Trip device for circuit breaker
09633809 ยท 2017-04-25
Assignee
Inventors
Cpc classification
H01H73/22
ELECTRICITY
International classification
H01H71/74
ELECTRICITY
Abstract
A trip device for a circuit breaker comprises a first terminal; a second terminal; and a bimetal in which a slot with one side opened is formed at one end of the bimetal, the one end is divided into a first end portion and a second end portion, the first end portion is connected to the first terminal, and the second end portion is connected to the second terminal, wherein the bimetal generates heat with a current which flows between the first end portion and the second end portion, and a heating amount of the bimetal is changed based on a length of the slot. Accordingly, a desired rated current can be set, the bimetal can be prevented from being damaged by a fault current, and the fault current can be effectively detected by obtaining a sufficient amount of heat and a bending amount of the bimetal.
Claims
1. A trip device for a circuit breaker, the trip device comprising: a first terminal; a second terminal separated from the first terminal; a bimetal in which a slot with one side opened is formed at one end of the bimetal, the one end is divided into a first end portion and a second end portion along the slot such that the slot is formed between the first end portion and the second end portion, and the second end portion is connected to the second terminal; and a heater positioned between the first terminal and the bimetal such that the first terminal and the bimetal are not in direct contact, wherein the heater is configured to generate heat to heat the bimetal when a current flows, wherein the bimetal generates the heat when the current flows between the first end portion and the second end portion, and a heating amount of the bimetal is changed based on a length of the slot, and wherein the heater is coupled to the first terminal via a first end portion of the heater, and the heater is coupled to the first end portion of the bimetal via a second end portion of the heater, wherein the heater comprises a directly heating portion that is in contact with the bimetal to heat the bimetal through conduction and a radiant heating portion separated from the bimetal to heat the bimetal through convection or radiation, wherein the directly heating portion is provided at a lower portion of the heater including the second end portion of the heater, and the radiant heating portion is provided at an upper portion of the heater including the first end portion of the heater, and wherein the directly heating portion is connected to the first end portion of the bimetal, and the radiant heating portion is connected to the first terminal.
2. The trip device of claim 1, wherein the slot is formed as a long hole which extends in one direction.
3. The trip device of claim 2, wherein the length of the slot is formed as a length in which the bimetal generates heat by a predetermined amount of heat under a specific current value.
4. The trip device of claim 3, wherein as the length of the slot increases, the heating amount of the bimetal increases under the specific current value.
5. The trip device of claim 1, wherein the bimetal is formed to be symmetric with respect to the slot.
6. The trip device of claim 1, wherein the first end portion and the second end portion are formed symmetrically.
7. The trip device of claim 1, wherein the radiant heating portion does not contact the bimetal.
8. The trip device of claim 1, wherein the bimetal and the heater are arranged in parallel such that the first end portion of the heater is proximate to the other end of the bimetal and the second end portion of the heater is proximate to the one end of the bimetal.
9. The trip device of claim 1, wherein the heater further comprises a slant portion that is located between the directly heating portion and the radiant heating portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are included to provide a further understanding of the disclosure and are incorporated in and constitute a part of this specification, illustrate exemplary embodiments and together with the description serve to explain the principles of the disclosure.
(2) In the drawings:
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DETAILED DESCRIPTION OF THE DISCLOSURE
(13) Description will now be given in detail of the exemplary embodiments, with reference to the accompanying drawings. For the sake of brief description with reference to the drawings, the same or equivalent components will be provided with the same reference numbers, and description thereof will not be repeated.
(14) Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings.
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(16) As illustrated in
(17) The bimetal 162 may be a member that is bent in one direction when a temperature increases. The one end of the bimetal 162 may be coupled to the first terminal 166 and the second terminal 164, and thus, the bimetal 162 may be fixed. The slot 162b with the one side opened is formed at the one end of the bimetal 162, and thus, the one end may be divided into the first end portion 162c and the second end portion 162d. A pressure member 162a may be provided at the other end of the bimetal 162. Therefore, when a temperature increases, the bimetal 162 may be bent to rotate a crossbar 42 through the pressure member 162a.
(18) In the present embodiment, the slot 162b may be formed in a long hole shape with one side opened, and a length L (a distance from the opened one side to the other side) of the slot 162b may be long formed as in
(19) Moreover, the bimetal 162 may be formed to be laterally symmetric with respect to the slot 162b, so as to easily adjust a rated current by increasing sensitivity to adjust the length L of the slot 162b. In other words, the bimetal 162 may be formed in order for the first end portion 162c to be symmetric with the second end portion 162d.
(20) The first terminal 166 may include a first terminal portion 166a, which is connected to the power source circuit or the load circuit, and a heater 166b which is connected to the first terminal portion 166a at one side of the heater 166b, is coupled to the first end portion 162c of the bimetal 162 at the other side, and generates heat when a current flows.
(21) The heater 166b may be provided as a heating member which is approximately rectangular in shape. The heater 166b may include a directly heating portion 166b1, which is coupled to the first end portion 162c of the bimetal 162 and contacts the bimetal 162, and a radiant heating portion 166b2 which is offset from the directly heating portion 166b1, separated from the bimetal 162, and connected to the first terminal portion 166a. That is, the heater 166b is coupled to the first terminal portion 166a via a first end portion 166b3 of the heater 166b, and the heater 166b is coupled to the first end portion 162c of the bimetal 162 via a second end portion of the heater that corresponds to the directly heating portion 166b1. The directly heating portion 166b1 may be one surface corresponding to a lower portion in the drawing, and the radiant heating portion 166b2 may be the other surface corresponding to an upper portion in the drawing.
(22) In the present embodiment, the directly heating portion 166b1 may be provided at the lower portion of the heater 166b, and the radiant heating portion 166b2 may be provided at the upper portion of the heater 166b. Therefore, the directly heating portion 166b1 may be connected to the first end portion 162c of the bimetal 162, and may contact a lower portion of the bimetal 162. Also, the radiant heating portion 166b2 may be connected to the first terminal portion 166a, and may be separated from an upper portion of the bimetal 162. However, the heater 166b may be implemented according to various embodiments. For example, the directly heating portion 166b1 may be provided at an upper portion of the heater 166b, and the radiant heating portion 166b2 may be provided at a lower portion of the heater 166b. Therefore, the radiant heating portion 166b2 may be connected to the first end portion 162c of the bimetal 162, and may be separated from a lower portion of the bimetal 162. The directly heating portion 166b1 may be connected to the first terminal portion 166a, and may contact an upper portion of the bimetal 162. As another example, the directly heating portion 166b1 may be provided at a central portion of the heater 166b, and the radiant heating portion 166b2 may be provided at each of the upper portion and lower portion of the heater 166b. Therefore, the radiant heating portion 166b2 provided at the lower portion may be connected to the first end portion 162c of the bimetal 162, and may be separated from the lower portion of the bimetal 162. Furthermore, the directly heating portion 166b1 may contact a central portion of the bimetal 162. In addition, the radiant heating portion 166b2 provided at the upper portion may be connected to the first terminal portion 166a, and may be separated from the upper portion of the bimetal 162.
(23) Moreover, in the present embodiment, the heater 166b may be provided in a heat receiving/radiation type where the heater 166b includes the directly heating portion 166b1 and the radiant heating portion 166b2. However, the heater 166b may be provided in another type. For example, the heater 166b may be provided in a heat receiving type where the heater 166b includes only the directly heating portion 166b1. That is, the heater 166b may be planarly disposed to wholly contact the bimetal 162, one side of the heater 166b may be connected to the first end portion 162c of the bimetal 162, and the other side may be connected to the first terminal portion 166a. As another example, the heater 166b may be provided in a heat radiation type where the heater 166b includes only the radiant heating portion 166b2. That is, the heater 166b may be wholly separated from the bimetal 162, the one side of the heater 166b may be connected to the first end portion 162c of the bimetal 162, and the other side may be connected to the first terminal portion 166a.
(24) The second terminal 164 may act as a bracket that supports the bimetal 162, and connect the bimetal 62 to the load circuit or the power source circuit so as to enable electricity to be conducted. The second terminal 164 may include a second terminal portion 164a, which is connected to the load circuit or the power source circuit, and a coupling portion 164b which is approximately vertically formed to extend from the second terminal portion 164a, and is connected to the second end portion 162d of the bimetal 162.
(25) Hereinafter, an operation and effects of the trip device 160 for a circuit breaker according to the first embodiment of the present invention will be described.
(26) First, a current may flow from the second terminal portion 164a to the first terminal portion 166a via the coupling portion 164b, the second end portion 162d, the first end portion 162c, and the heater 166b. The bimetal 162 may directly generate heat with a current which flows from the second end portion 162d to the first end portion 162c. Also, the bimetal 162 may be heated by heat generated by the heater 166. That is, the bimetal 162 may be heated by the heat conduction of the directly heating portion 166b1, and may be heated by the convection or radiation of the radiant heating portion 166b2. For reference, as in the present embodiment, a type in which the bimetal 162 is directly heated and is indirectly heated by the heater 166b is referred to as a direct/indirect type. A temperature of the bimetal 162 may directly/indirectly increase, and thus, the bimetal 162 may be bent in a right direction in
(27) In such a process, the slot 162b may increase a distance in which a current flows from the second end portion 162d to the first end portion 162c. Therefore, a resistance value may increase, and the heating amount and the bending amount of the bimetal 162 may increase.
(28) In this case, as illustrated in
(29) For reference, in the present embodiment, the trip device 160 is implemented so that a current flows from the second end portion 162d to the first end portion 162c, but may be implemented so that a current flows from the first terminal portion 166a to the second terminal portion 164a.
(30) Here, the trip device 160 for a circuit breaker according to the present embodiment may include: the bimetal 162 in which the slot 162b with the one side opened is formed at the one end of the bimetal 162, and the one end is divided into the first end portion 162c and the second end portion 162d; the first terminal 166 which is connected to the first end portion 162c and is connected to the power source circuit or the load circuit; and the second terminal 164 which is connected to the second end portion 162d and is connected to the power source circuit or the load circuit. In the trip device 160, the length L of the slot 162b may be adjusted, and thus, the distance in which the current flows from the second end portion 162d to the first end portion 162c may be adjusted. Therefore, the resistance value may be adjusted in a limited space, and the heating amount and the bending amount of the bimetal 162 may be adjusted, whereby a desired rated current may be set. That is, when the length L of the slot 162b is long formed, a distance in which a current flows between the first end portion 162c and the second end portion 162d may increase. Therefore, a resistance value may increase, and the heating amount and the bending amount of the bimetal 162 may increase. Accordingly, a circuit breaker having a low rated current specification, which obtains a sufficient amount of generated heat even under a low rated current and thus effectively detects a fault current, may be implemented. On the other hand, when the length L of the slot 162b is shortly formed, the distance in which a current flows between the first end portion 162c and the second end portion 162d may decrease. Therefore, the resistance value may decrease, and the heating amount and the bending amount of the bimetal 162 may decrease. Accordingly, a circuit breaker having a high rated current specification, which effectively detects the fault current without damaging the bimetal even under a high rated current, may be implemented. Furthermore, based on the length L of the slot 162b, a circuit breaker having a desired rated current specification may be implemented between the low rated current specification and the high rated current specification.
(31) Moreover, in the trip device 160 for a circuit breaker according to the present embodiment, since the first terminal 166 includes the heater 166b, the bimetal 162 may generate heat with a current which flows between the first end portion 162c and the second end portion 162d, and moreover may be heated by the heater 166b, and thus, a temperature may increase. That is, a direct/indirect trip device may be implemented. Therefore, a circuit breaker which secures a sufficient amount of generated heat without damaging the bimetal and thus maximizes an effect of enhancing a reliability of an operation may be implemented.
(32) Moreover, in the trip device 160 for a circuit breaker according to the present embodiment, the heater 166b may be provided in the heat receiving type. Therefore, a circuit breaker which maintains a function of preventing the bimetal from being damaged and is more suitable for a low rated current may be implemented.
(33) Moreover, in the trip device 160 for a circuit breaker according to the present embodiment, the heater 166b may be provided in the heat radiation type. Therefore, a circuit breaker which more effectively prevents the bimetal from being damaged and thus is more suitable for a high rated current may be implemented.
(34) Furthermore, in the trip device 160 for a circuit breaker according to the present embodiment, the heater 166b may be provided in the heat receiving/radiation type. Therefore, a circuit breaker in which a demerit of the heat receiving type and a demerit of the heat radiation type are remedied may be implemented.
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(36) Hereinafter, a trip device 260 for a circuit breaker according to the second embodiment of the present invention will be described in detail with reference to
(37) The same elements as those of the trip device 160 according to the first embodiment are referred to by like reference numerals, and for convenience, repetitive descriptions on some elements may not be provided.
(38) Unlike the above-described first embodiment, the trip device 260 according to the present embodiment may include a lead wire 266c instead of the heater 166b.
(39) The trip device 260 according to the present embodiment may include: a bimetal 162 in which a slot 162b with one side opened is formed at one end of the bimetal 162, and the one end is divided into a first end portion 162c and a second end portion 162d; a first terminal 266 which is connected to the first end portion 162c and is connected to a power source circuit or a load circuit; and a second terminal 164 which is connected to the second end portion 162d and is connected to the power source circuit or the load circuit.
(40) The first terminal 266 may include a first terminal portion 166a, which is connected to the power source circuit or the load circuit, and the lead wire 266c which is connected to the first terminal portion 166a at one side of the lead wire 266c, and is connected to the first end portion 162c of the bimetal 162 at the other side.
(41) The lead wire 266c may connect the first terminal portion 166a to the first end portion 162c so as to enable electricity to be conducted.
(42) Hereinafter, an operation and effects of the trip device 260 for a circuit breaker according to the second embodiment of the present invention will be described.
(43) First, a current may flow from the second terminal portion 164a to the first terminal portion 166a via the coupling portion 164b, the second end portion 162d, the first end portion 162c, and the lead wire 266c. The bimetal 162 may directly generate heat with a current which flows from the second end portion 162d to the first end portion 162c. For reference, as in the present embodiment, a type in which the bimetal 162 directly generates heat is referred to as a direct type. A temperature of the bimetal 162 may increase in the direct type, and thus, the bimetal 162 may be bent in a right direction in
(44) Here, the trip device 260 for a circuit breaker according to the present embodiment may include: the bimetal 162 in which the slot 162b with the one side opened is formed at the one end of the bimetal 162, and the one end is divided into the first end portion 162c and the second end portion 162d; the first terminal 166 which is connected to the first end portion 162c and is connected to the power source circuit or the load circuit; and the second terminal 164 which is connected to the second end portion 162d and is connected to the power source circuit or the load circuit. In the trip device 260, a length L of the slot 162b may be adjusted, and thus, a distance in which the current flows from the second end portion 162d to the first end portion 162c may be adjusted. Therefore, a resistance value may be adjusted in a limited space, and a heating amount and a bending amount of the bimetal 162 may be adjusted, whereby a desired rated current may be set. That is, when the length L of the slot 162b is long formed, a distance in which a current flows between the first end portion 162c and the second end portion 162d may increase. Therefore, the resistance value may increase, and the heating amount and the bending amount of the bimetal 162 may increase. Accordingly, a circuit breaker having a low rated current specification, which obtains a sufficient amount of generated heat even under a low rated current and thus effectively detects a fault current, may be implemented. On the other hand, when the length L of the slot 162b is shortly formed, the distance in which a current flows between the first end portion 162c and the second end portion 162d may decrease. Therefore, the resistance value may decrease, and the heating amount and the bending amount of the bimetal 162 may decrease. Accordingly, a circuit breaker having a high rated current specification, which effectively detects the fault current without damaging the bimetal even under a high rated current, may be implemented. Furthermore, based on the length L of the slot 162b, a circuit breaker having a desired rated current specification may be implemented between the low rated current specification and the high rated current specification.
(45) Moreover, in the trip device 260 for a circuit breaker according to the present embodiment, since the first terminal 266 includes the lead wire 266c, the bimetal 162 may generate heat with a current which flows between the first end portion 162c and the second end portion 162d, and thus, a temperature may increase. That is, a direct trip device may be implemented. Therefore, in comparison with the first embodiment, a simple and low-cost circuit breaker may be implemented.
(46) Descriptions on shapes, connection relationship, and effects of the other elements (i.e., the bimetal 162, the slot 162b, and the second terminal 164) of the trip device 260 for a circuit breaker according to the second embodiment of the present invention are the same as or similar to the first embodiment, and thus are not provided.
(47) Moreover, the other elements and effects of the circuit breaker instead of the trip device 160 (260) according to the embodiments of the present invention are the same as the related art, and thus are not described.
(48) The foregoing embodiments and advantages are merely exemplary and are not to be considered as limiting the present disclosure. The present teachings can be readily applied to other types of apparatuses. This description is intended to be illustrative, and not to limit the scope of the claims. Many alternatives, modifications, and variations will be apparent to those skilled in the art. The features, structures, methods, and other characteristics of the exemplary embodiments described herein may be combined in various ways to obtain additional and/or alternative exemplary embodiments.
(49) As the present features may be embodied in several forms without departing from the characteristics thereof, it should also be understood that the above-described embodiments are not limited by any of the details of the foregoing description, unless otherwise specified, but rather should be considered broadly within its scope as defined in the appended claims, and therefore all changes and modifications that fall within the metes and bounds of the claims, or equivalents of such metes and bounds are therefore intended to be embraced by the appended claims.