Switching Power Supply

The switching power supply device stabilizes output voltage control by using an on-timing generation circuit with error amplification and ripple signal processing to improve signal noise ratio, addressing instability in conventional systems with wide input voltage ranges.

JP7746797B2Active Publication Date: 2025-10-01DENSO CORP
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Patent Information

Application Number
JP2021172432
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-21
Publication Date
2025-10-01
Estimated Expiration
2041-10-21

AI Technical Summary

Technical Problem

Conventional switching power supplies using COT control with ceramic capacitors face issues in obtaining sufficient ripple voltage, leading to unstable output voltage control due to deteriorated S/N ratio of feedback signals, especially when input voltage drops, and this instability is exacerbated in applications with wide input voltage ranges.

Method used

A switching power supply device with an on-timing generation circuit that includes an error amplifier, common voltage generation, and ripple signal generation to produce differential signals for accurate on-timing, improving tolerance to common-mode and power supply noise, thereby stabilizing output voltage control across varying input voltages.

Benefits of technology

The device achieves stable output voltage control by enhancing the S/N ratio of feedback signals, allowing it to operate effectively with wide input voltage ranges, such as those found in vehicle on-board battery systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

To stabilize control of an output voltage even when an input voltage drops.SOLUTION: An on-timing generation circuit 10 comprises a differential output type error amplifier 14, a common voltage generation unit 15 for generating a common voltage; a ripple signal generation unit 16, and a comparator 17. The error amplifier 14 outputs an error amplified signal obtained by amplifying an error between a feedback voltage FB corresponding to an output voltage VOUT and a reference voltage VREF. The ripple signal generation unit 16 generates a normal-phase ripple signal obtained by normalizing a voltage corresponding to a ripple voltage contained in the output voltage VOUT, and a reverse-phase ripple signal obtained by reversing the voltage corresponding to the ripple voltage. The comparator 17 generates an on-timing signal Sa corresponding to an on-timing for turning on switching elements 2 and 3 by comparing a pair of differential signals VC_P and VC_M generated on the basis of the output signal of the error amplifier 14, the common voltage, the normal-phase ripple signal and the reverse-phase ripple signal.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a switching power supply device that converts an input voltage into a desired output voltage by pulse width modulation control of the drive of a switching element with a fixed on time. [Background technology]

[0002] Conventionally, there are switching power supplies that use the COT control method, which controls the drive of a switching element using pulse-width modulation with a fixed on-time. In this specification, pulse-width modulation is sometimes abbreviated as PWM. COT also stands for Constant On Time. In switching power supplies that use the COT control method, the on / off control of the switching element is performed using the ripple voltage that appears in the output voltage.

[0003] In a switching power supply device employing the COT control method, if a ceramic capacitor with a relatively small equivalent series resistance is used as a capacitor for smoothing the output voltage, a problem arises in that a sufficient ripple voltage cannot be obtained, resulting in unstable control of the output voltage. Note that, in this specification, equivalent series resistance is sometimes referred to as its abbreviation, ESR. One example of a technique for solving this problem is disclosed in Patent Document 1. Patent Document 1 discloses a switching power supply device employing a pseudo-ripple injection method in which a pseudo-ripple voltage is generated using an RC filter and then injected into the feedback voltage of the output voltage. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-230300 Summary of the Invention [Problem to be solved by the invention]

[0005] In each of the above-mentioned conventional technologies, when the input voltage drops and the duty cycle becomes high, the signal amplitude of the ripple voltage or pseudo ripple voltage decreases, which raises concerns about a deterioration in the S / N ratio of the feedback signal. If false detection occurs due to the influence of noise caused by a deterioration in the S / N ratio of the feedback signal, the on-timing for turning on the switching element may not be generated correctly, resulting in an unstable PWM waveform and, ultimately, unstable output voltage control.

[0006] Furthermore, while it may be possible to improve the S / N ratio by amplifying the signal amplitude of the ripple voltage or pseudo ripple voltage in the above-mentioned conventional technologies, doing so may result in the signal amplitude becoming too large when a sufficient ripple voltage or pseudo ripple voltage is obtained, which may exceed the input dynamic range of the downstream circuit, thereby restricting the upper limit of the input voltage range. These problems become even more pronounced in applications where the input voltage range is relatively wide, such as when the voltage of an on-board battery installed in a vehicle is used as the input voltage for a switching power supply.

[0007] The present invention has been made in view of the above circumstances, and an object of the present invention is to provide a switching power supply device that can stabilize control of the output voltage even when the input voltage drops. [Means for solving the problem]

[0008] The switching power supply device according to claim 1 is a switching power supply device that includes switching elements (2, 3) and converts an input voltage into a desired output voltage by pulse-width modulation control of the drive of the switching elements with a fixed on-time, and includes an on-timing generation circuit (10, 42), an on-time generation circuit (11, 62, 72), a drive signal generation circuit (12), and a drive circuit (13). The on-timing generation circuit generates an on-timing signal corresponding to an on-timing, which is the timing at which the switching element is turned on. The on-time generation circuit generates an on-time signal corresponding to an on-time, which is the time at which the switching element is turned on. The drive signal generation circuit generates a drive signal based on the on-timing signal and the on-time signal. The drive circuit drives the switching element based on the drive signal.

[0009] In the above configuration, the on-timing generation circuit includes an error amplifier (14), a common voltage generation unit (15), a ripple signal generation unit (16, 43), and a first comparator (17). The error amplifier is a differential output type that outputs an error amplified signal obtained by amplifying the error between a feedback voltage corresponding to the output voltage and a reference voltage. The common voltage generation unit generates a common voltage. The ripple signal generation unit generates a voltage corresponding to the ripple voltage contained in the output voltage. and The first comparator generates a positive-phase ripple signal and a negative-phase ripple signal by inverting a voltage corresponding to the ripple voltage. The first comparator generates an on-timing signal by comparing a pair of differential signals generated based on the output signal of the error amplifier, a common voltage, the positive-phase ripple signal, and the negative-phase ripple signal.

[0010] According to the above configuration, an on-timing signal is generated by comparing a pair of differential signals, which are differentiated signals generated based on a positive-phase ripple signal and a negative-phase ripple signal corresponding to the ripple voltage, with the first comparator. This configuration improves tolerance to common-mode noise and power supply noise, i.e., significantly improves the S / N ratio. Therefore, the above configuration provides the excellent effect of stabilizing output voltage control even when the input voltage drops. Therefore, the switching power supply device with the above configuration can be used in applications where the input voltage range is relatively wide, such as when the input voltage is the voltage of an on-board battery installed in a vehicle. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 1 is a diagram schematically illustrating a configuration of a switching power supply device according to a first embodiment. [Figure 2] FIG. 1 is a diagram showing a specific configuration example of an on-time generating circuit according to a first embodiment; [Figure 3] FIG. 1 is a diagram showing a specific configuration example of a ripple signal generating unit according to the first embodiment; [Figure 4] FIG. 1 is a diagram showing a specific configuration example of a differential output error amplifier according to a first embodiment; [Figure 5] 1 is a timing chart showing waveforms of signals and voltages at various parts during low on-duty according to the first embodiment; [Figure 6] 1 is a timing chart showing waveforms of signals and voltages at various parts during high on-duty according to the first embodiment; [Figure 7] FIG. 10 is a diagram schematically illustrating the configuration of a switching power supply device according to a second embodiment. [Figure 8] FIG. 10 is a diagram showing a specific example of the configuration of a ripple signal generating unit according to the second embodiment; [Figure 9] FIG. 10 is a diagram showing a specific example of a configuration for generating a current proportional to an input voltage according to a second embodiment; [Figure 10] FIG. 10 is a diagram schematically illustrating the configuration of a switching power supply device according to a third embodiment. [Figure 11] FIG. 10 is a diagram schematically illustrating the configuration of a switching power supply device according to a fourth embodiment. [Figure 12] Diagram 1 showing a schematic diagram of a modified power stage [Figure 13] Diagram 2 showing a schematic diagram of a modified power stage [Figure 14] Diagram 3 showing a schematic diagram of a modified power stage DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, a number of embodiments of the present invention will be described with reference to the drawings. Note that substantially the same components in the respective embodiments are designated by the same reference numerals, and the description thereof will be omitted. (First embodiment) The first embodiment will be described below with reference to FIGS.

[0013] <Overall structure> As shown in Fig. 1, the switching power supply device 1 of this embodiment is a COT control type switching power supply device that PWM controls the drive of switching elements 2 and 3 with a fixed on-time. All or part of the switching power supply device 1 is configured as a semiconductor integrated circuit such as an ASIC. ASIC is an abbreviation for Application Specific Integrated Circuit.

[0014] The switching elements 2 and 3 are, for example, MOS transistors. One main terminal of the switching element 2 is connected to a power supply line 4 to which an input voltage VIN is applied, and the other main terminal is connected to a node N1. One main terminal of the switching element 3 is connected to the node N1, and the other main terminal is connected to a ground to which a reference potential of the circuit is applied. An inductor 6 is connected between the node N1 and a power supply line 5 for outputting an output voltage VOUT. A capacitor 7 for smoothing the output voltage VOUT is connected between the power supply line 5 and the ground.

[0015] The power stage 8 of the switching power supply 1 is composed of switching elements 2 and 3, an inductor 6, and a capacitor 7. The switching power supply 1 is a synchronous rectification step-down switching power supply that converts an input voltage VIN to a desired output voltage VOUT by complementarily turning on and off the two switching elements 2 and 3 of the power stage 8. The switching power supply 1 is used, for example, as a power supply for an electronic control device mounted on a vehicle such as an automobile. In this case, the input voltage VIN is a voltage supplied directly from an on-board battery mounted on the vehicle.

[0016] The switching power supply device 1 includes a voltage divider circuit 9, an on-timing generation circuit 10, an on-time generation circuit 11, a drive signal generation circuit 12, and a drive circuit 13. The voltage divider circuit 9 is configured by connecting multiple resistors in series between the power supply line 5 and the ground. The voltage divider circuit 9 outputs a feedback voltage FB corresponding to the output voltage VOUT obtained by dividing the output voltage VOUT using the multiple resistors.

[0017] The on-timing generation circuit 10 generates and outputs an on-timing signal Sa corresponding to the on-timing at which the switching elements 2 and 3 are turned on. The on-timing generation circuit 10 includes a differential output error amplifier 14, a common voltage generation unit 15, a ripple signal generation unit 16, a comparator 17, and the like. The error amplifier 14 is configured as a fully differential error amplifier, and a feedback voltage FB is input to one input terminal thereof, and a reference voltage VREF is input to the other input terminal thereof. The reference voltage VREF is a voltage corresponding to the target value of the output voltage VOUT.

[0018] Error amplifier 14 outputs an error amplified signal obtained by amplifying the error between feedback voltage FB and reference voltage VREF from its non-inverting output terminal and inverting output terminal. The error amplified signal output from error amplifier 14 is a signal containing mostly DC components with high-frequency components removed. The non-inverting output terminal and inverting output terminal of error amplifier 14 are connected to signal lines 18 and 19, respectively. Common voltage generator 15 generates a common voltage VCOM similar to that used to control the common-mode level of the output of error amplifier 14.

[0019] A feedback voltage FB is input to the ripple signal generator 16. The ripple signal generator 16 generates a positive-phase ripple signal Vramp_P and a negative-phase ripple signal Vramp_M based on the feedback voltage FB. The positive-phase ripple signal Vramp_P is a signal obtained by converting the ripple component included in the output voltage VOUT, i.e., a voltage corresponding to the ripple voltage, into a positive phase, and is, for example, a signal with a ramp waveform as shown in FIGS. 5 and 6. The negative-phase ripple signal Vramp_M is a signal obtained by converting the voltage corresponding to the ripple voltage into a negative phase, and is, for example, a signal with a ramp waveform as shown in FIGS. 5 and 6.

[0020] In the above configuration, the output terminal of the common voltage generating unit 15 is connected to a signal line 18 via resistors 20 and 21, and is also connected to a signal line 19 via resistors 22 and 23. Also in the above configuration, the output terminal of the negative-phase ripple signal Vramp_M of the ripple signal generating unit 16 is connected to the signal line 18 via a capacitor 24 and a resistor 21. Also in the above configuration, the output terminal of the positive-phase ripple signal Vramp_P of the ripple signal generating unit 16 is connected to the signal line 19 via a capacitor 25 and a resistor 23.

[0021] With this configuration, the on-timing generation circuit 10 generates a pair of differential signals VC_P and VC_M by AC-coupling and injecting the positive-phase ripple signal Vramp_P and the negative-phase ripple signal Vramp_M into a signal obtained by biasing the error-amplified signal, which is the output signal of the error amplifier 14, with the common voltage VCOM. In other words, the on-timing generation circuit 10 generates the pair of differential signals VC_P and VC_M based on the output signal of the error amplifier 14, the common voltage VCOM, the positive-phase ripple signal Vramp_P, and the negative-phase ripple signal Vramp_M.

[0022] The differential signals VC_P and VC_M are, for example, signals as shown in Figures 5 and 6. That is, the differential signal VC_P is a ramp waveform signal that changes in the same manner as the negative-phase ripple signal Vramp_M. The differential signal VC_M is also a ramp waveform signal that changes in the same manner as the positive-phase ripple signal Vramp_P. In this case, the differential signals VC_P and VC_M have waveforms that are symmetrical above and below the common voltage VCOM. The differential signals VC_P and VC_M are provided to the downstream comparator 17 via signal lines 18 and 19, respectively.

[0023] The differential signal VC_P is input to the non-inverting input terminal of the comparator 17, and the differential signal VC_M is input to the inverting input terminal thereof. The on-timing generation circuit 10 outputs the output signal of the comparator 17 as the on-timing signal Sa. In other words, the comparator 17 generates the on-timing signal Sa by comparing the pair of differential signals VC_P and VC_M, and functions as a first comparator.

[0024] The on-time generation circuit 11 generates and outputs an on-time signal Sb corresponding to the on-time, which is the time for turning on the switching elements 2 and 3. The drive signal generation circuit 12 generates a drive signal based on the on-timing signal Sa output from the on-timing generation circuit 10 and the on-time signal Sb output from the on-time generation circuit 11. In this case, the drive signal generation circuit 12 is configured as an SR latch circuit.

[0025] An on-timing signal Sa is applied to the set terminal S of the drive signal generation circuit 12, and an on-time signal Sb is applied to its reset terminal R. In this case, the non-inverting output signal D, which is a binary signal output from the non-inverting output terminal Q of the drive signal generation circuit 12, becomes the drive signal. Therefore, in the following explanation, the drive signal will be represented by the same symbol D as the non-inverting output signal. An inverting output signal DB, which is a binary signal output from the inverting output terminal Q of the drive signal generation circuit 12, is applied to the on-time generation circuit 11. Note that in Figure 1 and other figures, the inverting output terminal of the SR latch circuit is indicated by adding a "-" above the symbol Q.

[0026] The drive circuit 13 drives the switching elements 2 and 3 based on the drive signal D provided by the drive signal generation circuit 12. The drive circuit 13 generates gate signals G1 and G2 by level-shifting the drive signal D, and outputs the gate signals G1 and G2 to the gates of the switching elements 2 and 3. The switching elements 2 and 3 are driven based on the gate signals G1 and G2, respectively. In this case, the drive circuit 13 generates and outputs a gate signal G1 that turns on the switching element 2 while the drive signal D is at a high level, and turns off the switching element 2 while the drive signal D is at a low level.

[0027] <Specific configuration of the on-time generation circuit> A specific configuration of the on-time generating circuit 11 may be, for example, the configuration shown in Fig. 2. As shown in Fig. 2, the on-time generating circuit 11 includes a current source 26, a switch 27, a capacitor 28, and a comparator 29. The current source 26 is connected between the power supply line 4 and a node N2, and outputs a constant current Ia to the node N2, the constant current Ia increasing or decreasing depending on the input voltage VIN, i.e., a constant current Ia proportional to the input voltage VIN.

[0028] The switch 27 is configured, for example, by a MOS transistor, and is connected between the node N2 and ground. A capacitor 28 is connected between the terminals of the switch 27, i.e., between the node N2 and ground. The switch 27 is turned on and off in response to the inverted output signal DB. Specifically, the switch 27 is turned on when the inverted output signal DB is at a high level, and is turned off when the inverted output signal DB is at a low level.

[0029] With this configuration, capacitor 28 is charged by current Ia while drive signal D is at a high level, i.e., while switching element 2 is on, and is discharged while drive signal D is at a low level, i.e., while switching element 2 is off. In this way, capacitor 28 functions as a capacitance that is charged by current Ia proportional to input voltage VIN. In this case, switch 27 controls the charging and discharging of capacitor 28 based on inverted output signal DB and, ultimately, on drive signal D.

[0030] The output voltage VOUT is input to the inverting input terminal of the comparator 29, and the voltage Vramp2, which is the terminal voltage of the capacitor 28, is input to the non-inverting input terminal. The voltage Vramp2 is a ramp waveform signal, for example, as shown in FIGS. 5 and 6. With this configuration, the output signal of the comparator 29 is a binary signal whose level is inverted when the voltage Vramp2 reaches the output voltage VOUT. The on-time generating circuit 11 outputs the output signal of the comparator 29 as the on-time signal Sb. In other words, the comparator 29 generates the on-time signal Sb by comparing the voltage Vramp2, which is the terminal voltage of the capacitor 28, with the output voltage VOUT, and functions as a second comparator.

[0031] <Specific configuration of the ripple signal generator> A specific configuration of the ripple signal generating unit 16 of the on-timing generating circuit 10 may be, for example, a configuration as shown in Fig. 3. As shown in Fig. 3, the ripple signal generating unit 16 includes a fully differential error amplifier 31, a voltage source 32, and resistors 33 to 35. A feedback voltage FB is input to the inverting input terminal of the error amplifier 31 via a resistor 33. A predetermined reference voltage Vr generated by a voltage source 32 is input to the non-inverting input terminal of the error amplifier 31.

[0032] A resistor 34 is connected between the non-inverting input terminal and the inverting output terminal of the error amplifier 31. A resistor 35 is connected between the inverting input terminal and the non-inverting output terminal of the error amplifier 31. With this configuration, the non-inverting output signal of the error amplifier 31 becomes the positive-phase ripple signal Vramp_P, and the inverting output signal of the error amplifier 31 becomes the negative-phase ripple signal Vramp_M.

[0033] <Specific configuration of differential output error amplifier> A specific configuration of the error amplifier 14 of the on-timing generation circuit 10 can be, for example, a configuration as shown in Fig. 4. As shown in Fig. 4, the error amplifier 14 is configured as a differential output type error amplifier using common mode feedback, including an error amplification unit 36 ​​and a common voltage generation unit 37.

[0034] The error amplifier 36 includes P-channel MOS transistors Q1 to Q10, N-channel MOS transistors Q11 to Q17, and diodes D1 to D4. The source of transistor Q1 is connected to a power supply line 38 to which a power supply voltage VDD, such as +5 V, is applied, and the drain of transistor Q1 is connected to the sources of transistors Q3 and Q4 via transistor Q2. A reference voltage VREF is applied to the gate of transistor Q3, and a feedback voltage FB is applied to the gate of transistor Q4.

[0035] The drain of transistor Q3 is connected to ground via transistor Q11. The drain of transistor Q4 is connected to ground via transistor Q12. The gates of transistors Q11 and Q12 are connected together. The source of transistor Q5 is connected to power supply line 38, and its drain is connected to ground via transistors Q6 and Q13. The gate of transistor Q5 is connected to the gate of transistor Q1, and the gate of transistor Q6 is connected to the gate of transistor Q2. The gate of transistor Q13 is connected to the gates of transistors Q11 and Q12.

[0036] The source of transistor Q7 is connected to power supply line 38, and its drain is connected to ground via transistors Q8, Q14, and Q15. The source of transistor Q9 is connected to power supply line 38, and its drain is connected to ground via transistors Q10, Q16, and Q17. The gates of transistors Q7 and Q9 are connected to the gate of transistor Q1, and the gates of transistors Q8 and Q10 are connected to the gate of transistor Q2.

[0037] The source of transistor Q14 is connected to the drain of transistor Q3, and the source of transistor Q16 is connected to the drain of transistor Q4. The gates of transistors Q15 and Q17 are connected together. Node N3, which is the interconnection node between transistor Q8 and transistor Q14, corresponds to the non-inverting output terminal of error amplifier 14 and is connected to signal line 18. Node N4, which is the interconnection node between transistor Q10 and transistor Q16, corresponds to the inverting output terminal of error amplifier 14 and is connected to signal line 19.

[0038] The anode of diode D1 is connected to node N3, and its cathode is connected to node N4 via diode D2 in the forward direction. The anode of diode D3 is connected to node N4, and its cathode is connected to node N3 via diode D4 in the forward direction. The cathodes of diodes D1 and D3 are connected to the anodes of diodes D2 and D4, respectively. Node N5, which is the interconnection node of diodes D1 to D4, is connected to ground via resistor R1 and capacitor C1.

[0039] The common voltage generating unit 37 includes resistors R2 and R3, P-channel MOS transistors Q21 to Q24, and N-channel MOS transistors Q25 and Q26. Resistors R2 and R3 are connected in series between a power supply line 38 and ground. The source of transistor Q21 is connected to power supply line 38, and its drain is connected to the sources of transistors Q23 and Q24 via transistor Q22. The drain of transistor Q23 is connected to ground via transistor Q25, and the drain of transistor Q24 is connected to ground via transistor Q26.

[0040] The gate of transistor Q21 is connected to the gate of transistor Q1 and the like in error amplifier 36, and the gate of transistor Q22 is connected to the gate of transistor Q2 and the like in error amplifier 36. The gate of transistor Q23, which serves as the output terminal for common voltage VCOM, is connected to node N5 in error amplifier 36. The gate of transistor Q24 is connected to node N6, which is the interconnection node of resistors R2 and R3. The gates of transistors Q25 and Q26 are connected together and to the gates of transistors Q15 and Q17 in error amplifier 36.

[0041] In this way, the common voltage generation unit 37 is configured to divide the power supply voltage VDD using resistors R2 and R3 and output the divided voltage as the common voltage VCOM via a buffer configured by transistors Q21 to Q26. The common voltage VCOM output from the common voltage generation unit 37 is fed back to the error amplification unit 36, thereby controlling the common mode level of the output of the error amplifier 14 to a desired level. Note that a specific configuration of the common voltage generation unit 15 of the on-timing generation circuit 10 can be the same as that of the common voltage generation unit 37.

[0042] According to the present embodiment described above, the following effects can be obtained. According to the above configuration, the on-timing generation circuit 10 generates the on-timing signal Sa by comparing, in the comparator 17, a pair of differential signals VC_P and VC_M, which are differentiated signals generated based on the positive-phase ripple signal Vramp_P and the negative-phase ripple signal Vramp_M corresponding to the ripple voltage, which is a ripple component contained in the output voltage VOUT.

[0043] In this way, the on-timing signal Sa is prevented from becoming a signal indicating an incorrect on-timing due to the influence of common mode noise and power supply noise, not only when the amplitude of each ripple signal Vramp_P, Vramp_M is relatively large, as shown in Figure 5, when the input voltage VIN is relatively high and the period when the drive signal D for PWM control is at a high level is shorter than the period when it is at a low level, i.e., when the on-duty is low, but also when the amplitude of each ripple signal Vramp_P, Vramp_M is relatively small, as shown in Figure 6, when the input voltage VIN is relatively low and the period when the drive signal D is at a high level is longer than the period when it is at a low level, i.e., when the on-duty is high, as shown in Figure 6, when the amplitude of each ripple signal Vramp_P, Vramp_M is relatively small.

[0044] Therefore, with the above configuration, it is possible to improve the tolerance to common-mode noise and power supply noise, i.e., to significantly improve the S / N ratio of signals related to the feedback of the output voltage VOUT. Therefore, with this embodiment, it is possible to obtain the excellent effect of stabilizing the control of the output voltage VOUT even when the input voltage VIN drops. As a result, the switching power supply device 1 of this embodiment can be applied to applications where the range of the input voltage VIN is relatively wide, such as applications where the voltage of an on-board battery installed in a vehicle is used as the input voltage.

[0045] The on-timing generation circuit 10 generates a pair of differential signals VC_P and VC_M by AC-coupling a positive-phase ripple signal Vramp_P and a negative-phase ripple signal Vramp_M to a signal obtained by biasing the output signal of the error amplifier 14 with a common voltage VCOM, and injecting the resulting signal. In this way, the differential signals VC_P and VC_M become signals that more accurately reflect the ripple components contained in the output voltage VOUT, thereby improving the accuracy of generating the on-timing signal Sa and, ultimately, the accuracy of controlling the output voltage VOUT.

[0046] The on-time generating circuit 11 includes a capacitor 28 that is charged by a current proportional to the input voltage VIN, and a comparator 29 that generates an on-time signal Sb by comparing a terminal voltage Vramp2 of the capacitor 28 with the output voltage VOUT. With this configuration, the on-times of the switching elements 2 and 3 change depending on the input voltage VIN, and as a result, the switching frequencies of the switching elements 2 and 3 are prevented from changing depending on the input voltage VIN.

[0047] (Second embodiment) The second embodiment will be described below with reference to FIGS. <Overall structure> 7, a switching power supply device 41 of this embodiment differs from the switching power supply device 1 of the first embodiment shown in FIG. 1 in that an on-timing generation circuit 42 is provided instead of the on-timing generation circuit 10. The on-timing generation circuit 42 differs from the on-timing generation circuit 10 in that a ripple signal generation circuit 43 is provided instead of the ripple signal generation circuit 16.

[0048] An input voltage VIN is input to the ripple signal generator 43. Based on the input voltage VIN, the ripple signal generator 43 generates a pseudo positive-phase ripple signal by making a voltage corresponding to the ripple voltage positive-phase, and a pseudo negative-phase ripple signal by making a voltage corresponding to the ripple voltage negative-phase. The pseudo positive-phase ripple signal and the pseudo negative-phase ripple signal generated by the ripple signal generator 43 are substantially the same as the positive-phase ripple signal and the negative-phase ripple signal generated by the ripple signal generator 16, and therefore the same symbols are used for them.

[0049] <Specific configuration of the ripple signal generator> A specific configuration of the ripple signal generating unit 43 of the on-timing generating circuit 42 can be, for example, a configuration as shown in Fig. 8. In Fig. 8 and other figures, the error amplifier 14 is represented by an amplifier symbol, and the common voltage generating unit 15 is represented by a voltage source symbol. As shown in Fig. 8, the ripple signal generating unit 43 includes current sources 44 and 45, switches 46 and 47, capacitors 48 and 49, resistors 50 and 51, and buffers 52 and 53.

[0050] The current sources 44 and 45 are constant current sources that supply a constant current. The switches 46 and 47 are configured to be able to switch the connection state between the common terminal c and two switching terminals a and b in response to the drive signal D. Specifically, the switches 46 and 47 are switched to a first state in which the common terminal c is connected to one switching terminal a while the drive signal D is at a high level, and are switched to a second state in which the common terminal c is connected to the other switching terminal b while the drive signal D is at a low level.

[0051] The current source 44 is connected between the power supply line 4 and a common terminal c of a switch 46. One switching terminal a of the switch 46 is connected to a node N11, and the other switching terminal b is connected to ground. The capacitor 48 is connected between the node N11 and ground. A resistor 50 is connected between the terminals of the capacitor 48, i.e., between the node N11 and ground.

[0052] The current source 45 is connected between the common terminal c of the switch 46 and ground. One switching terminal a of the switch 46 is connected to the node N12, and the other switching terminal b is connected to the power supply line 4. The capacitor 49 is connected between the node N12 and the power supply line 4. A resistor 51 is connected between the terminals of the capacitor 49, i.e., between the node N12 and the power supply line 4.

[0053] According to the above configuration, capacitor 48 is charged with a current that increases or decreases depending on input voltage VIN, i.e., a current proportional to input voltage VIN, during the period when drive signal D is at a high level, i.e., the period when switching element 2 is on, and is discharged via resistor 50 during the period when drive signal D is at a low level, i.e., the period when switching element 2 is off. In this way, capacitor 48 functions as a positive phase side capacitance that is charged with a current proportional to input voltage VIN during the period corresponding to the on time when switching element 2 is on, and is discharged during the period corresponding to the off time when switching element 2 is off.

[0054] Furthermore, with the above configuration, capacitor 49 is discharged by a current that increases or decreases depending on input voltage VIN, i.e., a current proportional to input voltage VIN, during the period when drive signal D is at a high level, i.e., the period when switching element 2 is on, and is charged via resistor 51 during the period when drive signal D is at a low level, i.e., the period when switching element 2 is off. In this way, capacitor 49 functions as a negative-phase capacitance that is discharged by a current proportional to input voltage VIN during the period corresponding to the on-time when switching element 2 is on, and is charged during the period corresponding to the off-time when switching element 2 is off.

[0055] In this case, the terminal voltage of capacitor 48, i.e., the voltage at node N11, becomes the positive-phase ripple signal Vramp_P. In addition, in this case, the terminal voltage of capacitor 49, i.e., the voltage at node N12, becomes the negative-phase ripple signal Vramp_M. In this way, the ripple signal generating unit 43 generates the positive-phase ripple signal Vramp_P from the terminal voltage of capacitor 48, and also generates the negative-phase ripple signal Vramp_M from the terminal voltage of capacitor 49.

[0056] In the above configuration, the output terminal of the negative-phase ripple signal Vramp_M of the ripple signal generating unit 43 is connected to the signal line 18 via the buffer 52, the capacitor 24, and the resistor 21. Also, in the above configuration, the output terminal of the positive-phase ripple signal Vramp_P of the ripple signal generating unit 43 is connected to the signal line 19 via the buffer 53, the capacitor 25, and the resistor 23. The buffers 52 and 53 are configured to output a signal obtained by amplifying the input signal by a predetermined gain, such as 1x.

[0057] <Specific configuration for generating a current proportional to the input voltage> As a specific configuration for generating current sources 44 and 45, i.e., a current proportional to input voltage VIN, for example, a configuration such as that shown in Fig. 9 can be adopted. Note that, here, the current of current source 44 will be referred to as a positive-phase pseudo ripple current, and the current of current source 45 will be referred to as a negative-phase pseudo ripple current. As shown in Fig. 9, dependent current generating unit 55 includes P-channel MOS transistors Q31-Q34, N-channel MOS transistors Q35-Q41, and resistors R31 and R32.

[0058] The sources of transistors Q31 to Q34 are connected to a power supply line 57 to which a power supply voltage VDD, such as +5V, is applied. Transistors Q32 and Q34 have their gates connected to their drains, i.e., diode-connected. The gates of transistors Q31 and Q32 are connected together, and transistors Q31 and Q32 form a current mirror circuit. The gates of transistors Q33 and Q34 are connected together, and transistors Q33 and Q34 form a current mirror circuit.

[0059] The drain of transistor Q31 is connected to node N31. Transistor Q35 is an activation transistor, and its gate and source are connected. The gate of transistor Q35 is connected to node N31. The drain of transistor Q32 is connected to ground via transistor Q36 and resistor R31. The drain of transistor Q33 is connected to ground via transistors Q37 and Q38. The gates of transistors Q36 and Q37 are connected together and to the drain of transistor Q35. The gate of transistor Q38 is connected to ground via resistor R31.

[0060] The drain of transistor Q34 is connected to ground via transistors Q39 and Q40. The gate of transistor Q39 is connected to the drain of transistor Q35. The drain of transistor Q41 is connected to power line 4 via resistor R32, and its source is connected to ground. The gate and drain of transistor Q41 are connected together, i.e., it is diode-connected. The gates of transistors Q40 and Q41 are connected together.

[0061] In the above configuration, the current flowing from transistor Q36 to resistor R31 and the current flowing from transistor Q31 to node N31 are currents Ib expressed by the following equation (1), where Vgs is the gate-source voltage of transistors such as Q41, and Ra is the resistance value of resistor R31. Ib=Vgs / Ra …(1)

[0062] Furthermore, with the above configuration, the current flowing from the power supply line 4 to the resistor R32 is a current Ic expressed by the following equation (2), where the resistance value of the resistor R32 is Rb. Ic=(VIN-Vgs) / Rb …(2)

[0063] On the other hand, ripple current generating section 56 includes P-channel MOS transistors Q42 to Q46, N-channel MOS transistors Q47 to Q52, and voltage source 58. The sources of transistors Q42 to Q44 are connected to power supply line 57. Transistor Q43 has its gate and drain connected together, i.e., diode-connected. The gates of transistors Q42 and Q43 are connected together, and transistors Q42 and Q43 form a current mirror circuit.

[0064] The drain of transistor Q42 is connected to ground via transistors Q47 and Q48. The drain of transistor Q43 is connected to ground via transistor Q49. The drain of transistor Q44 is connected to the sources of transistors Q45 and Q46. The gate of transistor Q45 is supplied with the inverted output signal DB, and the gate of transistor Q46 is supplied with the non-inverted output signal D. The drain of transistor Q46 is connected to the drain of transistor Q51.

[0065] A constant voltage BIAS generated by voltage source 58 is applied to node N32, which is the interconnection node between transistors Q46 and Q51. Voltage BIAS is an intermediate voltage between the power supply voltage VDD and ground. The sources of transistors Q50 and Q51 are connected together and also to the drain of transistor Q52. A non-inverted output signal D is applied to the gate of transistor Q50, and an inverted output signal DB is applied to the gate of transistor Q51. The gate and drain of transistor Q52 are connected together; in other words, it is diode-connected. The gate of transistor Q52 is connected to the gate of transistor Q49.

[0066] In the above configuration, the current flowing from transistor Q42 to transistor Q47 is the sum of current Ib and current Ic, which is the current Id expressed by the following equation (3), where resistors R31 and R32 have the same resistance value R. Id=VIN / R …(3)

[0067] Thus, with the above configuration, it is possible to generate a current Id that is purely dependent on the input voltage V, eliminating the influence of the voltage Vt generated in the current mirror circuit, i.e., the voltage Vgs. In this case, the drain current of transistor Q45 is a positive-phase pseudo ripple current, and the drain current of transistor Q50 is a negative-phase pseudo ripple current. Both the positive-phase pseudo ripple current and the negative-phase pseudo ripple current are dependent on the input voltage V.

[0068] By charging and discharging capacitors 48, 49 using these positive-phase pseudo ripple currents, positive-phase ripple signal Vramp_P and negative-phase ripple signal Vramp_M can be obtained. In this case, positive-phase ripple signal Vramp_P and negative-phase ripple signal Vramp_M are biased to a constant voltage BIAS when non-inverted output signal D is at a high level and inverted output signal DB is at a low level (OFF). The reason for this is as follows.

[0069] In other words, if the ramp waves of the positive-phase ripple signal Vramp_P and the negative-phase ripple signal Vramp_M are not biased to the intermediate voltage BIAS when the power is off, the potentials of the ripple signals Vramp_P and Vramp_M will not return to a constant voltage, and the potential at which the ramp wave begins to rise the next time the power is on will change. This could destroy the symmetry of the differential waveforms of the positive-phase ripple signal Vramp_P and the negative-phase ripple signal Vramp_M, potentially reducing the accuracy of generating the on-timing signal Sa. As described above, biasing the ripple signals Vramp_P and Vramp_M to the voltage BIAS when the power is off can prevent this problem from occurring.

[0070] The present embodiment described above also achieves the same effects as the first embodiment. Furthermore, in the switching power supply device 41 of this embodiment, the ripple signal generating unit 43 is configured to generate a pseudo positive-phase ripple signal Vramp_P and a pseudo negative-phase ripple signal Vramp_M similar to those in the first embodiment, based on the input voltage VIN. In other words, the switching power supply device 41 employs a pseudo ripple injection method. This also makes it possible to employ a ceramic capacitor with a relatively small ESR as the capacitor 7 that smoothes the output voltage VOUT.

[0071] The ripple signal generating unit 43 includes a capacitor 48 that is charged with a current proportional to the input voltage VIN during a period corresponding to the on time and discharged during a period corresponding to the off time, and a capacitor 49 that is discharged with a current proportional to the input voltage VIN during a period corresponding to the on time and charged during a period corresponding to the off time. The ripple signal generating unit 43 generates a positive-phase ripple signal Vramp_P from the terminal voltage of the capacitor 48 and generates a negative-phase ripple signal Vramp_M from the terminal voltage of the capacitor 49.

[0072] In this way, it is possible to accurately generate pseudo positive-phase ripple signals Vramp_P and pseudo negative-phase ripple signals Vramp_M equivalent to the positive-phase ripple signals Vramp_P and negative-phase ripple signals Vramp_M generated based on the feedback voltage FB of the output voltage VOUT. Therefore, with the above configuration, the differential signals VC_P and VC_M become signals that more accurately reflect the ripple components contained in the output voltage VOUT, thereby improving the accuracy of generation of the on-timing signal Sa and, ultimately, the accuracy of control of the output voltage VOUT.

[0073] (Third embodiment) The third embodiment will be described below with reference to FIG. As shown in Fig. 10, a switching power supply device 61 of this embodiment differs from the switching power supply device 41 of the second embodiment shown in Fig. 8 in that it includes an on-time generation circuit 62 instead of the on-time generation circuit 11. The on-time generation circuit 62 differs from the on-time generation circuit 11 in that a current source 63, a switch 64, capacitors 65 and 66, and resistors 67 and 68 are added.

[0074] The current source 63 is a constant current source that supplies a constant current. The switch 64 is configured to be able to switch the connection state between the common terminal c and two switching terminals a, b in response to a drive signal D. Specifically, the switch 64 is switched to a first state in which the common terminal c is connected to one switching terminal a while the drive signal D is at a high level, and is switched to a second state in which the common terminal c is connected to the other switching terminal b while the drive signal D is at a low level.

[0075] The current source 63 is connected between the power line 4 and the common terminal c of the switch 64. One switching terminal a of the switch 64 is connected to the node N61, and the other switching terminal b is connected to ground. The capacitor 65 is connected between the node N61 and ground. A resistor 67 is connected between the terminals of the capacitor 65, i.e., between the node N61 and ground. A resistor 68 and a capacitor 66 are connected in series between the node N61 and ground. The resistor 68 and the capacitor 66 form an RC filter circuit. A node N62, which is the interconnection node of the resistor 678 and the capacitor 66, is connected to the inverting input terminal of the comparator 29.

[0076] According to the above configuration, capacitor 65 is charged with a current that increases or decreases depending on input voltage VIN, that is, a current proportional to input voltage VIN, during the period when drive signal D is at a high level, that is, during the period when switching element 2 is on, and is discharged via resistor 67 during the period when drive signal D is at a low level, that is, during the period when switching element 2 is off. In this way, capacitor 65 functions as a second capacitance that is charged with a current proportional to input voltage VIN during the period corresponding to the on time when switching element 2 is on, and is discharged during the period corresponding to the off time when switching element 2 is off.

[0077] In the above configuration, voltage VC2 at node N62 is a voltage obtained by smoothing the terminal voltage of capacitor 65 using an RC filter formed by resistor 68 and capacitor 66, and corresponds to an output-proportional voltage proportional to output voltage VOUT. Thus, in the above configuration, current source 63, switch 64, capacitors 65 and 66, and resistors 67 and 68 form voltage generation circuit 69, which generates voltage VC2, an output-proportional voltage proportional to output voltage VOUT. Voltage generation circuit 69 generates voltage VC2 using input voltage VIN and drive signal D, which is a duty signal, without using output voltage VOUT. In this case, comparator 29 generates on-time signal Sb by comparing voltage Vramp2 and voltage VC2.

[0078] The present embodiment described above also achieves the same effects as the second embodiment. Furthermore, in the switching power supply device 61 of this embodiment, the on-time generation circuit 62 includes a voltage generation circuit 69 that generates a voltage VC2, which is an output-proportional voltage, using the input voltage VIN and the drive signal D without using the output voltage VOUT. In the on-time generation circuit 62, the voltage VC2 is virtually regarded as the output voltage VOUT, and the comparator 29 compares the voltage Vramp2 with the voltage VC2 to generate the on-time signal Sb. This configuration can cancel the load current dependency of the switching frequency that occurs due to voltage drops caused by resistance components in the switching elements 2 and 3, the inductor 6, and the like.

[0079] (Fourth embodiment) The fourth embodiment will be described below with reference to FIG. As shown in Fig. 11, a switching power supply device 71 of this embodiment differs from the switching power supply device 61 of the third embodiment shown in Fig. 10 in that an on-time generation circuit 72 is provided instead of the on-time generation circuit 62. The on-time generation circuit 72 differs from the on-time generation circuit 62 in that the current source 63, the switch 64, the capacitor 65, and the resistor 67 are omitted.

[0080] In this case, the series circuit of resistor 68 and capacitor 66 is connected between node N11 of ripple signal generating unit 43 and ground. Current source 44, switch 46, capacitor 48, and resistor 50 included in ripple signal generating unit 43 configure a circuit similar to that of current source 63, switch 64, capacitor 65, and resistor 67 in on-time generating circuit 62. Therefore, in the above configuration, current source 44, switch 46, capacitor 48, and resistor 50 included in ripple signal generating unit 43 function in the same way as current source 63, switch 64, capacitor 65, and resistor 67 in on-time generating circuit 62.

[0081] In this way, by sharing some of the components of ripple signal generating unit 43, on-time generating circuit 72 is able to perform the same operation as on-time generating circuit 62. That is, on-time generating circuit 72 is configured by sharing current source 44 as current source 63, switch 46 as switch 64, capacitor 48 as capacitor 65 corresponding to the second capacitance, and resistor 50 as resistor 67. In this case, current source 44, switch 46, capacitor 48, resistor 50, capacitor 66, and resistor 68 configure a voltage generating circuit 73 that generates voltage VC2.

[0082] The present embodiment described above also provides the same effects as those of the third embodiment. Furthermore, in the switching power supply device 71 of this embodiment, the on-time generating circuit 72 shares some of the configuration of the ripple signal generating unit 43. In this way, the circuit size can be reduced by the amount of the shared configuration, and as a result, the switching power supply device 71 can be made more compact.

[0083] (Other embodiments) The present invention is not limited to the embodiments described above and illustrated in the drawings, but can be modified, combined, or expanded as desired without departing from the spirit of the invention. The numerical values ​​and the like shown in the above embodiments are examples and are not limited to these.

[0084] The present invention is not limited to the switching power supply devices 1, 41, 61, and 71, which are synchronous rectification step-down switching power supply devices, but can be applied to all switching power supply devices that have a switching element and convert an input voltage into a desired output voltage by pulse width modulation control of the drive of the switching element with a fixed on time. For example, as the power stage of a switching power supply device, power stages such as those shown in Figures 12 to 14 can be used in place of power stage 8.

[0085] 12 differs from the power stage 8 in that it includes a diode 82 instead of the switching element 3. The diode 82 has its cathode connected to the node N1 and its anode connected to ground. Such a power stage 81 is used in a diode rectification type step-down switching power supply device.

[0086] 13 differs from power stage 8 in that the connection positions of switching element 2 and inductor 6 are reversed. In this case, inductor 6 is connected between power line 4 and node N1, and switching element 2 is connected between node N1 and power line 5. Such a power stage 83 is used in a synchronous rectification type boost switching power supply device.

[0087] 14 differs from power stage 83 in that it includes a diode 85 instead of switching element 2. Diode 85 has its cathode connected to node N1 and its anode connected to power line 5. Such a power stage 84 is used in a diode rectification type step-up switching power supply device.

[0088] Although the present disclosure has been described with reference to the embodiments, it is understood that the present disclosure is not limited to the embodiments or structures. The present disclosure also encompasses various modifications and equivalent modifications. In addition, various combinations and forms, including only one element, more than one element, or less than one element, are also within the scope and spirit of the present disclosure. [Explanation of symbols]

[0089] 1, 41, 61, 71...switching power supply device, 2, 3...switching element, 10, 42...on timing generation circuit, 11, 62, 72...on time generation circuit, 12...drive signal generation circuit, 13...drive circuit, 14...error amplifier, 15...common voltage generation circuit, 16, 43...ripple signal generation unit, 17...comparator, 28...capacitor, 29...comparator, 48...capacitor, 49...capacitor, 65...capacitor, 69, 73...voltage generation circuit.

Claims

1. A switching power supply device comprising switching elements (2, 3) for converting an input voltage into a desired output voltage by pulse width modulation control of the driving of the switching elements with a fixed on time, an on-timing generating circuit (10, 42) that generates an on-timing signal corresponding to an on-timing that is a timing at which the switching element is turned on; an on-time generating circuit (11, 62, 72) for generating an on-time signal corresponding to an on-time that is a time for turning on the switching element; a drive signal generating circuit (12) that generates a drive signal based on the on-timing signal and the on-time signal; a drive circuit (13) that drives the switching element based on the drive signal; Equipped with The on-timing generation circuit a differential output type error amplifier (14) that outputs an error amplified signal obtained by amplifying the error between a feedback voltage corresponding to the output voltage and a reference voltage; a common voltage generating unit (15) that generates a common voltage; a ripple signal generating unit (16, 43) for generating a positive-phase ripple signal having the same phase as a voltage corresponding to a ripple voltage included in the output voltage and a negative-phase ripple signal obtained by negatively polarizing the voltage corresponding to the ripple voltage; a first comparator (17) that generates the on-timing signal by comparing a pair of differential signals generated based on the output signal of the error amplifier, the common voltage, the positive-phase ripple signal, and the negative-phase ripple signal; A switching power supply device comprising:

2. 2. The switching power supply device according to claim 1, wherein the ripple signal generating section (43) generates the positive-phase ripple signal and the negative-phase ripple signal based on the input voltage.

3. The ripple signal generating unit a positive phase side capacitance (48) that is charged by a current proportional to the input voltage during a period corresponding to the on-time and that is discharged during a period corresponding to an off-time that is a time when the switching element is turned off; a negative-phase capacitance (49) that is discharged by a current proportional to the input voltage during a period corresponding to the on-time and is charged during a period corresponding to the off-time; Equipped with 3. The switching power supply according to claim 2, wherein the positive-phase ripple signal is generated by a terminal voltage of the positive-phase side capacitance, and the negative-phase ripple signal is generated by a terminal voltage of the negative-phase side capacitance.

4. The on-timing generation circuit 4. The switching power supply device according to claim 1, wherein the differential signal is generated by AC-coupling the positive-phase ripple signal and the negative-phase ripple signal to a signal obtained by biasing the output signal of the error amplifier with the common voltage, and injecting the resultant signal.

5. The on-time generating circuit (11) a capacitance (28) charged by a current proportional to the input voltage; a second comparator (29) for generating the on-time signal by comparing the terminal voltage of the capacitor and the output voltage; The switching power supply device according to claim 1 , comprising:

6. The on-time generating circuit (72) a first capacitance (28) that is charged by a current proportional to the input voltage; a voltage generating circuit (73) that generates an output proportional voltage proportional to the output voltage based on a terminal voltage of a second capacitor (48) that is charged by a current proportional to the input voltage during a period corresponding to the on-time and discharged during a period corresponding to an off-time during which the switching element is turned off; a second comparator (29) for generating the on-time signal by comparing the terminal voltage of the first capacitance and the output proportional voltage; Equipped with 4. The switching power supply device according to claim 3, wherein the on-voltage generating circuit is configured by sharing the positive phase side capacitance of the ripple signal generating section as at least the second capacitance.

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