This application claims priority to a Chinese Patent Application No. CN 202110230473.0, filed on Mar. 2, 2021.
The present invention relates to the field of LED power supply circuits, particularly a load short-circuit protection circuit of LED power supply.
At present, the LED power on the market is generally divided into two major categories of constant voltage power supply and constant current power supply. In the constant voltage power supply scheme, since the output voltage is constant, the output current changes according to the value of the load. Therefore, when the constant voltage power supply fails and causes a short circuit, the output current of the constant voltage power supply will surge in a short time. If it cannot be quickly detected to protect, it will bring damage to the power supply, even fire accidents.
In the prior art, there are two ways to perform short-circuit detection protection, one is to detect the power supply voltage, as shown in
At present, there is a lack of simple structure, low energy consumption and high stability of LED power supply load short circuit protection circuit suitable for high power constant voltage power supply.
In view of this, the present invention provides a load short-circuit protection circuit of an LED power supply to solve the above technical problems.
a load short-circuit protection circuit of LED power supply includes a power supply end, a load end, a switching module disposed between the power supply end and the load end, and a sampling resistor set in series with the load end, it further includes a signal amplification module that collects the current change signal of the sample resistor, and a protection control module that receives a amplification signal of the signal amplification module and controls the on-off of the switching module according to the signal.
advantageously, the signal amplification module comprises a first triode, a second triode and a constant current source, and when the sampling resistor is disposed at the upper end of the circuit, the first triode and the second triode employ a PNP type triode;
the base of the first triode is connected to the base of the second triode, the emitter of the first triode is connected to the positive electrode of the sampling resistor, the collector of the first triode is connected with the protection control module as a signal output end, the collector of the first triode is also connected to the positive electrode of the first resistor, and the negative electrode of the first resistor is grounded;
the emitter of the second triode is connected to the negative electrode of the sampling resistance, the collector is connected to the positive electrode of the constant current source, the negative electrode of the constant current source is grounded.
advantageously, the collector of the first triode is connected to a second resistor, a negative electrode of the second resistor serves as a signal output end to connect the protection control module.
advantageously, the signal amplification module comprises a first triode, a second triode and a constant current source, and when the sampling resistor is disposed at the lower end of the circuit, the first triode and the second triode employ an NPN type triode;
the base of the first triode is connected to the base of the second triode, the collector of the first triode is connected to the negative electrode of the sampling resistor, the emitter of the first triode is connected with the protection control module as a signal output end, and the emitter is also connected to a negative electrode of a conversion resistor, a positive electrode of the conversion resistor is connected to the power supply end;
the collector of the second triode is connected to the positive electrode of the sampling resistor, the emitter is connected to the negative electrode of the constant current source, and the positive electrode of the constant current source is connected to the power supply end.
The technical effects of the present invention:
The load short circuit protection circuit of the LED power supply of the present invention can quickly magnify the subtle voltage difference changes on the sampling resistor and output them to the protection control module. The resistance value of the sampling resistance can be set very small to reduce the loss. Meanwhile, the selected devices are simple, with very fast response speed, low cost and high stability.
Embodiments of the present invention will be described below with reference to the drawings, in which:
Specific embodiments of the present invention will be described in further detail below based on the drawings. It should be understood that the description of the embodiments of the present invention herein is not intended to limit the protection scope of the present invention.
As shown in
When the load side 200 is short-circuited, the signal amplification module 500 rapidly enlarges the subtle difference in voltage change on the sampling resistor 400 and outputs it to the protection control module 600, and the protection control module 600 controls the switching module 300 to turn off, thereby disconnecting the circuit between the power supply end 100 and the load end 200, protecting the load and power supply.
The protection control module 600 can directly use microcontroller or other control chips, and can also set analog circuit to achieve control, and the switching module 300 can use triode, MOS tube, and the like, and will not be described in the prior art. In the present embodiment, the protection control module 600 adopts a microcontroller with the check pin connected with the signal amplification module 500 and the CTL pin connected to the control terminal of the switching module 300, and the switching module 300 adopts a MOS tube Q3.
The signal amplification module 500 can be set according to the setting of the sampling resistor 400. As shown in
The constant current source Ro maintains a constant current on it, which can be a resistor, or a constant current source device can also be used, and the constant current source device can be obtained by procurement, and the resistance is employed in the present embodiment.
When the protection control module 600 employs a microcontroller, the collector of the first triode Q1 is connected to a second resistor 505, the negative electrode of the second resistor 505 serves as the signal output end to connect the protection control module 600, which can play a role in protecting the microcontroller, as shown in
In the load short circuit protection circuit of the LED power supply of the present embodiment, the subtle dropout voltage change of the sample resistance 400 may be quickly amplified and then output to the detection port, that is, the signal output end, shown in the figure as the Check end. Therefore, the sampling resistor having a small resistance can be selected, which can reduce the loss, in the application of LED power supply, the resistance value of the sampling resistor 400 of the present embodiment can be less than 100 mΩ, or even less than 10 mΩ. Because the device is simple, so the corresponding speed is very fast, and the cost is low, and the stability is high. The principle is explained as follows:
When Q3 is off, then the current flowing through the sample resistor 400 I=0, as to Q1, Q2, Veb1=Veb2, the base current Ib1=Ib2, then there is a current relationship:
Ie1=βIb1=Ie2=βIb2; (1)
I1=Ib1+Ib2+Ie2=(β+2)Ib2; (2)
When Q3 is turned on, the current flows through the sample resistor 400, the voltage V across the sample resistor 400, then Veb1=(Veb2 +V); Because Veb2 decreases, Ib2 decreases. It is assumed that the decreasing current of Ib2 is Δi, at this point, Ib1 becomes Ib1′, Ib2 becomes Ib2′, Ie2 becomes Ie2′, Ie1 becomes Ie1′, because I1 is a constant value, the current value of I1 is unchanged, so it is obtained:
I=Ib1′+Ib2′+Ie2′=Ib1′+(β+1)Ib2′=Ib1′+(β+1)(Ib2−Δi); (3)
Substitution now yields, according to the above formula (2):
I1=Ib1′+(β+1)(I1/(β+2)−ΔΔi); (4)
which further substitutes into:
Ie1′=βIb1′=β(I1−(β+1)*I1/(β+2)+(β+1)*Δi)=β*I1/(β+2)+β(β+1)Δi; (5)
Since β is much greater than 1, Eq. 5 can be approximated as:
Ie1′≈I1+β*β*Δi. (6)
In another embodiment, as shown in
In addition, the sampling resistor 400 can also be disposed between the switch module 300 and the load end 200.
The above are only preferred embodiments of the present invention, and are not used to limit the protection scope of the present invention. Any modification, equivalent replacement or improvement within the spirit of the present invention is covered by the scope of the claims of the present invention.
Number | Date | Country | Kind |
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202110230473.0 | Mar 2021 | CN | national |
Number | Name | Date | Kind |
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20210227664 | Li | Jul 2021 | A1 |
Number | Date | Country |
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208273303 | Dec 2018 | CN |
Number | Date | Country | |
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20220287165 A1 | Sep 2022 | US |