Overvoltage detection device and overvoltage protection circuit

The overvoltage detection device addresses erroneous detection by reducing and clamping the power supply voltage, improving reliability in overvoltage protection circuits.

JP2025117588APending Publication Date: 2025-08-13MINEBEA POWER SEMICON DEVICE INC
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Patent Information

Application Number
JP2024012368
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-01-31
Publication Date
2025-08-13

AI Technical Summary

Technical Problem

Conventional overvoltage protection circuits malfunction due to noise superimposed on voltage dividing resistors, leading to erroneous overvoltage detection.

Method used

An overvoltage detection device with a voltage detection circuit that reduces the power supply voltage by a predetermined ratio and includes an output voltage clamp circuit to prevent erroneous detection by clamping the output voltage to zero when the power supply voltage is below a threshold.

Benefits of technology

Prevents erroneous overvoltage detection, thereby enhancing the reliability of the overvoltage detection device and protection circuit.

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Abstract

To provide an overvoltage detection device capable of detecting overvoltage with high reliability.SOLUTION: An overvoltage detection device (10) is for detecting overvoltage of power supply voltage (VDC), has a voltage detection circuit (11) generating voltage obtained by reducing the power supply voltage by a predetermined ratio, and outputs voltage generated by the voltage detection circuit (11). The overvoltage detection device (10) further has a clamp circuit (12) which clamps output voltage (VO) of the overvoltage detection device (10) zero, when the power supply voltage (VDC) is lower than a predetermined threshold value.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an overvoltage detection device that detects an overvoltage of a power supply that supplies power to a main circuit, and an overvoltage protection circuit that includes an overvoltage detection device. [Background technology]

[0002] 2. Description of the Related Art When the voltage of a power supply that supplies power to a main circuit such as a power conversion circuit becomes overvoltage due to noise or surges, an overvoltage protection circuit is provided to protect circuit devices from the overvoltage.

[0003] A known prior art overvoltage protection circuit uses a voltage dividing resistor as an overvoltage detection device and a comparator that determines whether an overvoltage has been detected (see, for example, Patent Document 1). The divided voltage of the power supply voltage output by the voltage dividing resistor is input to the comparator. The comparator compares the input divided voltage with a reference voltage generated by a reference voltage generation circuit. If the comparator determines that the divided voltage is greater than the reference voltage, it outputs a control signal to stop a main circuit device such as an inverter. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2004-70666 Summary of the Invention [Problem to be solved by the invention]

[0005] In the above-described conventional technology, if noise is superimposed on the output of the voltage dividing resistor, the overvoltage protection circuit may malfunction at a voltage lower than the overvoltage setting value, which may cause the overvoltage detection device to erroneously detect an overvoltage.

[0006] Therefore, the present invention provides an overvoltage detection device that can detect an overvoltage with high reliability, and an overvoltage protection circuit that includes such an overvoltage detection device. [Means for solving the problem]

[0007] To solve the above problems, an overvoltage detection device according to the present invention detects an overvoltage of a power supply voltage, includes a voltage detection circuit that generates a voltage that is the power supply voltage reduced by a predetermined ratio, and outputs the voltage generated by the voltage detection circuit. The overvoltage detection device according to the present invention further includes a clamp circuit that clamps the output voltage of the overvoltage detection device to zero when the power supply voltage is lower than a predetermined threshold.

[0008] In order to solve the above problems, the overvoltage protection circuit according to the present invention protects a main circuit from an overvoltage of a power supply voltage, and includes an overvoltage detection device that detects an overvoltage of the power supply voltage, and a comparator that compares the output voltage of the overvoltage detection device with a reference voltage and outputs a command signal to stop operation of the main circuit if the output voltage exceeds the reference voltage, and this overvoltage detection device is the overvoltage detection device according to the present invention. [Effects of the Invention]

[0009] According to the present invention, erroneous detection of an overvoltage is prevented, thereby improving the reliability of the overvoltage detection device and the overvoltage protection circuit.

[0010] Problems, configurations, and effects other than those described above will become apparent from the following description of the embodiments. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a block diagram showing a circuit configuration of an overvoltage detection device according to an embodiment; [Figure 2] 1 is a block diagram showing a circuit configuration of an overvoltage detection device according to a first embodiment of the present invention; [Figure 3] 1 is a circuit diagram showing a first configuration example of an overvoltage detection device according to a first embodiment. [Figure 4] FIG. 4 is a circuit diagram showing a second configuration example of the overvoltage detecting device according to the first embodiment. [Figure 5] FIG. 10 is a block diagram showing a circuit configuration of an overvoltage detection device according to a second embodiment. [Figure 6] FIG. 10 is a circuit diagram illustrating a configuration example of an overvoltage detection device according to a second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0012] FIG. 1 is a block diagram showing the circuit configuration of an overvoltage detection device according to one embodiment of the present invention.

[0013] The overvoltage detector 10 and the comparator 20 detect the DC power supply voltage V DC An overvoltage protection circuit is configured to protect against overvoltage.

[0014] A DC / AC converter circuit (inverter circuit) or a DC / DC converter circuit, which includes a parallel circuit of a semiconductor switching element (an IGBT in FIG. 1) and a free wheeling diode, is applied as the power conversion circuit 100. The power conversion circuit 100 converts input DC power into desired power by the control device 200 controlling the switching of the semiconductor switching element.

[0015] The overvoltage detection device 10 detects the input DC power supply voltage V DC is reduced by using the voltage detection circuit 11. The overvoltage detection device 10 detects the reduced voltage (V O The comparator 20 outputs the output voltage V O and a reference voltage V generated by a reference voltage generating circuit (not shown). ref The comparator 20 compares V O V ref (V O >V ref ), that is, V DC becomes equal to or exceeds a preset overvoltage setting value, and the overvoltage detection device 10 determines that an overvoltage has been detected, it sends a command signal to the control device 200 to stop the operation of the power conversion circuit 100. Upon receiving the command signal from the comparator 20, the control device 200 stops the switching of the semiconductor switching elements.

[0016] The voltage detection circuit 11 detects the input DC power supply voltage V DC is reduced by a predetermined ratio so that the voltage value is within the range of the allowable input voltage of the subsequent comparator 20 (V O ) and output it.

[0017] The overvoltage detection device 10 further detects the output voltage V O The output voltage (V O ) clamp circuit 12. The output voltage clamp circuit 12 clamps the DC power supply voltage V DC is lower than the overvoltage setting value, the output potential of the overvoltage detection device 10 is clamped to the reference potential (GND). O This clamps V to zero volts. DC is lower than the overvoltage setting value, the overvoltage detecting device 10 is prevented from erroneously detecting an overvoltage.

[0018] In this embodiment, the output voltage clamp circuit 12 is DC is a preset threshold V DC_th If lower (V DC <V DC_th ) and the output voltage V O is clamped to zero volts. DC_th is a voltage value that is lower than the overvoltage setting value and V O is set to a voltage value equal to or greater than that at the time of overvoltage detection.

[0019] According to this embodiment, the overvoltage detection device 10 includes the output voltage clamp circuit 12, so that V DC is lower than the overvoltage setting value, erroneous detection by the overvoltage detecting device 10 is prevented, thereby improving the reliability of the overvoltage detecting device 10. Therefore, the reliability of the overvoltage protection circuit is improved.

[0020] Hereinafter, embodiments of the present invention will be described with reference to the drawings, based on the following Examples 1 and 2. In each drawing (including the above-mentioned FIG. 1), the same reference numerals indicate the same components or components having similar functions. [Example]

[0021] FIG. 2 is a block diagram showing a circuit configuration of an overvoltage detection device according to a first embodiment of the present invention.

[0022] The voltage detection circuit 11 detects the DC power supply voltage V DC Enter the V you entered. DC The voltage detection circuit 11 detects the reduced voltage (V O ) is output.

[0023] In the first embodiment, the output voltage clamp circuit 12 includes a short circuit 13 connected between the output of the voltage detection circuit 11 and the reference potential GND, and a DC power supply voltage V DC is the threshold V DC_th and a threshold detection circuit 14 that activates the short circuit 13 when it detects that the voltage is lower than the threshold.

[0024] According to the first embodiment, the DC power supply voltage V DC is the threshold V DC_th If the voltage V is lower than the reference potential GND, the short circuit 13 operates to short-circuit the output of the voltage detection circuit 11 and the reference potential GND. O is clamped to zero volts.

[0025] Furthermore, according to this embodiment, by using the short circuit 13, the output voltage clamp circuit 12 can have a relatively simple circuit configuration.

[0026] FIG. 3 is a circuit diagram illustrating a first configuration example of the overvoltage detecting device according to the first embodiment.

[0027] 3, the voltage detection circuit 11 is configured by a resistive voltage divider circuit. In a first configuration example, the resistive voltage divider circuit has a series circuit of resistors R1 to R4, one end and the other end of the series circuit are connected to a high potential VDC of a DC power supply and a reference potential GND, respectively.

[0028] 3, resistors R1, R2, R3, and R4 are connected in series in this order from VDC to GND. The symbols R1, R2, R3, and R4 indicate resistors and also represent resistance values.

[0029] The resistor voltage divider circuit divides the DC power supply voltage V DC The voltage divided from O ) is output from the series connection point A between the resistor R4 connected to GND and the resistor R3 connected in series with the resistor R4. V0 is calculated by the resistance R of the series connection circuit of the resistors R1 to R4 (in Figure 3, R = R1 + R2 + R3 + R4) and the resistance R between the output of the resistor voltage divider circuit and GND. O (In Figure 3, R0 = R4) O / R) with V DC The voltage is divided from (V O =(R O / R)×V DC ) The voltage division ratio is V O The voltage value of V O In this embodiment (FIG. 1), the output voltage is set to a voltage value within the range of the allowable input voltage of the comparator 20 in the subsequent circuit that receives the output voltage.

[0030] The short circuit 13 is composed of a semiconductor switching element, MOSFET M1. MOSFET M1 is connected in parallel with resistor R4. That is, MOSFET M1 is connected between GND and a series connection point A between resistors R3 and R4, which serves as the output of the resistive voltage divider circuit. In the configuration example of FIG. 3, an N-channel MOSFET is used as MOSFET M1. The drain and source of MOSFET M1 are connected to the series connection point A and GND, respectively.

[0031] MOSFET M1 is V DC V DC_th If it is lower, it is turned on by the threshold detection circuit 14, shorting both ends of resistor R4, i.e., between the output of the resistor divider circuit and GND.

[0032] The threshold detection circuit 14 is composed of a resistive voltage dividing circuit and a NOT circuit L1 that serves as a drive circuit for the MOSFET M1.

[0033] The resistive voltage divider circuit has a series circuit of resistors R5 to R8, one end and the other end of the series circuit are connected to the high potential VDC of the DC power supply and the reference potential GND, respectively.

[0034] 3, resistors R5, R6, R7, and R8 are connected in series in this order from VDC to GND. The symbols R5, R6, R7, and R8 indicate resistors and also represent resistance values.

[0035] The resistor voltage divider circuit divides the DC power supply voltage V input across the series circuit of resistors R5 to R8. DC The voltage divided by the voltage division ratio set by the resistance values of resistors R5 to R8 is input to the NOT circuit L1. in Then, the voltage division ratio is V DC >V DC_th and V DC <V DC_th In the case of V in are set so that they correspond to the inputs of the NOT circuit, 1 (HIGH) and 0 (LOW), respectively. As a result, the output of the NOT circuit L1 is V DC >V DC_th and V DC <V DC_th In this case, the values are 0 (LOW) and 1 (HIGH), respectively.

[0036] That is, V DC V DC_th If (V DC =V DC_th ) in V inThe input threshold V in_th Then, the NOT circuit L1 is V in >V in_th In addition, the NOT circuit L1 outputs a control signal to turn off the MOSFET M1 when V in <V in_th When the voltage Vcc is 0, the control signal for turning on the MOSFET M1 is output.

[0037] The output of the NOT circuit L1 is connected to the gate of the MOSFET_M1. Therefore, the MOSFET_M1 is connected to the V DC >V DC_th and V DC <V DC_th are in the off and on states, respectively. Therefore, MOSFET_M1 is in the off state when V DC <V DC_th In this case, a short circuit is made between the output of the voltage detection circuit 11, which is made up of a resistive voltage divider circuit made up of resistors R1 to R4, and the reference potential GND.

[0038] According to the first configuration example, the voltage detection circuit 11, the short circuit 13, and the threshold detection circuit 14 can be configured from relatively simple circuits, so that the circuit scale of the overvoltage detection device 10 can be reduced.

[0039] FIG. 4 is a circuit diagram illustrating a second configuration example of the overvoltage detecting device according to the first embodiment.

[0040] Below, differences from the first configuration example (FIG. 3) will be explained.

[0041] As shown in FIG. 4, in the second configuration example, the input of the NOT circuit L1 is connected to a high potential VDC of a DC power supply.

[0042] The voltage input to the NOT circuit L1 is V in Then, V in =V DC and V DC >V DC_th and V DC <V DC_th In the case of V inThe threshold of the NOT circuit L1 is set so that V corresponds to the input of the NOT circuit, 1 (HIGH) and 0 (LOW), respectively. As a result, the output of the NOT circuit L1 is V DC >V DC_th and V DC <V DC_th In this case, the values are 0 (LOW) and 1 (HIGH), respectively.

[0043] Therefore, V DC_th The input threshold V in_th Then, the NOT circuit L1 is V in >V in_th When V in <V in_th When the voltage Vcc is 0, the control signal for turning on the MOSFET M1 is output.

[0044] Therefore, as in the first configuration example, MOSFET_M1 is V DC <V DC_th In this case, the output of the voltage detection circuit 11 is short-circuited to the reference potential GND.

[0045] According to the second configuration example, the total number of circuit components that make up the overvoltage detecting device 10 can be reduced. [Example]

[0046] FIG. 5 is a block diagram showing a circuit configuration of an overvoltage detection device according to a second embodiment of the present invention.

[0047] The following describes the differences from the first embodiment (FIG. 2).

[0048] The voltage detection circuit 11 detects the DC power supply voltage V DC Enter the V you entered. DC The voltage detection circuit 11 detects the reduced voltage (V O As will be described later, the operation of the voltage detection circuit 11 is controlled by a threshold detection circuit 14.

[0049] In the second embodiment, the output voltage clamp circuit 12 includes a short circuit 13 formed of a passive circuit connected between the output of the voltage detection circuit 11 and the reference potential GND, and a DC power supply voltage V DC is the threshold V DC_th and a threshold detection circuit 14 that stops the operation of the voltage detection circuit 11 when it detects that the voltage is lower than the threshold.

[0050] According to the second embodiment, the DC power supply voltage V DC is the threshold V DC_th If it is lower than V, the voltage detection circuit 11 detects DC From V DC When the operation of generating and outputting the reduced voltage is stopped, the potential of the output of the voltage detection circuit 11 is clamped to the reference potential GND by the short circuit 13. Therefore, the output voltage V O is clamped to zero volts.

[0051] Furthermore, according to the second embodiment, the output voltage clamp circuit 12 can have a relatively simple circuit configuration by using the short circuit 13 that is configured from a passive circuit.

[0052] FIG. 6 is a circuit diagram illustrating an example of the configuration of an overvoltage detection device according to the second embodiment.

[0053] 6, the voltage detection circuit 11 is configured by a resistive voltage divider circuit. In this configuration example, the resistive voltage divider circuit has a series circuit of resistors R1 to R4 and a MOSFET M1, and one end and the other end of the series circuit are connected to the high potential VDC of the DC power supply and the reference potential GND, respectively.

[0054] 6, resistors R1, R2, R3, MOSFET M1, and resistor R4 are connected in series in this order from VDC to GND. Note that the symbols R1, R2, R3, and R4 indicate the resistors and their resistance values.

[0055] When the MOSFET M1 is on, the resistor voltage divider circuit divides the DC power supply voltage V DC The voltage divided from O ) is output from a series connection point A between a resistor R4 connected to GND and a MOSFET M1 connected in series with the resistor R4.

[0056] Since the on-resistance of MOSFET M1 is much smaller than R1 to R4, V0 is calculated by the sum of the resistance R of the series-connected circuit of resistors R1 to R4 (in Figure 6, R = R1 + R2 + R3 + R4) and the resistance R between the output of the resistor voltage divider circuit and GND. O (In Figure 6, R O =R4) O / R) with V DC The voltage is divided from (V O =(R O / R)×V DC ) The voltage division ratio is V O The voltage value of V O In this embodiment (FIG. 1), the output voltage is set to a voltage value within the range of the allowable input voltage of the comparator 20 in the subsequent circuit that receives the output voltage.

[0057] The short circuit 13 is composed of a resistor R4, which is a passive element.

[0058] The threshold detection circuit 14 is configured with a MOSFET M1. In the configuration example shown in Fig. 6, an N-channel MOSFET is used as the MOSFET M1. The drain and source of the MOSFET M1 are connected to one end of the resistor R3 on the GND side and one end of the resistor R4 on the VDC side, respectively.

[0059] The gate of MOSFET M1 is connected to VDC. Therefore, MOSFET M1 is connected to V DC is input as a control signal. The input voltage threshold of the control signal for MOSFET M1, i.e., the gate threshold voltage, is V DC >V DC_th When V is DC <VDC_th V is set so that the MOSFET M1 is in the off state when DC_th is set to

[0060] When MOSFET M1 is in the off state, the electrical connection between R3 and the output in the resistive voltage divider circuit is released, and the operation of the resistive voltage divider circuit stops. At this time, the connection between the output of the resistive voltage divider circuit and resistor R4 is maintained, so the output of the resistive voltage divider circuit is connected to GND by resistor R4. As a result, the output potential is clamped to the reference potential GND, and the output voltage V O is clamped to zero volts, i.e., V DC <V DC_th When O is clamped to zero volts.

[0061] According to the example configuration of the overvoltage detecting device 10 shown in FIG. 6, the voltage detecting circuit 11, short circuit 13, and threshold detecting circuit 14 can be configured from relatively simple circuits, so that the circuit scale of the overvoltage detecting device 10 can be reduced.

[0062] The present invention is not limited to the above-described embodiments and examples, and includes various modifications. For example, the above-described examples have been described in detail to clearly explain the present invention, and the present invention is not necessarily limited to those including all of the described configurations. Furthermore, some of the configurations of each example can be deleted, other configurations can be added, or other configurations can be replaced.

[0063] For example, the resistive voltage divider circuit constituting the voltage detection circuit may include a parallel circuit of a plurality of resistors, or the voltage detection circuit may include a capacitive voltage divider circuit using a capacitor.

[0064] Moreover, instead of the MOSFET M1, other semiconductor switching elements such as a junction type FET may be used. [Explanation of symbols]

[0065] 10 Overvoltage detection device 11 Voltage detection circuit 12 Output voltage clamp circuit 13 Short Circuit 14 Threshold detection circuit 20 Comparator 100 Power conversion circuit 200 control device

Claims

1. In an overvoltage detection device for detecting an overvoltage of a power supply voltage, a voltage detection circuit for generating a voltage obtained by reducing the power supply voltage by a predetermined ratio; outputting the voltage generated by the voltage detection circuit; 1. An overvoltage detection device comprising: a clamp circuit that clamps an output voltage of the overvoltage detection device to zero when the power supply voltage is lower than a predetermined threshold value.

2. 2. The overvoltage detection device according to claim 1, The clamp circuit a short circuit connected between the output of the overvoltage detection device and a reference potential; a threshold detection circuit that activates the short circuit when it detects that the power supply voltage is lower than the threshold; An overvoltage detection device comprising:

3. 3. The overvoltage detection device according to claim 2, the voltage detection circuit includes a first resistive voltage divider circuit; the short circuit has a semiconductor switching element, The overvoltage detection device is characterized in that the threshold detection circuit turns on the semiconductor switching element when it detects that the power supply voltage is lower than the threshold.

4. 4. The overvoltage detection device according to claim 3, The threshold detection circuit a second resistive voltage divider circuit; a drive circuit that receives a divided voltage by the second resistive voltage divider circuit, defines the divided voltage when the power supply voltage is equal to the threshold as an input threshold, and outputs a control signal that turns on the semiconductor switching element when the divided voltage is lower than the input threshold; An overvoltage detection device comprising:

5. 4. The overvoltage detection device according to claim 3, The threshold detection circuit An overvoltage detection device comprising a drive circuit that inputs the power supply voltage, sets the threshold as an input threshold, and outputs a control signal that turns on the semiconductor switching element when the power supply voltage is lower than the input threshold.

6. 2. The overvoltage detection device according to claim 1, The clamp circuit a short circuit formed of a passive element connected between the output of the overvoltage detection device and a reference potential; a threshold detection circuit that stops operation of the voltage detection circuit when detecting that the power supply voltage is lower than the threshold; An overvoltage detection device comprising:

7. 7. The overvoltage detection device according to claim 6, the voltage detection circuit has a resistor voltage divider circuit in which a plurality of resistors and semiconductor switching elements are connected in series and which operates when the semiconductor switching elements are in an on state; The overvoltage detection device is characterized in that the threshold detection circuit turns off the semiconductor switching element when it detects that the power supply voltage is lower than the threshold.

8. 8. The overvoltage detection device according to claim 7, the short circuit is formed by a part of the plurality of resistors, the threshold detection circuit is configured by the semiconductor switching element, The semiconductor switching element receives the power supply voltage as a control signal, sets the threshold as an input voltage threshold, and turns off when the voltage of the control signal is lower than the input voltage threshold.

9. In an overvoltage protection circuit that protects the main circuit from overvoltage of the power supply voltage, an overvoltage detection device that detects the overvoltage of the power supply voltage; a comparator that compares the output voltage of the overvoltage detection device with a reference voltage, and outputs a command signal to stop operation of the main circuit when the output voltage exceeds the reference voltage; Equipped with 2. An overvoltage protection circuit, wherein the overvoltage detection device is the overvoltage detection device according to claim 1.

Citation Information

Patent Citations

  • Series DC constant voltage circuit with overvoltage protective function

    JP2004070666A