Electric circuit breaker device
11694866 · 2023-07-04
Assignee
Inventors
Cpc classification
H01H71/125
ELECTRICITY
International classification
Abstract
An electric circuit breaker device includes: an igniter; a projectile that is disposed in a movement path, the projectile formed to be movable by actuation of the igniter; and a conductor piece that forms one portion of a predetermined electric circuit, the conductor piece having both end portions connected to respective other portions of the predetermined electric circuit, the conductor piece having a first portion between both the end portions arranged to traverse the movement path. A sensor is connected to a first part positioned between both the end portions and to a second part that is between both the end portions and is different from the first part, the sensor configured to detect current flowing through the conductor piece between both the end portions, the sensor disposed to be integrated with the conductor piece. The actuation of the igniter is controlled, based on the current detected by the sensor.
Claims
1. An electric circuit breaker device comprising: an igniter provided to a housing; a projectile that is disposed in a movement path formed in the housing, the projectile formed to be movable in the movement path by receiving energy from the igniter; a conductor piece that forms one portion of a predetermined electric circuit, the conductor piece having two end portions connected to respective other portions of the predetermined electric circuit, the conductor piece having a first portion between both the end portions arranged to traverse the movement path; an insulated space that is formed on a side opposite to the projectile with the conductor piece in-between before the igniter is actuated, the insulated space connected to the movement path; a sensor that is connected to a first part positioned between both the end portions and to a second part that is between both the end portions and is different from the first part, the sensor configured to detect current flowing through the conductor piece between both the end portions, the sensor disposed to be integrated with the conductor piece; and a control unit that controls actuation of the igniter, based on the current detected by the sensor.
2. The electric circuit breaker device according to claim 1, wherein in the conductor piece, a second portion at least including a section between the first part and the second part is formed of a predetermined metal other than copper or is formed of an alloy of copper and the predetermined metal, and a portion of the conductor piece other than the second portion is formed of copper.
3. The electric circuit breaker device according to claim 1, wherein the first portion is included in a section between both the end portions and between the first part and the second part.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF EMBODIMENTS
(7) An electric circuit breaker device according to a technique of the present disclosure will be described below with reference to the drawings. Note that, configurations of the following embodiments are provided as examples, and the present disclosure is not limited to the configurations of the embodiments.
Example 1
(8)
(9) A housing 10 made of a synthetic resin includes the cylindrical space 13 that extends in a direction from a first end portion 11 to a second end portion 12. This cylindrical space 13 is a space formed in a straight line, making the projectile 40 described later movable. On the first end portion 11 side of the breaker device 1, a connector 15 connected to a power source during its use is attached.
(10) In the cylindrical space 13 of the housing 10, an igniter 20, the projectile 40 made of a synthetic resin, and the conductor piece 50 are disposed in this order along the longitudinal direction of the breaker device 1 from the first end portion 11 side. The igniter 20 includes an ignition portion 21 and a resin portion 22 in which a portion of an igniter body is surrounded by a resin, and the ignition portion 21 is arranged to be exposed to the cylindrical space 13 from the resin portion 22. Thus, a combustion product produced by the igniter 20 actuated is discharged into the cylindrical space 13.
(11) Here, before the breaker device 1 is actuated, the projectile 40 is disposed within the cylindrical space 13 as illustrated in
(12) The projectile 40 includes a rod-shaped rod portion 41 and an end increased diameter portion 42 formed on the distal end side of the rod portion 41. The end increased diameter portion 42 has an outer diameter that is larger than the outer diameter of the rod portion 41, and thus an annular step surface 45 (see
(13) In the breaker device 1, the cylinder 30 is provided in the housing 10, and the cylindrical space 13 described above is formed by the cylinder 30. Specifically, the housing 10 has an internal space formed therein, where the cylinder 30 is fixedly press fit to be unmovable with respect to the housing 10 in the axial direction. A claw portion may be formed on an outer surface 30a of the cylinder 30 and a dent portion corresponding to the claw portion may be formed on an inner wall surface 10a, of the internal space in the housing 10, facing the claw portion in a radial direction, and the claw portion may be fit in the dent portion at the time of attachment, to make the cylinder 30 fixed to be unmovable in the axial direction.
(14) The cylinder 30 is for reinforcing the housing 10 and is made of metal such as stainless steel or iron. A thickness of the cylinder 30 varies depending on the size of the breaker device 1 and is preferably in a range from 0.5 to 3 mm for example. With this configuration, the following effects are expected to be obtained.
First Advantageous Effect
(15) With the housing 10 reinforced using the cylinder 30 made of metal, the housing 10 can have a small thickness, whereby the breaker device 1 can be downsized.
Second Advantageous Effect
(16) The combustion product produced by the actuation of the igniter 20 travels in the cylinder 30 and impacts on the projectile 40, and thus the inner wall surface 10a of the housing 10 would not be directly exposed to heat and pressure of the combustion product. As a result, the housing can have a small thickness, contributing to the downsizing of the breaker device 1 in addition to the first advantageous effect.
Third Advantageous Effect
(17) The cylinder 30 serves as the passage of the combustion product produced by the igniter 20 actuated to enable the entirety of the combustion product to impact with the projectile 40, and serves as a guide portion when the projectile 40 moves.
(18) The cylinder 30 includes a first end opening portion 31 that is in contact with the resin portion 22 of the igniter 20 and a second end opening portion 32 on the opposite side that is in contact with the annular step surface 45 of the projectile 40 before the breaker device 1 is actuated. The cylinder 30 is arranged surrounding the ignition portion 21 of the igniter 20 and the rod portion 41 of the projectile 40. In this state, the O-ring 44 fit to the recessed portion 43 of the projectile 40 is in contact with an inner circumference surface 30b of the cylinder 30, and the outer surface of the rod portion 41 and the inner circumference surface 30b of the cylinder 30 are not completely in contact with each other. Specifically, the dimensions and the shapes of the cylinder 30 and the projectile 40 are determined, to enable the rod portion 41 which is a part of the projectile 40 to move in the cylindrical space 13 formed in the cylinder 30.
(19) Next, the conductor piece 50 will be described. The conductor piece 50 is for forming one portion of a predetermined electric circuit when the breaker device 1 is attached to the electric circuit. The conductor piece 50 is a plate-shaped piece including a first end portion 51 and a second end portion 52 on both end sides, as well as an intermediate portion 53 between both the end portions. A hole 51a of the first end portion 51 and a hole 52a of the second end portion 52 are two holes for establishing connection with other conductors (lead wire for example) in the predetermined electric circuit. The conductor piece 50 illustrated in
(20) The conductor piece 50 is disposed with a surface of the intermediate portion 53 orientated orthogonal to the extending direction of the cylindrical space 13. As a result, the drive direction of the projectile 40 that moves in the cylindrical space 13 and the surface of the intermediate portion 53 are in an orthogonal positional relationship. The surface of the intermediate portion 53 of the conductor piece 50 faces an end surface 42a of the end increased diameter portion 42 of the projectile 40. Thus, the intermediate portion 53 of the conductor piece 50 is in a state of being disposed to traverse the space in the housing 10 in which the projectile 40 moves. Note that in
(21) When the end increased diameter portion 42 of the projectile 40 has a square cross-sectional shape in the width direction, a length (L) of one side and a width (W) of the intermediate portion 53 of the conductor piece 50 preferably satisfy the relationship L≥W, and more preferably are in a range of L/W=1.0 to 1.2. With this configuration, the intermediate portion 53 of the projectile 40 may be preferably cut.
(22) A stopper 60 of a box shape with one surface open is provided between the conductor piece 50 and the second end portion 12 of the housing 10, with the opening portion side facing the conductor piece 50 side. The stopper 60 is made of synthetic resin which is a favorable insulation material, and thus has an insulated space 61 formed therein, where a certain level of insulation against the conductor piece 50 is ensured. When the breaker device 1 is actuated, the end increased diameter portion 42 of the projectile 40 moves in the longitudinal direction to cut the intermediate portion 53 of the conductor piece 50. Then, the end increased diameter portion 42 and a cut piece of the intermediate portion 53 enter the insulated space 61. Thus, interruption of the continuity of a predetermined electric circuit is safely achieved through cutting of the intermediate portion 53.
(23) Furthermore, the breaker device 1 of the present embodiment has a sensor 73 that detects current flowing in the conductor piece 50, incorporated to be integrated with the conductor piece 50 as illustrated in
(24) As illustrated in
(25) A portion of the intermediate portion 53 at least including the section between the first part and the second part is defined as a second portion 53b. Thus, a positional relationship is established in which the second portion 53b includes the two terminals 72 and the first portion 53a cut by the projectile 40. A portion of the intermediate portion 53 excluding the second portion is denoted by “53c” in
(26) In the conductor piece 50, the second portion 53b at least including the section between the first part and the second part where the two terminals 72 are provided is formed of a predetermined metal other than copper (Cu), or is formed of an alloy of copper and the predetermined metal. Generally, copper is a metal material that features relatively low electrical resistance enabling conduction with a small amount of heat produced, but involves a large fluctuation of the electrical resistance once the heat is produced. Thus, the second portion 53b including the section between the two terminals 72 related to the detection of the current by the sensor 73 is formed without including copper or to include the predetermined metal other than copper as described above. Thus, the current detection accuracy of the sensor 73 can be prevented from being compromised. Note that examples of the predetermined metal include manganese (Mn), nickel (Ni), and platinum (Pt). The second portion 53b is a region including the first portion 53a cut by the projectile 40. With this region formed without including copper or to include the predetermined metal other than copper as described above, unintentional extension of the conductor piece 50 at the time of cutting can be suppressed, whereby arc suppression at the time of cutting can be achieved and thus arc extinguishing performance can be improved.
(27) A portion of the conductor piece 50 other than the second portion 53b, that is, a portion 53c which is a part of the intermediate portion 53 and the first end portion 51 and the second end portion 52 are formed of copper. Thus, efficient conduction of the conductor piece 50 can be guaranteed.
(28) Alternatively, the conductor piece 50 may be entirely formed of copper only. With such a configuration, the electrical resistance of the conductor piece 50 as a whole can be favorably lowered, whereby efficient conduction is achieved.
(29) With the breaker device 1 with such a configuration, the cylinder 30 made of metal is disposed in the housing 10 to reinforce the housing 10, and thus the housing 10 can have a small thickness, whereby the breaker device 1 can be downsized. For example, with the breaker device 1, the thickness of the housing 10 can be reduced by from 30 to 80% compared to a case where the cylinder 30 is not used.
(30) When excessive current flows through the conductor piece 50 forming a predetermined electric circuit, such current is detected by the sensor 73. The current detected travel from the sensor 73 to the control unit 75. The control unit 75 controls the actuation of the igniter 20 based on the value of the current thus detected. In this case, the control unit 75 actuates the igniter 20 using the energy stored in the capacitor 77. For example, when the current value detected exceeds a predetermined threshold set for protecting the predetermined electric circuit, the control unit 75 actuates the igniter 20 using the energy in the capacitor 77. Thus, the breaker device 1 is what can be regarded as a self-contained breaker device configured to be capable of actuating the igniter 20 without being supplied with energy from the outside of the device, in response to the excessive current flowing. As a result, a combustion product is generated from the ignition portion 21 of the igniter 20, and the combustion energy thereof is transmitted to the projectile 40. Then, the projectile 40 moves in the extending direction of the cylindrical space 13, and the end increased diameter portion 42 cuts the first portion 53a included in the intermediate portion 53 of the conductor piece 50. Then, the end increased diameter portion 42 and the cut piece of the first portion 53a move into the insulated space 61 to be held electrically insulated. Through this operation, the first end portion 51 and the second end portion 52 on both ends of the conductor piece 50 are electrically disconnected, so the predetermined electric circuit on which the breaker device 1 is disposed is broken.
(31) In the breaker device 1, the controller 70 including the sensor 73 is disposed to be integrated with the conductor piece 50 via the two terminals 72. With this configuration, a shortest possible distance between the conductor piece 50 and the sensor 73 in which the current to be detected by the sensor 73 travels can be achieved, whereby the breaker device 1 can be downsized. The breaker device 1 thus downsized can be used for a wider range of applications, to be more useful to easily achieve the safety design of the predetermined electric circuit. With the conductor piece 50 and the sensor 73 integrated, the current can travel by a shorter distance to be less susceptible to noise.
Modified Examples
(32) Instead of the mode of the embodiment described above, a mode may be employed that is obtained by changing the relationship between the relative position of the sensor 73 relative to the conductor piece 50 and the relative positions of the cylindrical space 13 and the projectile 40 driven therein, to prevent the part (that is, between the first part and the second part) of the conductor piece 50 where the current to be detected by the sensor 73 flows and the first portion 53a to be cut from overlapping with each other. For example, in the breaker device 1 of the present modification, the sensor 73 detecting the current flowing through the conductor piece 50 and the conductor piece 50 are integrated and incorporated, without the first portion 53a and the second portion 53b overlapping with each other in the intermediate portion 53 of the conductor piece 50 as illustrated in
REFERENCE SIGNS LIST
(33) 1 Breaker device 10 Housing 13 Cylindrical space 20 Igniter 30 Cylinder 40 Projectile 50 Conductor piece 53 Intermediate portion 53a First portion 53b Second portion 60 Stopper 61 Insulated space 70 Controller 72 Terminal 73 Sensor 75 Control unit 77 Capacitor