[0146] According to this embodiment, it is possible to accelerate the extinguishing of the arc.
[0147] In the sixth embodiment of the shutoff device (1, 1A, 1B, 1D), in the fourth embodiment, the operating pin (8) is positioned in the internal space (90) such that a gap (gap space SP11) is created between it and the conductor (2). The cooling body (3) is positioned in the gap.
[0148] According to this embodiment, it is possible to accelerate the extinguishing of the arc.
[0149] In the seventh embodiment of the circuit breaker (1, 1A, 1D), in the fourth embodiment, the internal space (90) has a housing space (SP20) that houses a separation part (23) separated from the terminal parts (first terminal part 21, second terminal part 22). The operating pin (8) is arranged in the internal space (90) such that a gap (gap space SP11) is created between it and the conductor (2). The cooling body (3) is arranged in both the housing space (SP20) and the gap.
[0150] According to this embodiment, it is possible to accelerate the extinguishing of the arc.
[0151] In the eighth embodiment of the shutoff device (1,1A,1D), in the seventh embodiment, the density of the cooling body (3) is greater in the portion placed in the gap (first cooling body 31) than in the portion placed in the containment space (SP20) (second cooling body 32).
[0152] According to this embodiment, it is possible to accelerate the extinguishing of the arc.
[0153] In the ninth embodiment of the shutoff device (1,1A~1D), in any one of the fourth to eighth embodiments, the cooling body (3) is positioned within the projection area of the separation unit (23) in the direction of movement of the operating pins (8,8C).
[0154] According to this embodiment, it is possible to promote the extinguishing of the arc generated when the terminal portion and the separation portion (23) are separated.
[0155] In the tenth embodiment of the shutoff device (1,1A~1D), in any one of the fourth to ninth embodiments, the cooling body (3) is compressed and deformed by the movement of the operating pin (8,8C).
[0156] According to this embodiment, the cooling body (3) is less likely to obstruct the movement of the operating pins (8,8C).
[0157] The eleventh embodiment of the shutoff device (1,1A~1D) further comprises a restrictor (4) in any one of the first to tenth embodiments. The restrictor (4) is located in the internal space (90) of the housing (9). The restrictor (4) restricts the movement of the cooling body (3).
[0158] According to this embodiment, the installation of the cooling body (3) becomes easier.
[0159] In the twelfth embodiment of the circuit breaker (1E), in the first embodiment, the conductor (2E) has a melting portion (24E) that melts due to heat generation when a current exceeding an allowable value flows through it.
[0160] According to this embodiment, it is possible to accelerate the extinguishing of the arc.
[0161] In the 13th embodiment of the circuit breaker (1,1A~1E), in any one of the 1st to 12th embodiments, the metal oxide includes at least one of aluminum oxide, zirconia oxide, and iron oxide.
[0162] According to this embodiment, it is possible to accelerate the extinguishing of the arc.
[0163] In the fourteenth embodiment of the circuit breaker (1,1A~1E), in any one of the first to thirteenth embodiments, the inorganic oxide includes at least one of silicon oxide, zinc oxide, and magnesium oxide.
[0164] According to this embodiment, it is possible to accelerate the extinguishing of the arc. [Explanation of Symbols]
[0165] 1, 1A~1E Circuit Breaker 2,2E conductor 21 1st terminal section (terminal section) 22 2nd terminal section (terminal section) 23 Separation part 24E Cutting section 3,3E Cooling body 30 Porous material 300 skeleton 4 Regulatory bodies 70 Gas generators 8,8C operating pin 9.9E Housing 90,90E Interior space SP11 Gap space (gap) SP20 Containment Space
Claims
1. A gas generator that produces gas, An operating pin is positioned below the gas generator and moves downward due to the pressure of the gas generated by the gas generator, A conductor having a separation portion located below the operating pin, a first terminal portion connected to one end of the separation portion, and a second terminal portion connected to the other end of the separation portion, A fibrous member positioned below the separation portion, The system comprises a restricting body disposed between the operating pin and the fibrous member, When the operating pin moves downward, the separation portion is separated from the first terminal portion and the second terminal portion and moves downward, the lower surface of the separation portion comes into contact with the fibrous member, and the fibrous member is compressed. When the operating pin moves downward, the restrictor moves downward. Circuit breaker.
2. When the operating pin moves downward, the separation portion is separated from the first terminal portion and the second terminal portion and moves downward, and the lower part of one end of the separation portion and the lower part of the other end of the separation portion come into contact with the fibrous member. The circuit breaker according to claim 1.
3. The aforementioned conductor includes, A first groove is provided at the boundary between the separation portion and the first terminal portion. A second groove is provided at the boundary between the separation portion and the second terminal portion. The separation portion is separated from the first terminal portion by the first groove and separated from the second terminal portion by the second groove. The circuit breaker according to claim 1 or 2.
4. Viewed from above, the fibrous member is arranged to overlap with the first groove and the second groove. The circuit breaker according to claim 3.
5. When the operating pin moves downward, the separation portion is separated from the first terminal portion and the second terminal portion and moves downward, and the fibrous member comes into contact with the lower surface and the side surface of the separation portion. A circuit breaker according to any one of claims 1 to 4.
6. The operating pin has a first columnar portion and a second columnar portion located below the first columnar portion. The outer diameter of the second columnar portion is smaller than the outer diameter of the first columnar portion. A circuit breaker according to any one of claims 1 to 5.
Citation Information
Patent Citations
Electrical interrupt switch with reactive coating in the reaction chamber
DE102018100686A1
Fuse unit
JP1986042834A
Pyrotechnic circuit breaker
JP2017507469A
Pyrotechnic isolator
US20190051478A1
Disconnecting device with arc interruption
WO2018095602A1