EARTH LEAKAGE BREAKER HAVING BUILT-IN TRIP MODULE TYPE CIRCUIT BREAKER
20230290600 · 2023-09-14
Inventors
Cpc classification
H01H83/20
ELECTRICITY
International classification
H01H83/06
ELECTRICITY
H01H83/20
ELECTRICITY
Abstract
Proposed is an earth leakage breaker having a built-in trip module type circuit breaker, which is installed at a line between a power supply and a load and has a trip module configured to cut the line off, the earth leakage breaker including: a CT installed on the line and configured to monitor an instantaneous current; and a control circuit unit comprising: an operation module configured to receive an instantaneous current sensed by the CT, to measure an instantaneous current value per unit time, and to calculate a slope of the instantaneous current per unit time; a determination module configured to determine a case as an overload state, the case having the slope exceeding an overcurrent determination value A, and to cause an overload state determination signal to be output; and an output module configured to output a trip module actuation signal according to the overload state determination signal of the determination module and to cut off the line, and accordingly, the earth leakage breaker causes the trip module to be actuated according to an instantaneous current slope.
Claims
1. An earth leakage breaker having a built-in trip module type circuit breaker, which is installed at a line between a power supply and a load and has a trip module configured to cut the line off, the earth leakage breaker comprising: a CT installed on the line and configured to monitor an instantaneous current; and a control circuit unit comprising: an operation module configured to receive an instantaneous current sensed by the CT, to measure an instantaneous current value per unit time, and to calculate a slope of the instantaneous current per unit time; a determination module configured to determine a case as an overload state, the case having the slope exceeding an overcurrent determination value A, and to cause an overload state determination signal to be output; and an output module configured to output a trip module actuation signal according to the overload state determination signal of the determination module and to cut the line off, wherein the earth leakage breaker thus causes the trip module to be actuated according to an instantaneous current slope.
2. The earth leakage breaker of claim 1, wherein the determination module outputs the overload state determination signal only when the instantaneous current continuously exceeds the overcurrent determination value A during a set overcurrent determination time T.
3. The earth leakage breaker of claim 1, wherein the output module controls and outputs the trip module actuation signal so that the power is cut off at a time (expressed as ZC hereinafter) when the instantaneous current becomes zero.
4. The earth leakage breaker of claim 3, wherein, in the case of ZC.sub.n≤T.sub.F≤ZC.sub.n+1−T.sub.trip, a trip module actuation signal is output after the Toff is delayed in time to ZC.sub.n+1−T.sub.trip so that the power is cut off at ZC.sub.n+1 where the instantaneous current value becomes zero, wherein ZC.sub.n: Time when a previous instantaneous current value is zero, ZC.sub.n+1: Time when an instantaneous current value is zero after ZC.sub.n, T.sub.trip: Trip module actuation time margin, T.sub.off: Trip module actuation signal output time, and T.sub.F: Overload state determination time.
5. The earth leakage breaker of claim 3, wherein, in a time interval from ZC.sub.n to ZC.sub.n+1, in the case of ZC.sub.n+1−T.sub.trip≤T.sub.F≤ZC.sub.n+1, the trip module actuation signal is caused to be immediately output at T.sub.off to allow a trip contact to be accomplished in a low current region, wherein ZC.sub.n: Time when a previous instantaneous current value is zero, ZC.sub.n+1: Time when an instantaneous current value is zero after ZC.sub.n, T.sub.trip: Trip module actuation time margin, T.sub.off: Trip module actuation signal output time, and T.sub.F: Overload state determination time.
6. The earth leakage breaker of claim 3, wherein in a time interval from ZC.sub.n to ZC.sub.n+1, in the case of ZC.sub.n+1−T.sub.trip≤T.sub.F≤ZC.sub.n+1, the trip module actuation signal is caused to be output after the Toff is delayed in time to ZC.sub.n+2−T.sub.trip so that the power is cut off at ZC.sub.n+1 when the instantaneous current value becomes zero, wherein ZC.sub.n: Time when a previous instantaneous current value is zero, ZC.sub.n+1: Time when an instantaneous current value is zero after ZC.sub.n, ZC.sub.n+2: Time when an instantaneous current value is zero after ZC.sub.n+1, T.sub.trip: Trip module actuation time margin, T.sub.off: Trip module actuation signal output time, and T.sub.F: Overload state determination time.
7. The earth leakage breaker of claim 1, wherein the control circuit unit comprises a unit time setting input unit configured to divide a period of the instantaneous current, thereby being capable of regulating time resolution for overload determination.
8. The earth leakage breaker of claim 1, wherein the control circuit unit comprises a T value setting input unit configured to set an over current determination time T, thereby being capable of regulating a noise determination value.
9. The earth leakage breaker of claim 1, wherein the control circuit unit comprises an actuation current setting unit configured to set an overcurrent determination value A.
10. The earth leakage breaker of claim 1, wherein the control circuit unit further comprises: a test button configured to test the actuation of the trip module; and a trip module actuation time setting unit configured to calculate and store a time from a start of actuation of the test button to a cut-off of power, and the control circuit unit is thus capable of automatically collecting a trip module actuation time margin T.sub.trip.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE INVENTION
[0026] Hereinafter, the present disclosure will be described with reference to the drawings, and in the description of the present disclosure, when it is determined that a detailed description of a related known technology or configuration may unnecessarily obfuscate the gist of the present disclosure, the detailed description thereof will be omitted.
[0027] In addition, terms described below are the terms defined in consideration of functions in the present disclosure, which may vary depending on a user, an intention or a custom of an operator, so a definition of each of the terms should be made on the basis of the content throughout the present specification describing the present disclosure.
[0028] For drawings below,
[0029] As shown in
[0030] In general, the earth leakage breaker is installed at a line 30 between a power supply 10 and a load 50 and includes a trip module 40 configured to cut the line off and a CT 20 configured to monitor a line instantaneous current.
[0031] In the present disclosure, the CT 20 is composed of a core 22 coupled to an active line and a core coil 21 and is configured to sense an instantaneous current i.
[0032] The trip module 40 is a device including a solenoid 42 and a trip switch 41 actuated by same, of a general earth leakage breaker.
[0033] An output terminal of the CT 20 is connected to the control circuit unit 60 of the present disclosure, and as shown in
[0034] Hereinafter, an embodiment of the present disclosure will be described with reference to
[0035] The operation module 61 of the present disclosure is a circuit unit configured to receive the instantaneous current i sensed by the CT 20 and measures an instantaneous current value per unit time to calculate a slope of the instantaneous current per unit time.
[0036] In one embodiment of the operation module 61, as shown in
[0037] The determination module 62 of the present disclosure is a circuit unit configured to determine a case as an overload state, the case having the slope exceeding an overcurrent determination value A, and to cause an overload state determination signal to be output.
[0038] The overcurrent determination value A is a value that is preset and input and may be changed according to the setting.
[0039] To this end, as shown in
[0040] The determination module 62 may output an overload state determination signal only when the instantaneous current continuously exceeds the overcurrent determination value A during a set overcurrent determination time T.
[0041] The overcurrent determination time T may be determined by a number m of continuance of the unit time, and this is to prevent a determination error due to an instantaneous noise current jump.
[0042] The unit time ΔT is a subdivision of the period of the instantaneous current I, and a T value setting input unit 630 and a unit time setting input unit 610 are provided in the control circuit unit 60 of the present disclosure so that the user may be allowed to freely determine accuracy and monitoring resolution.
[0043] The unit time setting input unit 610 is a circuit unit configured to divide the period of the instantaneous current at equal intervals, and the more size of the unit time is reduced, the more the monitoring resolution is increased.
[0044] In the T value setting input unit 630, a value of the number m of the unit time ΔT may be input, and accordingly, as shown in
[0045] The output module 63 of the present disclosure is a circuit unit configured to output a trip module actuation signal i.sub.off according to the overload state determination signal of the determination module 62 and to cut the line off.
[0046] The output module 63 corresponds to a solenoid actuation circuit in a general earth leakage breaker.
[0047] In general, in an earth leakage breaker, a physical actuation time delay of the solenoid 42 and the trip switch 41 occurs from a time when the trip module actuation signal i.sub.off outputs to a time when power is actually cut off. For each individual device, such actuation time delay is involved in an actuation error, and thus is independently and differently provided.
[0048] In taking into consideration this, actuation of the trip module of the present disclosure will be described with reference to
[0049] In
[0057] Such a trip module actuation time margin T.sub.trip appears differently from each unit device to another due to a small physical fine-error and has great significance in the unit time ΔT for monitoring the instantaneous current i.
[0058] Therefore, accurate measurement of T.sub.trip is required for each unit earth leakage breaker. To this end, as shown in
[0059] In an embodiment of
[0060] As described above, the present disclosure may measure and store the trip module actuation time margin T.sub.trip for each device, thereby enabling independent optimal control for each device to be accomplished.
[0061] Meanwhile, the output module 63 of the present disclosure controls and outputs the trip module actuation signal i.sub.off so that the power is cut off at a time (ZC) when the instantaneous current becomes zero, thereby preventing arcing in the switching part.
[0062] To this end, as shown in
[0063] On the other hand, when the overload state determination time TF does not belong to the section of the ZC.sub.n≤T.sub.F≤ZC.sub.n+1−T.sub.trip, that is, when ZC.sub.n+1−T.sub.trip≤T.sub.F≤ZC.sub.n+1, the present disclosure may provide various control elements.
[0064] As an embodiment of the control element, when ZC.sub.n+1−T.sub.trip≤T.sub.F≤ZC.sub.n+1, as shown in
[0065] In this case, the instantaneous current is not zero, so there is a concern that an arc may be generated. However, it is a relatively low current region, so there is an advantage that quick arc extinguishing is possible.
[0066] In addition, as another embodiment, when ZC.sub.n+1−T.sub.trip≤T.sub.F≤ZC.sub.n+1, as shown in
[0067] In this case, when heating damage during a half period is a relatively manageable amount of heat, it is a control method that takes precedence over arc prevention.
[0068] As still another embodiment, as a method of using the above embodiments in combination, when ZC.sub.n+1−T.sub.trip≤T.sub.F≤ZC.sub.n+1, it may be taken into consideration of selection that i.sub.off is caused to be immediately output at Toff or be output to allow the power to be cut off at ZC.sub.n+2 depending on the time distance to ZC.sub.n+1 or magnitude of a current slope.
[0069] According to the present disclosure configured as described above, a magnitude value of the instantaneous current i is monitored in real time, and the power is cut off through the trip module 40. Accordingly, there are advantages in that accessory parts such as bimetal and the like inside the earth leakage breaker may be removed, and a device in which the user may freely set current monitoring resolution, current monitoring magnitude, accuracy, and the like according to characteristics of each unit device may be provided.
[0070] The drawings shown above for the purpose of explanation of the present disclosure are one embodiment in which the present disclosure is embodied. As shown in the drawings, it may be seen that various types of combinations are possible in order to realize the gist of the present disclosure.
[0071] Therefore, the present disclosure is not limited to the above-described embodiments, and it will be said that there is the technical spirit of the present disclosure up to the scope, as claimed in the following claims, that anyone with ordinary skill in the art to which the present disclosure pertains may implement various modifications without departing from the gist of the present disclosure.