Control circuits and switching power supplies
The control circuit with dual protection units and pulse width adjustment addresses overcurrent issues in switching power supplies, ensuring safe operation and stable output under load variations.
Patent Information
- Application Number
- JP2021120693
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-07-21
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2041-07-21
AI Technical Summary
Existing switching power supplies lack effective protection mechanisms to prevent damage from overcurrents flowing through the switching element.
A control circuit is implemented with first and second protection units that halt the main current when it exceeds specific thresholds, with the second unit maintaining the switching element in an off state for multiple cycles if the current surpasses a higher threshold, and includes a control pulse generator to adjust pulse width and signal levels.
The control circuit effectively protects the switching power supply by preventing excessive current, ensuring safe operation and maintaining stable output voltage and current levels even under overload conditions.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a control circuit and a switching power supply. [Background technology]
[0002] BACKGROUND ART Conventionally, there is known a switching power supply that outputs a predetermined voltage or current by repeatedly transitioning a switching element between an on state and an off state (see, for example, Patent Document 1). Patent Document 1: Japanese Patent Application Laid-Open No. 2003-070247 Summary of the Invention [Problem to be solved by the invention]
[0003] It is desirable to be able to protect the switching power supply when an overcurrent flows through the switching element. [Means for solving the problem]
[0004] In order to solve the above problems, a first aspect of the present invention provides a control circuit for controlling a switching element that controls switching of a main current flowing through a transformer of a switching power supply. The control circuit may include a first protection unit that stops the main current of the switching element when the main current flowing through the switching element exceeds a first threshold. The control circuit may include a second protection unit that stops the main current of the switching element for a longer period than the first protection unit when the main current exceeds a second threshold that is greater than the first threshold.
[0005] The control circuit may include a control pulse generator that generates a control pulse for each cycle of the oscillation signal to control the switching element to an ON state. The first protection unit may shorten the pulse width of the control pulse in one cycle of the oscillation signal when the main current exceeds a first threshold. The second protection unit may fix the switching element to an OFF state over multiple cycles of the oscillation signal when the main current exceeds a second threshold.
[0006] The control circuit may include a control signal output unit that outputs a control signal for controlling the switching element in response to the control pulse. The second protection unit may fix the output of the control signal output unit to an off level over multiple cycles of the oscillation signal when the main current exceeds a second threshold.
[0007] The second protection unit may fix the switching element to the off state when the level of the signal for controlling the switching element to the on state or the off state is an on level that controls the switching element to the on state and when the main current exceeds a second threshold.
[0008] The second protection unit may include an overcurrent detection unit that detects an overcurrent state in which the main current exceeds a second threshold, and a timing comparator that fixes the switching element in an off state when the overcurrent detection unit detects an overcurrent state before the level of the control signal transitions from an on level to an off level.
[0009] A current detection signal indicating the magnitude of the main current may be input to the first protection unit and the second protection unit. The second protection unit may have a delay unit that delays the current detection signal and inputs it to the overcurrent detection unit.
[0010] The delay time in the delay unit may be longer than the operating time from when a current detection signal indicating that a main current exceeding the first threshold has flowed is input to the first protection unit until the first protection unit stops the main current.
[0011] A second aspect of the present invention provides a switching power supply including a switching element and a control circuit that controls the switching element. The control circuit may have the configuration according to the first aspect. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a diagram illustrating an example of a switching power supply 200 according to an embodiment of the present invention. [Figure 2] FIG. 2 is a diagram showing a configuration of a control circuit 100 according to a reference example. [Figure 3] 3 is a timing chart illustrating an example of operation of the switching power supply 200 described in FIGS. 1 and 2. [Figure 4A] FIG. 2 is a diagram showing the relationship between the output voltage Vout and the load current. [Figure 4B] FIG. 10 is a diagram illustrating the relationship between the VF terminal voltage and the oscillation frequency. [Figure 5] 10A and 10B are diagrams showing the OUT terminal voltage (voltage of a control signal applied to a switching element Q1) and the waveform of the drain current Ids of the switching element Q1 at rated load and overload. [Figure 6] 1 is a diagram illustrating an example of the configuration of a control circuit 100 according to an embodiment. [Figure 7] 7 is a diagram illustrating an example of operation of the switching power supply 200 using the control circuit 100 shown in FIG. [Figure 8] FIG. 2 is a diagram illustrating an example of the configuration of a timing comparator 72. DETAILED DESCRIPTION OF THE INVENTION
[0013] The present invention will be described below through embodiments of the invention, but the following embodiments do not limit the scope of the invention according to the claims. Furthermore, not all of the combinations of features described in the embodiments are necessarily essential to the solution of the invention. In this specification and drawings, elements having substantially the same function and configuration are designated by the same reference numerals to avoid redundant description, and elements not directly related to the present invention are not shown. In a single drawing, elements having the same function and configuration may be designated by the same reference numeral, and the reference numerals may be omitted for other elements. In this specification, terms such as "same" or "equal" may also include cases where there is an error due to manufacturing variations, etc. The error is, for example, within 10%.
[0014] FIG. 1 is a diagram showing an example of a switching power supply 200 according to an embodiment of the present invention. The switching power supply 200 outputs a predetermined voltage or current by repeatedly controlling a switching element Q1 between an on state and an off state. The switching power supply 200 of this example includes a primary side circuit 210, a secondary side circuit 220, and a transformer T1. The switching power supply 200 shown in FIG. 1 is a so-called forward type circuit, but is not limited to this.
[0015] The primary side circuit 210 may include a power supply circuit 205. The power supply circuit 205 supplies power to the primary side circuit 210. In this example, the power supply circuit 205 may be connected to an external AC power supply (voltage VIN) such as a commercial power supply. The power supply circuit 205 may have a diode bridge DS1 and a capacitor C1 that rectify and smooth the voltage and current from the AC power supply.
[0016] The primary circuit 210 includes a control circuit 100, a primary winding n1 of a transformer T1, a reset winding n3 of the transformer T1, a diode D1, and a switching element Q1. The primary winding n1 of this example is supplied with power from a power supply circuit 205.
[0017] The secondary circuit 220 includes a secondary winding n2 of the transformer T1, a diode D2, a diode D3, a secondary coil Ld, and one or more capacitors (capacitors C2 and C3 in FIG. 1). The secondary winding n2 is magnetically coupled to the primary winding n1.
[0018] The switching element Q1 is connected in series with the primary winding n1 and controls whether or not current flows through the primary winding n1. The switching element Q1 is, for example, a power MOSFET. The control circuit 100 controls the on and off states of the switching element Q1. The control circuit 100 may output a control signal to be input to a gate terminal of the switching element Q1. The control circuit 100 is, for example, an integrated circuit chip.
[0019] When the switching element Q1 is turned on and an excitation current flows through the primary winding n1, a load current corresponding to the turns ratio flows through the secondary winding n2. The load current flowing through the secondary winding n2 is rectified by the diode D2. In this example, the diode D2 is disposed between the high-voltage terminal of the secondary winding n2 and the secondary coil Ld. The load current passing through the secondary coil Ld charges the capacitors C2 and C3. An output voltage Vout is applied to the load according to the amount of charge stored in the capacitors C2 and C3.
[0020] When the switching element Q1 is turned off, the current flowing through the primary winding n1 is cut off, and an excitation current flows through the reset winding n3. This excitation current flows from the diode D1 to the reset winding n3 and is regenerated on the high-voltage side of the power supply circuit 205. As the switching element Q1 remains in the off state, this excitation current gradually decreases. Furthermore, the load current flowing through the secondary winding n2 circulates via the diode D3. In this example, the diode D3 is arranged between the low-voltage side terminal of the secondary winding n2 and the secondary coil Ld.
[0021] After the excitation current flowing through the reset winding n3 becomes zero, the excitation current flows from the low-voltage side to the high-voltage side of the primary winding n1, using the parasitic capacitance of the switching element Q1 as a power source. When the parasitic capacitance is discharged, the diode D2 of the secondary circuit 220 becomes forward biased and conducts, causing the excitation current to flow through the secondary winding n2. After that, the switching element Q1 turns on, and the above-mentioned operation is repeated. By performing the switching operation of the switching element Q1 in this way, a predetermined voltage and current are supplied to the load.
[0022] The primary side circuit 210 may include a power supply circuit 230 that supplies power to a power supply terminal VCC of the control circuit 100. The power supply circuit 230 may generate the power based on a current generated by the switching operation of the switching element Q1. The power supply circuit 230 in this example includes an auxiliary winding n4, a diode D5, a resistor R10, and one or more capacitors (capacitors C8 and C9 in the example of FIG. 1).
[0023] The auxiliary winding n4 is arranged between the high-voltage terminal of the power supply circuit 205 and the GND line. A resistor R1 may be arranged between the auxiliary winding n4 and the power supply circuit 205. The auxiliary winding n4 is magnetically coupled to the secondary winding n2. That is, a current corresponding to the current of the secondary winding n2 flows through the auxiliary winding n4. A diode D5 is arranged between the high-voltage terminal of the auxiliary winding n4 and the power supply terminal VCC of the control circuit 100, and rectifies the current flowing through the auxiliary winding n4. A resistor R10 is arranged between the diode D5 and the power supply terminal VCC. The current passing through the diode D5 charges capacitors C8 and C9. The power stored in the capacitors C8 and C9 is supplied as power supply power to the control circuit 100.
[0024] During startup, before the switching operation of the switching element Q1 has begun, capacitors C8 and C9 are charged via resistor R1. When the voltages of capacitors C8 and C9 rise to a predetermined startup voltage, control circuit 100 starts up and starts the switching operation of switching element Q1. After switching element Q1 begins switching operation, capacitors C8 and C9 are charged by current from auxiliary winding n4. However, if the switching operation of switching element Q1 stops due to a protection operation or the like, capacitors C8 and C9 are charged via resistor R1. This allows the operation of control circuit 100 to continue.
[0025] The control circuit 100 has an OUT terminal that outputs a control signal for controlling the switching element Q1. In this example, the OUT terminal is connected to the gate terminal of the switching element Q1 via a resistor R3. The resistor R3 allows adjustment of the gate resistance of the switching element Q1. A resistor R4 and a diode D4 may be provided between the resistor R3 and the gate terminal of the switching element Q1. The diode D4 is connected in parallel with the resistor R4. The anode terminal of the diode D4 is connected to the gate terminal of the switching element Q1, and the cathode terminal is connected to the resistor R3. The gate terminal of the switching element Q1 may be connected to a GND line via a resistor R5. The reference potential line GND is connected to the GND terminal of the control circuit 100.
[0026] The primary side circuit 210 may have a resistor R6, one end of which is connected to the source terminal of the switching element Q1 and the other end of which is connected to the low voltage side terminal of the power supply circuit 205 (i.e., the common line of the primary side circuit 210). R The other end of the primary winding n1 is also connected to the reference potential line GND via a resistor R9 and a capacitor C7. The current flowing through the primary winding n1 and the switching element Q1 flows to the low-voltage side of the power supply circuit 205 via a resistor R6.
[0027] The control circuit 100 has a CS terminal that detects the magnitude of the main current (drain current Ids in this example) flowing through the switching element Q1. The CS terminal receives the potential at one end (the other end described above) of the resistor R6. The connection portion that receives this potential at the CS terminal may include a filter composed of a resistor R9 connecting the CS terminal and the resistor R6 and a capacitor C7, as in the primary side circuit 210 of this example. The potential at the other end (the one end connected to the switching element Q1 described above) of the resistor R6 is input to the GND terminal of the control circuit 100 via the reference potential line GND. In other words, the potential at the source terminal of the switching element Q1 and the potential at the GND terminal of the control circuit 100 are common. A potential difference corresponding to the magnitude of the drain current Ids occurs between both ends of the resistor R6. Therefore, the potential difference between the GND terminal and the CS terminal indicates the magnitude of the drain current Ids. Note that the potential at the CS terminal of the control circuit 100 of this example swings negatively relative to the potential at the GND terminal depending on the magnitude of the drain current Ids.
[0028] The control circuit 100 may have an FB terminal to which a signal indicating the magnitude of the output voltage Vout of the secondary side circuit 220 is input. In this example, the secondary side circuit 220 is provided with a voltage detection unit 240 that detects the magnitude of the output voltage Vout. The voltage detection unit 240 includes a resistor R12, a light-emitting diode PC1A, a resistor R13, and a shunt regulator SR1. A voltage obtained by dividing the output voltage Vout by resistors R13 and R14 may be applied to the control input of the shunt regulator SR1. The shunt regulator SR1 draws current if the voltage applied to the control input is higher than a predetermined reference voltage, and does not draw current if the voltage applied to the control input is lower. In other words, the shunt regulator SR1 operates so that the output voltage Vout becomes a value expressed by the following equation: Vout = Reference voltage / (R14 x (R13 + R14))
[0029] Resistor R12, light-emitting diode PC1A, and shunt regulator SR1 are connected in series between the output terminal for outputting output voltage Vout and a reference potential. Resistor R13 is connected in parallel with light-emitting diode PC1A. A current corresponding to the output voltage Vout flows through light-emitting diode PC1A, and light with an intensity corresponding to the magnitude of this current flows through light-emitting diode PC1A.
[0030] The primary side circuit 210 includes a light-receiving element such as a phototransistor PC1B that receives light output from the light-emitting diode PC1A. The phototransistor PC1B generates a current corresponding to the intensity of the received light. The phototransistor PC1B may be disposed between the FB terminal and the GND line of the control circuit 100. This allows a current corresponding to the output voltage Vout to flow through the FB terminal. The primary side circuit 210 may include a capacitor C6 disposed in parallel with the phototransistor PC1B. This allows high-frequency components to be removed from the current flowing through the FB terminal.
[0031] The control circuit 100 may have an SS terminal to which a signal indicating whether the output voltage Vout of the secondary side circuit 220 is in an overvoltage state is input. In this example, the secondary side circuit 220 is provided with an overvoltage detection unit 250 that detects whether the output voltage Vout is in an overvoltage state. The overvoltage detection unit 250 has a resistor R11, a light emitting diode PC2A, and a Zener diode ZD1.
[0032] Resistor R11, light-emitting diode PC2A, and Zener diode ZD1 are connected in series between the output terminal that outputs output voltage Vout and a reference potential. When the output voltage Vout exceeds the reference voltage determined by the breakdown voltage of Zener diode ZD1, Zener diode ZD1 becomes conductive, causing current to flow through resistor R11 and light-emitting diode PC2A. Light-emitting diode PC2A emits light in response to the current.
[0033] The primary-side circuit 210 includes a light-receiving element such as a phototransistor PC2B that receives light output from the light-emitting diode PC2A. The phototransistor PC2B generates a current corresponding to the intensity of the received light. The phototransistor PC2B may be disposed between the SS terminal of the control circuit 100 and a resistor R1. A resistor R2 may be disposed between the resistor R1 and the phototransistor PC2B. When the output voltage Vout reaches an overvoltage state and a current flows through the phototransistor PC2B, a predetermined voltage is applied to the SS terminal. A capacitor C4 may be disposed between the SS terminal and the GND line.
[0034] The control circuit 100 may have an RT terminal. The RT terminal may be connected to the GND line via a resistor R8. The RT terminal is controlled to a constant voltage, and the frequency of an oscillation signal (described later) is controlled by the current flowing through the resistor R8.
[0035] The control circuit 100 may have a VF terminal. A signal for controlling the frequency of the oscillation signal during current droop, which will be described later, is input to the VF terminal. The VF terminal may be connected to the OUT terminal via a resistor R7. The VF terminal may also be connected to the GND line via a capacitor C5.
[0036] FIG. 2 is a diagram showing the configuration of a control circuit 100 according to a reference example. The control circuit 100 of this example has internal power supplies 11 and 12 that generate internal voltages based on power supplied from the VCC terminal. The internal power supply 11 generates a voltage Vdd1, and the internal power supply 12 generates a voltage Vdd2. The voltages Vdd1 and Vdd2 may have the same voltage value. As an example, the voltages Vdd1 and Vdd2 are 5V. Each circuit included in the control circuit 100 receives power from either the internal power supply 11 or the internal power supply 12. Because there are two internal power supplies, each circuit included in the control circuit 100 can be selectively shut down by shutting off one of the internal power supplies in the event of an abnormality, etc.
[0037] The control circuit 100 of this example includes a protection diode 14, a hysteresis circuit 10, and a protection circuit 13. The protection diode 14 clamps the VCC voltage so that the voltage at the VCC terminal does not exceed a predetermined voltage.
[0038] The hysteresis circuit 10 monitors whether the voltage at the VCC terminal has dropped below a predetermined value. The hysteresis circuit 10 outputs a protection signal UVLO that goes low when the VCC voltage drops below a predetermined low voltage and goes high when the VCC voltage reaches a predetermined high voltage. When the protection signal UVLO is low, the voltage at the gate terminal of the switching element Q1 is fixed at low. This prevents the switching element Q1 from performing switching operations when the VCC voltage is low. For example, the hysteresis circuit 10 may set the protection signal UVLO to low when the VCC voltage drops below 9V. Alternatively, the hysteresis circuit 10 may transition the protection signal UVLO from low to high when the VCC voltage rises above 18V. For example, when the switching power supply 200 is started or restarted, the hysteresis circuit 10 sets the protection signal UVLO to high when the gradually increasing VCC voltage reaches 18V or higher.
[0039] The protection circuit 13 monitors the internal voltages generated by the internal power supplies 11 and 12. If either of the internal voltages falls outside a preset tolerance range, the protection circuit 13 stops the switching operation of the switching element Q1.
[0040] The control circuit 100 includes a PWM circuit 22, an oscillation frequency control unit 24, an oscillator 26, a control pulse generation unit 32, a logical product circuit 34, and a control signal output unit 20. The control signal output unit 20 outputs a control signal for controlling the switching element Q1 in response to an input control pulse. The control signal output unit 20 level-shifts the control pulse to a signal ranging from 0 V to VCC voltage and outputs the signal. That is, the control signal output unit 20 outputs 0 V when the control pulse indicates an L level, and outputs VCC voltage when the control pulse indicates an H level. When the control signal is 0 V, the switching element Q1 is in the OFF state, and when the control signal is VCC voltage, the switching element Q1 is in the ON state.
[0041] Note that while an L-level signal is input to the enable terminal of control signal output unit 20, control signal output unit 20 outputs 0 V regardless of the control pulse. By inputting an L-level signal to the enable terminal of control signal output unit 20, hysteresis circuit 10 and protection circuit 13 described above stop the switching operation of switching element Q1.
[0042] The PWM circuit 22, oscillator 26, and control pulse generator 32 generate control pulses. The oscillator 26 generates an oscillation signal that defines the cycle of the control pulse. The oscillation frequency controller 24 controls the frequency of the oscillation signal. The oscillator 26 may generate a triangular wave signal and a square wave signal as the oscillation signal. The period of the oscillation signal may be set by the resistance value of resistor R8 connected to the RT terminal. The triangular wave signal and the square wave signal are synchronized. In this example, the signal level of the triangular wave signal increases during the period when the square wave signal is at a high level, and decreases during the period when the square wave signal is at a low level.
[0043] The PWM circuit 22 compares the Vfb voltage at the FB terminal with the signal level of the triangular wave signal. In this example, the PWM circuit 22 outputs a high level while the voltage of the triangular wave signal exceeds the Vfb voltage, and outputs a low level while the voltage of the triangular wave signal is equal to or lower than the Vfb voltage.
[0044] A resistor 68 is provided between the FB terminal and a high potential (Vdd1). As described above, a current corresponding to the output voltage Vout flows through the FB terminal. Since this current flows through the resistor 68, the voltage Vfb at the FB terminal is determined by the resistance value Rfb of the resistor 68 and the value of this current. In this example, as the output voltage Vout increases, the voltage Vfb decreases, and as the output voltage Vout decreases, the voltage Vfb increases.
[0045] The control pulse generating unit 32 generates a pulse in each cycle of the oscillation signal generated by the oscillator 26. In this example, the control pulse generating unit 32 is a set-reset flip-flop. The output of the control pulse generating unit 32 transitions to an H level in response to the rising edge of the square wave output by the oscillator 26. The control circuit 100 may include a one-shot circuit 28 that generates a one-shot pulse with a shorter pulse width than the square wave signal in response to the rising edge of the oscillation signal (square wave signal). The one-shot pulse may be input to a set terminal of the control pulse generating unit 32.
[0046] The output of the control pulse generator 32 transitions to L level when the signal output by the PWM circuit goes H level. That is, the control pulse generator 32 outputs H level from the timing of the rising edge of the oscillation signal to the timing when the voltage of the triangular wave signal exceeds the Vfb voltage. As a result, the control pulse generator 32 outputs a control pulse whose pulse width is adjusted according to the level of the Vfb voltage in each cycle of the oscillation signal.
[0047] In this example, the control pulse has a larger pulse width as the Vfb voltage increases (i.e., the output voltage Vout decreases), and a smaller pulse width as the Vfb voltage decreases (i.e., the output voltage Vout increases), thereby suppressing fluctuations in the output voltage Vout.
[0048] The AND circuit 34 may input the logical product of the output of the control pulse generation unit 32 and the oscillation signal (rectangular wave signal) to the control signal output unit 20. This allows the upper limit of the pulse width of each control pulse to be defined by the pulse width of the rectangular wave signal. The AND circuit 34 may input the logical product of the output of the control pulse generation unit 32, the oscillation signal (rectangular wave signal), and the inverted output of the set / reset circuit 30 to the control signal output unit 20.
[0049] The control circuit 100 includes a first protection unit 110. When the drain current Ids flowing through the switching element Q1 exceeds a first threshold, the first protection unit 110 turns off the switching element Q1 to stop the drain current Ids. The first protection unit 110 may stop the drain current Ids by adjusting at least one of the on-period and off-period of the switching element Q1. When the drain current Ids flowing through the switching element Q1 exceeds the first threshold, the first protection unit 110 of this example shortens the on-period of the control pulse in the corresponding cycle of the oscillation signal. More specifically, the first protection unit 110 shortens the on-period by cutting off the control pulse in the corresponding cycle and setting it to an L level. This prevents excessive current from flowing through the switching element Q1. A current detection signal CS indicating the magnitude of the drain current Ids is input to the first protection unit 110 from a CS terminal. In this example, the current detection signal CS is a negative voltage signal whose absolute value increases as the drain current Ids increases.
[0050] The first protection unit 110 includes a voltage comparison unit 36 and a reference voltage generation unit 38. The reference voltage generation unit 38 generates a reference voltage corresponding to the first threshold value described above. In the example of FIG. 2, the reference voltage is −0.17 V. The voltage comparison unit 36 compares the current detection signal CS with the reference voltage. When the current detection signal CS is below the reference voltage (in this example, when the absolute value of the current detection signal CS is greater than that of the reference voltage), the voltage comparison unit 36 outputs an H-level current limit signal LS1. When the current detection signal CS is equal to or greater than the reference voltage (in this example, when the absolute value of the current detection signal CS is equal to or less than that of the reference voltage), the voltage comparison unit 36 outputs an L-level current limit signal LS1.
[0051] The current limit signal LS1 output by the voltage comparator 36 is input to the set terminal of the set / reset circuit 30. The one-shot pulse output by the one-shot circuit 28 is input to the reset terminal of the set / reset circuit 30. That is, the set / reset circuit 30 outputs an L-level signal from the time an overcurrent is detected in the first protection unit 110 until the one-shot pulse of the next cycle is input. When the set / reset circuit 30 outputs an L-level signal, the logical product circuit 34 cuts off the control pulse for that cycle, turning the switching element Q1 into the OFF state. This shortens the ON period for that cycle, thereby suppressing an increase in the drain current Ids.
[0052] The oscillation frequency control unit 24 of this example lengthens the period of the oscillation signal (i.e., reduces the frequency) during the period when the current limiting signal LS1 indicates the H level compared to the period when the current limiting signal LS1 indicates the L level. This makes it possible to reduce the switching frequency of the switching element Q1 when the first protection unit 110 detects an overcurrent state.
[0053] The oscillation frequency control unit 24 may control the frequency of the oscillation signal when an overcurrent is detected, based on the voltage at the VF terminal. The voltage at the VF terminal can be adjusted by a resistor R7 connected to the VF terminal. The resistance value of the resistor R7 can be adjusted as appropriate by the user.
[0054] Furthermore, the Vss voltage of the SS terminal may be input to the PWM circuit 22. The PWM circuit 22 may compare the lower of the Vss voltage and the Vfb voltage with a triangular wave signal. A current Iss flows through the SS terminal from a current source 40. When the switching power supply 200 starts up, the capacitor C4 connected to the SS terminal is charged by the current Iss, and the Vss voltage gradually increases. During the period when the Vss voltage is lower than the Vfb voltage, the PWM circuit 22 compares the Vss voltage with the triangular wave signal, and the pulse width of the control pulse gradually increases in accordance with the Vss voltage. This allows the drain current Ids to gradually increase when the switching power supply 200 starts up, enabling soft start.
[0055] The control circuit 100 may include a Zener diode 42 connected between the SS terminal and the GND potential. This clamps the Vss voltage to the breakdown voltage of the Zener diode. In this example, the clamp voltage is 3.8 V. The control circuit 100 may include a transistor 46 connected in series with the Zener diode 42. The Vss voltage is clamped by turning on the transistor 46. The clamping of the Vss voltage can be released by turning off the transistor 46. The control circuit 100 may include an OR circuit 48 that controls the transistor 46.
[0056] The control circuit 100 may include a comparison circuit 50, a power supply 56, a protection circuit 52, and an AND circuit 54. The protection circuit 52 stops the switching operation of the switching element Q1 when the Vss voltage exceeds a predetermined reference value.
[0057] The power supply 56 generates a reference voltage. In this example, the reference voltage is 7.5V. The comparator circuit 50 outputs an H level when the Vss voltage exceeds the reference voltage, and outputs an L level when the Vss voltage is equal to or lower than the reference voltage. The protection circuit 52 in this example is a set-reset flip-flop in which the output of the comparator circuit 50 is input to a first set terminal S1. The inverted output QB of the protection circuit 52 becomes an L level when the output of the comparator circuit 50 becomes an H level.
[0058] When the output of the protection circuit 52 becomes L level, the AND circuit 54 inputs an L level signal to the enable terminal EN of the control signal output unit 20. This stops the switching operation of the switching element Q1.
[0059] An inverted signal of the protection signal UVLO is input to the reset terminal of the protection circuit 52. That is, the output Q of the protection circuit 52 is reset when the protection signal UVLO transitions to the L level. In this case, the inverted output QB of the protection circuit 52 becomes the H level. In this example, the protection circuit 52 stops the switching operation of the switching element Q1 from when an overvoltage is detected by the phototransistor PC2B until the switching power supply 200 is restarted and the protection signal UVLO transitions to the L level.
[0060] The AND circuit 54 may receive the protection signal UVLO and the output of the protection circuit 13. The AND circuit 54 may output the logical AND of the output of the protection circuit 52, the protection signal UVLO, and the output of the protection circuit 13. In other words, when an abnormality is detected in any of the protection circuit 52, the protection circuit 13, and the hysteresis circuit 10, the AND circuit 54 may stop the switching operation of the switching element Q1.
[0061] The oscillation frequency control unit 24 may also reduce the frequency of the oscillation signal when the Vfb voltage of the FB terminal becomes an overvoltage equal to or greater than a predetermined Vfbolp voltage. The control circuit 100 may include a voltage comparator 60 that compares the Vfb voltage with the Vfbolp voltage.
[0062] The control circuit 100 may include a logical product circuit 66, a hiccup comparator 62, and an inverter 64. The hiccup comparator 62 outputs an L level when the voltage at the VF terminal becomes equal to or lower than a predetermined voltage Vhic. The inverter 64 inverts the output of the hiccup comparator 62 and outputs the inverted output.
[0063] The AND circuit 66 outputs an H level when the voltage comparator 60 detects an overvoltage (i.e., the output of the voltage comparator 60 is an H level) and the output of the inverter 64 is an H level. When the output of the AND circuit 66 becomes an H level, the transistor 46 is controlled to be in an OFF state via the OR circuit 48, and the clamp on the Vss voltage is released.
[0064] The control circuit 100 may include a hiccup control unit 70. The hiccup control unit 70 performs a hiccup operation when the AND circuit 66 outputs an H level. The hiccup operation will be described later. When performing the hiccup operation, the hiccup control unit 70 may stop the operation of the internal power supply 11. When performing the hiccup operation, the hiccup control unit 70 may control the transistor 46 to an off state via the OR circuit 48.
[0065] FIG. 3 is a timing chart illustrating an example of the operation of the switching power supply 200 described in FIGS. 1 and 2. In this example, the oscillator 26 generates a triangular wave signal that transitions between 1 V and 3 V. The oscillator 26 also outputs a square wave signal (not shown) synchronized with the triangular wave signal. The square wave signal goes high during the period Dmax when the triangular wave signal is rising, and goes low during the period when the triangular wave signal is falling. FIG. 3 also shows the Vfb voltage together with the triangular wave signal. The PWM circuit 22 outputs a high level during the period when the voltage of the triangular wave signal exceeds the Vfb voltage, and outputs a low level during the period when the voltage of the triangular wave signal is equal to or lower than the Vfb voltage.
[0066] The one-shot circuit 28 outputs a short one-shot pulse at the start of each cycle of the oscillation signal (triangular wave signal and square wave signal). The control pulse generator 32 outputs a control pulse having a pulse width from when the one-shot pulse is input until when the voltage of the triangular wave signal exceeds the Vfb voltage. The OUT terminal voltage has a waveform similar to that of the control pulse. When the OUT terminal voltage is at a high level, Ton, the switching element Q1 is in an on state, and when the OUT terminal voltage is at a low level, Toff, the switching element Q1 is in an off state.
[0067] During the period Ton, the switching element Q1 is in the ON state, so the drain voltage is 0 V. During the period Toff, the switching element Q1 is in the OFF state, so the drain voltage rises. Furthermore, during the period Ton, the drain current rises, and during the period Toff, the drain current becomes 0. FIG. 3 shows operation below the rated load. In this example, the drain current transitions within a range smaller than the first threshold Ilim1, so the first protection unit 110 does not detect an overcurrent.
[0068] In Figure 3, the voltage output by the power supply circuit 205 is Vin. Immediately after the transition from period Ton to Toff, the current flowing through the primary winding n1 flows to the reset winding n3. In this example, the primary winding n1 and the reset winding n3 have the same number of turns. Therefore, the drain voltage rises to 2 × Vin.
[0069] During the on-period Ton of the switching element Q1, the excitation current flowing through the primary winding n1 increases, and during the off-period Toff, it decreases. In a forward-type power supply such as that shown in Figure 1, the on-period Ton is set to be less than the off-period Toff. In this example, Ton is 46% of Ton + Toff. The ratio of Ton to Ton + Toff is called the on-duty. The excitation current is reset to 0 by the start of each cycle. As shown in Figure 3, when the excitation current becomes 0, the voltage of the primary winding n1 begins to return to 0V, and the drain voltage drops to Vin.
[0070] A load current flows through the secondary winding n2 in response to the excitation current of the primary winding n1. The voltage and current of the secondary coil Ld change in response to the load current. During the period Ton, the current flowing through the secondary winding n2 is rectified by the diode D2. During the period Toff, the load current flows back to the diode D3.
[0071] In a forward type power supply, the L value of the transformer T1 is large and it operates in a continuous current mode. The output voltage Vout of the switching power supply 200 is expressed by the following equation. Vout = Vin × (n2 / n1) × On Duty Even if the load current flowing to the secondary side changes, the on-duty and Vfb voltage only change slightly and remain almost constant, and the DC offset component in the continuous current mode changes and is adjusted.
[0072] Fig. 4A is a diagram showing the relationship between the output voltage Vout and the load current. Fig. 4B is a diagram showing the relationship between the VF terminal voltage and the oscillation frequency. Fig. 5 is a diagram showing the OUT terminal voltage (the voltage of the control signal applied to the switching element Q1) and the waveform of the drain current Ids of the switching element Q1 at rated load and overload.
[0073] In a forward power supply, the output voltage Vout is set by the turns ratio of the primary winding n1 and secondary winding n2 and the on-duty. As the load current increases, the value of the drain current Ids flowing through the switching element Q1 in continuous current mode (Icont1 in Figure 5) increases while the on-duty remains constant, and the level of the current detection signal CS at the CS pin decreases.
[0074] When the load current exceeds the rated current Io and increases to I1, the drain current Ids in continuous conduction mode must increase to Icont2 and the peak current of the drain current Ids must increase to Ipk2 to maintain a constant on-duty ratio. However, when the drain current Ids increases to the first threshold Ilim1, the first protection unit 110 reduces the on-duty ratio of the switching element Q1. This causes the output voltage Vout to begin to decrease. As the load current increases further, the peak value of the drain current Ids remains constant, but the current flowing in continuous conduction mode increases further, further reducing the on-duty ratio. As a result, the output voltage Vout decreases. Furthermore, as the drain current Ids increases and the on-duty ratio decreases, the voltage at the VF terminal decreases. In this case, the control circuit 100 reduces the oscillation frequency as shown in FIG. 4B.
[0075] If only the current limiting operation is performed, the output voltage Vout will decrease while the load current gradually increases from the point where the output voltage Vout and the load current are I1, as shown by waveform 402 in Figure 4A. As shown by waveform 401, switching power supply 200 decreases output voltage Vout from the point where the output voltage Vout and the load current are I1 without increasing the load current I1. Switching power supply 200 of this example smoothes the control signal (OUT terminal voltage) applied to the VF terminal of control circuit 100 using capacitor C5 and resistor R7.
[0076] When the voltage at the VF terminal drops, the oscillation frequency control unit 24 of the control circuit 100 lowers the oscillation frequency of the oscillator 26. As a result, the frequency of the oscillation signal drops as the on-duty decreases, making it possible to suppress the power sent to the secondary side circuit 220. As a result, during an overload, a current drooping characteristic such as that shown by waveform 401 can be achieved.
[0077] When the voltage at the VF terminal further drops below the Vhic1 voltage, the hiccup control unit 70 performs hiccup operation, operating the switching element Q1 for a certain period and then stopping the switching element Q1 for a certain period. The hiccup control unit 70 may measure this period by counting the oscillation of the voltage at the SS terminal, etc. Due to the hiccup operation, the load current flows intermittently, as shown by the dashed line in FIG. 4A. The control circuit 100 may terminate the hiccup operation when the voltage at the VF terminal exceeds the Vhic2 voltage. Here, Vhic in FIG. 4A corresponds to the Vhic1 voltage or the Vhic2 voltage. When the voltage at the VF terminal drops from a high potential, the hiccup operation is performed when Vhic falls below the Vhic1 voltage. When the voltage at the VF terminal rises from a low potential, the hiccup operation is terminated when Vhic reaches or exceeds the Vhic2 voltage.
[0078] The control circuit 100 described with reference to FIGS. 1 to 5 performs overcurrent control using the first protection unit 110. However, if the overcurrent control by the first protection unit 110 fails for some reason, the drain current Ids becomes excessive, which can lead to malfunctions and the like. In particular, if a current drooping function is provided during an overload, it is expected that the peak current of the drain current Ids will steadily reach a limit value. If the overcurrent control fails in such a case, the drain current Ids is likely to become excessive.
[0079] Fig. 6 is a diagram showing an example of the configuration of a control circuit 100 according to an embodiment. The control circuit 100 of this example further includes a second protection unit 120 in addition to the configuration of the control circuit 100 shown in Fig. 2. The other structures are the same as those of the control circuit 100 shown in Fig. 2 unless otherwise specified.
[0080] The second protection unit 120 stops the drain current Ids of the switching element Q1 for a longer period than the first protection unit 110 when the drain current Ids of the switching element Q1 exceeds a second threshold that is higher than the first threshold of the first protection unit 110. While the first protection unit 110 adjusts the on-period of the switching element Q1 in one cycle of the oscillation signal, the second protection unit 120 of this example fixes the switching element Q1 in the off state over multiple cycles of the oscillation signal when the drain current Ids exceeds the second threshold. Specifically, the second protection unit 120 fixes the switching element Q1 in the off state by inputting an H-level signal lat2 to the second set terminal S2 of the protection circuit 52.
[0081] When the second protection unit 120 outputs the H-level signal lat2, the inverted output QB of the protection circuit 52 is set to the L-level. The inverted output QB of the protection circuit 52 is maintained until the protection signal UVLO transitions to the L-level. As a result, when the drain current Ids exceeds the second threshold, the output of the control signal output unit 20 is fixed at the OFF level over multiple cycles of the oscillation signal.
[0082] The second protection unit 120 fixes the switching element Q1 to the OFF state when the level of the signal Son for controlling the switching element Q1 to the ON state or the OFF state is the ON level for controlling the switching element Q1 to the ON state and the drain current Ids exceeds the second threshold. In this example, the signal Son is a control pulse output by the AND circuit 34. In this example, the second protection unit 120 performs overcurrent control when the control pulse indicates an H level. This allows the second protection unit 120 to suppress overcurrent even when the overcurrent control by the first protection unit 110 is not functioning and the signal Son is at an H level. Note that the signal Son is not limited to the control pulse output by the AND circuit 34. For example, the control signal output by the control signal output unit 20 may be detected as the signal Son. Alternatively, the signal Son may be a signal input by the set / reset circuit 30 to the AND circuit 34.
[0083] The second protection unit 120 of this example includes an overcurrent detection unit 74, a timing comparator 72, a power supply 80, and a delay unit 76. The overcurrent detection unit 74 detects an overcurrent state in which the drain current Ids exceeds a second threshold. The overcurrent detection unit 74 of this example receives a voltage generated by the power supply 80 as the second threshold. The power supply 80 of this example generates -0.2 V. The absolute value of the second threshold is set slightly larger than the absolute value of the first threshold. For example, the absolute value of the second threshold may be 1.1 times or more and 1.2 times or less the absolute value of the first threshold. The overcurrent detection unit 74 outputs an H-level signal when the current detection signal CS input from the CS terminal falls below the second threshold (i.e., when the absolute value of the current detection signal CS exceeds the absolute value of the second threshold).
[0084] The timing comparator 72 monitors the timing at which the level of the signal Son changes and the timing at which the level of the output signal of the overcurrent detection unit 74 changes. If the output signal of the overcurrent detection unit 74 transitions to H level before the signal Son transitions from ON level to OFF level, the timing comparator 72 outputs an H-level lat signal. This causes the inverted output QB of the protection circuit 52 to go L level, thereby stopping the switching operation of the switching element Q1. Note that by monitoring the signal Son, the timing comparator 72 can prevent the second protection unit 120 from suppressing overcurrent when the first protection unit 110 is functioning normally. Because the second protection unit 120 suppresses overcurrent for a longer period of time than the first protection unit 110, monitoring the signal Son can prevent excessive current suppression by the second protection unit 120.
[0085] A current detection signal CS indicating the magnitude of the drain current Ids is input to the first protection unit 110 and the second protection unit 120. The delay unit 76 delays the current detection signal CS and inputs it to the overcurrent detection unit 74. For example, the delay unit 76 is a filter that removes high-frequency components from the current detection signal CS. The delay unit 76 may delay the current detection signal CS by other means.
[0086] By providing the delay unit 76, it is possible to prioritize current suppression by the first protection unit 110 over current suppression by the second protection unit 120. This makes it possible to avoid excessive current suppression by the second protection unit 120. The delay time of the delay unit 76 is preferably longer than the operation time of the first protection unit 110. The operation time of the first protection unit 110 refers to the time from when a current detection signal CS indicating that a drain current Ids exceeding a first threshold is input to the first protection unit 110 until the first protection unit 110 stops the drain current Ids. The operation time may be the time from when a current detection signal CS indicating an overcurrent is input to the first protection unit 110 until the signal Son transitions to an L level.
[0087] Fig. 7 is a diagram showing an example of operation of the switching power supply 200 using the control circuit 100 shown in Fig. 6. In this example, signal waveforms during an overload are shown. Note that the signal waveforms other than those shown in Fig. 7 may be the same as those shown in Fig. 3.
[0088] When the drain current Ids increases and exceeds the first threshold (time t0), the first protection unit 110 outputs a high-level current limiting signal LS1. This causes the control signal to go low, cutting off the drain current Ids. When the first protection unit 110 is thus functioning to suppress the current, the signal Son also transitions to low.
[0089] In this example, the drain current Ids continues to increase and exceed the first threshold even at time t1. In the switching power supply 200 with the current drooping characteristic described above, the drain current Ids exceeds the first threshold in almost every cycle during an overload. When the first protection unit 110 is suppressing the current, it outputs a current limit signal pulse 90, as indicated by the dashed lines in the respective signal waveforms. In response to the pulse 90, the control signal, the drain current, and the signal Son transition to an L level. However, if the first protection unit 110 is not suppressing the current for some reason, the control signal remains at an H level while the square-wave signal indicates an H logic level, and the drain current Ids continues to increase even after exceeding the first threshold. This may result in breakdown of the switching element Q1 and other components.
[0090] In this example, when the drain current Ids exceeds the second threshold, the second protection unit 120 outputs an H-level signal lat2. This causes the inverted output QB of the protection circuit 52 to transition to an L-level. As a result, the control signal is fixed to an L-level, and the drain current Ids is cut off. In this way, even when the current suppression by the first protection unit 110 does not function, the second protection unit 120 can suppress the overcurrent and protect the switching element Q1 and the like.
[0091] 6, the first protection unit 110 and the second protection unit 120 control the control signal to be at L level through different paths for the control signal output unit 20. The first protection unit 110 controls the control signal to be at L level by setting the control pulse input to the control signal output unit 20 to L level. The second protection unit 120 fixes the control signal to be at L level by setting the signal input to the enable terminal of the control signal output unit 20 to L level. This makes it easier to maintain the current suppression function even if a fault occurs in either path.
[0092] 8 is a diagram showing an example of the configuration of the timing comparator 72. The timing comparator 72 of this example has an inverter 97, an inverter 98, an OR circuit 94, and an OR circuit 96. The inverter 97 inverts and outputs the square wave signal Dmax. The inverter 98 inverts and outputs the signal Son.
[0093] The OR circuit 94 outputs a signal lat2 obtained by inverting the logical sum of the outputs of the inverter 97, the inverter 98, and the OR circuit 96. The OR circuit 96 is connected to the overcurrent detection unit 74 of the second protection unit 120 and the OR circuit 96. 4 The logical sum of the output of is inverted and output.
[0094] When the output of the overcurrent detection unit 74 goes high while the square wave signal Dmax and the signal Son are both high, the timing comparator 72 changes the signal lat2 to high, stopping the switching operation of the switching element Q1. If the first protection unit 110 is operating normally, the signal Son goes low before the output of the overcurrent detection unit 74 goes high. This causes the signal lat2 to remain low. This prevents excessive current suppression by the second protection unit 120.
[0095] Although the present invention has been described above using embodiments, the technical scope of the present invention is not limited to the scope described in the above embodiments. It will be apparent to those skilled in the art that various modifications and improvements can be made to the above embodiments. It is clear from the claims that such modifications and improvements can also be included within the technical scope of the present invention. [Explanation of symbols]
[0096] 10 hysteresis circuit, 11, 12 internal power supply, 13 protection circuit, 14 protection diode, 20 control signal output section, 22 PWM circuit, 24 oscillation frequency control section, 26 oscillator, 28 one-shot circuit, 30 set-reset circuit, 32 control pulse generation section, 34 logical AND circuit, 36 voltage comparison section, 38 reference voltage generation section, 40 current source, 42 Zener -Diode, 46...Transistor, 48...Logical OR circuit, 50...Comparator circuit, 52...Protection circuit, 54...Logical AND circuit, 56...Power supply, 60...Voltage comparator, 62...Hiccup comparator, 64...Inverter, 66...Logical AND circuit, 68...Resistor, 70...Hiccup control section, 72...Timing comparator, 74...Overcurrent detection section, 76...Delay section, 80...Power supply, 90...Pulse, 94, 9 6 OR circuit, 97, 98 inverter, 100 control circuit, 110 first protection unit, 120 second protection unit, 200 switching power supply, 205 power supply circuit, 210 primary side circuit, 220 secondary side circuit, 230 power supply circuit, 240 voltage detection unit, 250 overvoltage detection unit, 401 waveform, 402 waveform, C capacitor, D diode, R resistor, Q1 ···Switching element, T1···Transformer, n1···Primary winding, n2···Secondary winding, n3···Reset winding, n4···Auxiliary winding, Ids···Drain current, PC1A, PC2A···Light-emitting diode, PC1B, PC2B···Phototransistor, DS1···Diode bridge, Ld···Secondary coil, Vout···Output voltage, SR1···Shunt regulator, ZD1···Zener diode
Claims
1. A control circuit for controlling a switching element that controls switching of a main current flowing through a transformer of a switching power supply, a first protection unit that stops the main current flowing through the switching element when the main current flowing through the switching element exceeds a first threshold; a second protection unit that stops the main current of the switching element for a longer period than that of the first protection unit when the main current exceeds a second threshold value that is greater than the first threshold value; Equipped with The second protection portion is when a level of a signal for controlling the switching element to an on state or an off state is an on level for controlling the switching element to an on state and the main current exceeds the second threshold value, the switching element is fixed to an off state; When the level of the control signal is an off level that controls the switching element to an off state, the switching element is not fixed to an off state even if the main current exceeds the second threshold. Control circuit.
2. a control pulse generating unit that generates a control pulse for controlling the switching element to an on state for each cycle of an oscillation signal; the first protection unit shortens a pulse width of the control pulse in one cycle of the oscillation signal when the main current exceeds the first threshold; The second protection unit fixes the switching element to an off state over a plurality of cycles of the oscillation signal when the main current exceeds the second threshold. The control circuit of claim 1 .
3. a control signal output unit that outputs a control signal for controlling the switching element in response to the control pulse; The second protection unit fixes the output of the control signal output unit to an off level over a plurality of cycles of the oscillation signal when the main current exceeds the second threshold.
3. The control circuit of claim 2.
4. The second protection portion is an overcurrent detection unit that detects an overcurrent state in which the main current exceeds the second threshold; a timing comparator that fixes the switching element to an off state when the level of the control signal is at the on level and the overcurrent detection unit detects the overcurrent state, and that does not fix the switching element to an off state when the level of the control signal is at the off level even if the overcurrent state is detected; 4. A control circuit according to claim 1, comprising:
5. a current detection signal indicating the magnitude of the main current is input to the first protection unit and the second protection unit; The second protection unit further includes a delay unit that delays the current detection signal and inputs the delayed signal to the overcurrent detection unit.
5. The control circuit of claim 4.
6. The delay time in the delay unit is longer than the operation time from when the current detection signal indicating that the main current exceeding the first threshold value has flowed is input to the first protection unit until when the first protection unit stops the main current.
6. The control circuit of claim 5.
7. The second protection unit fixes the switching element in an off state from when the main current exceeds the second threshold until the switching power supply is restarted.
7. A control circuit according to any one of claims 1 to 6.
8. A switching element; A control circuit according to any one of claims 1 to 7; A switching power supply comprising:
Citation Information
Patent Citations
Overcurrent protection circuit of switching power supply
JP1993211715A
Switching power supply circuit and vehicle equipped therewith
JP2009183037A
Switching control circuit and power supply circuit
JP2021090234A
Systems and methods for providing over-current protection in a switching power supply
US20060221528A1