Power conversion device and power conversion system

The power conversion device addresses avalanche breakdown through a controlled circuit configuration, ensuring reliable and efficient power conversion by preventing breakdown and enabling smaller component usage.

JP2025109166APending Publication Date: 2025-07-24TDK CORP
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Patent Information

Application Number
JP2024102950
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-01-11
Filing Date
2024-06-26
Publication Date
2025-07-24

AI Technical Summary

Technical Problem

Existing power conversion devices face challenges in effectively avoiding avalanche breakdown, which can lead to component deterioration and failure.

Method used

The power conversion device incorporates a switching circuit, transformer, rectifier circuit, smoothing circuit, power regeneration circuit, and control circuit, with specific configurations and controls to manage voltage levels and current flow, including diodes and capacitors, to prevent avalanche breakdown during power conversion and pre-charge operations.

Benefits of technology

The solution effectively avoids avalanche breakdown, allowing for the use of smaller components and efficient power regeneration, thereby enhancing the reliability and efficiency of the power conversion process.

✦ Generated by Eureka AI based on patent content.

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Abstract

To obtain a power conversion device capable of avoiding avalanche breakdown.SOLUTION: A power conversion device according to one embodiment of the present disclosure comprises a first power terminal, a switching circuit, a transformer, a rectifier circuit, a smoothing circuit including a first inductor and a first capacitor, a power regeneration circuit, a control circuit, and a second power terminal. The power regeneration circuit has a first diode having an anode connected to the rectifier circuit and a cathode connected to a first node, a second capacitor having one end connected to the first node and the other end connected to a reference node, a first regeneration switching element having one end connected to the first node and the other end connected to the second node, a second regeneration switching element having one end connected to the second node and the other end connected to the reference node, and a second inductor and second diode provided in the path connecting the second node and one end of the first capacitor.SELECTED DRAWING: Figure 2
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Description

Technical Field

[0001] The present invention relates to a power conversion device and a power conversion system for converting electric power.

Background Art

[0002] Some power conversion devices are designed to suppress deterioration and breakage of switching elements. For example, Patent Document 1 discloses a power conversion device capable of suppressing deterioration and breakage of a circuit due to avalanche breakdown.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In a power conversion device, it is desired to be able to avoid avalanche breakdown, and it is expected to be able to effectively avoid avalanche breakdown.

[0005] It is desirable to provide a power conversion device and a power conversion system that can effectively avoid avalanche breakdown.

Means for Solving the Problems

[0006] A power conversion device according to an embodiment of the present invention includes a first power terminal, a switching circuit, a transformer, a rectifier circuit, a smoothing circuit, a power regeneration circuit, a control circuit, and a second power terminal. The switching circuit is connected to the first power terminal. The transformer has a first winding and a second winding led from the switching circuit. The rectifier circuit is connected to the second winding and has one or more rectifier switching elements. The smoothing circuit includes a first inductor having one end and the other end, and a first capacitor having one end connected to the other end of the first inductor and the other end connected to a reference node. The power regeneration circuit is connected to the rectifier circuit and can regenerate power to the first capacitor. The control circuit can control the operations of the switching circuit, the rectifier circuit, and the power regeneration circuit. The second power terminal has a first connection terminal connected to the other end of the first inductor and one end of the first capacitor, and a second connection terminal connected to the reference node. The power regeneration circuit has a first diode, a second capacitor, a first regeneration switching element, a second regeneration switching element, a second inductor, and a second diode. The first diode has an anode connected to the rectifier circuit and a cathode connected to a first node. The second capacitor has one end connected to the first node and the other end connected to the reference node. The first regeneration switching element has one end connected to the first node and the other end connected to a second node. The second regeneration switching element has one end connected to the second node and the other end connected to the reference node. The second inductor and the second diode are provided in a path connecting the second node and one end of the first capacitor. The control circuit can control the operations of the first regeneration switching element and the second regeneration switching element based on the voltage in the second capacitor.

[0007] A power conversion system according to an embodiment of the present invention includes a first battery, a capacitor, a first switch, a second switch, a power conversion device, and a second battery. The first battery has a first terminal and a second terminal. The capacitor has a first terminal and a second terminal. The first switch is provided in a path connecting the first terminal of the first battery and the first terminal of the capacitor. The second switch is provided in a path connecting the second terminal of the first battery and the second terminal of the capacitor. The power conversion device includes a first power terminal, a switching circuit, a transformer, a rectifying circuit, a smoothing circuit, a power regeneration circuit, a control circuit, and a second power terminal. The first power terminal is connected to the capacitor. The switching circuit is connected to the first power terminal. The transformer has a first winding led to the switching circuit and a second winding. The rectifying circuit is connected to the second winding and has one or more rectifying switching elements. The smoothing circuit includes a first inductor having one end and the other end, and a first capacitor having one end connected to the other end of the first inductor and the other end connected to a reference node. The power regeneration circuit is connected to the rectifying circuit and can regenerate power to the first capacitor. The control circuit can control the operations of the switching circuit, the rectifying circuit, and the power regeneration circuit. The second power terminal has a first connection terminal connected to the other end of the first inductor and one end of the first capacitor and a second connection terminal connected to the reference node, and is connected to the second battery. The power regeneration circuit has a first diode, a second capacitor, a first regeneration switching element, a second regeneration switching element, a second inductor, and a second diode. The first diode has an anode connected to the rectifying circuit and a cathode connected to a first node. The second capacitor has one end connected to the first node and the other end connected to the reference node. The first regeneration switching element has one end connected to the first node and the other end connected to a second node.The second regenerative switching element has one end connected to the second node and the other end connected to the reference node. The second inductor and the second diode are provided in a path connecting the second node and one end of the first capacitor. The control circuit can control the operations of the first regenerative switching element and the second regenerative switching element based on the voltage across the second capacitor.

Advantages of the Invention

[0008] According to the power conversion device and the power conversion system according to an embodiment of the present invention, avalanche breakdown can be effectively avoided.

Brief Description of the Drawings

[0009]

Figure 1

Figure 2

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Figure 6A

Figure 6B

Figure 6C

Figure 6D

Figure 6E

Figure 6F

Figure 6G

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Figure 10

MODE FOR CARRYING OUT THE INVENTION

[0010] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.

[0011] <Embodiment> [Configuration Example] FIG. 1 shows a configuration example of a power conversion system 1 including a power conversion device according to an embodiment of the present invention. The power conversion system 1 includes a high-voltage battery BH, switches SW1 and SW2, a capacitor 9, a power conversion device 10, and a low-voltage battery BL. The power conversion system 1 is configured to convert the power supplied from the high-voltage battery BH and supply the converted power to the low-voltage battery BL.

[0012] The high-voltage battery BH is configured to store power. The high-voltage battery BH supplies power to the power conversion device 10 via the switches SW1 and SW2.

[0013] Switches SW1 and SW2 are configured to supply the power stored in the high-voltage battery BH to the power conversion device 10 when turned on. Switches SW1 and SW2 are configured using, for example, relays. When switch SW1 is turned on, it connects the positive terminal of the high-voltage battery BH to terminal T11 of the power conversion device 10. When switch SW2 is turned on, it connects the negative terminal of the high-voltage battery BH to terminal T12 of the power conversion device 10. Switches SW1 and SW2 are turned on and off based on an instruction from a system control unit (not shown).

[0014] One end of the capacitor 9 is connected to terminal T11 of the power conversion device 10 and switch SW1, and the other end is connected to terminal T12 of the power conversion device 10 and switch SW2.

[0015] The power conversion device 10 is configured to convert power by stepping down the voltage supplied from the high-voltage battery BH and supply the converted power to the low-voltage battery BL. The power conversion device 10 includes terminals T11, T12, a voltage sensor 11, a capacitor 12, a resistor element 13, a switching circuit 14, an inductor 15, a transformer 16, a rectifier circuit 17, a smoothing circuit 18, a power regeneration circuit 30, a voltage sensor 21, a control circuit 22, and terminals T21, T22. The high-voltage battery BH, switches SW1, SW2, voltage sensor 11, capacitor 12, resistor element 13, switching circuit 14, and inductor 15 constitute the primary-side circuit of the power conversion system 1, and the rectifier circuit 17, smoothing circuit 18, power regeneration circuit 30, voltage sensor 21, and low-voltage battery BL constitute the secondary-side circuit of the power conversion system 1.

[0016] Terminals T11 and T12 are configured to be supplied with voltage from the high-voltage battery BH when switches SW1 and SW2 are turned on. Inside the power conversion device 10, terminal T11 is connected to voltage line L11, and terminal T12 is connected to the reference voltage line L12.

[0017] One end of the voltage sensor 11 is connected to the voltage line L11, and the other end is connected to the reference voltage line L12. The voltage sensor 11 is configured to detect the voltage VH on the voltage line L11 with reference to the voltage on the reference voltage line L12.

[0018] One end of the capacitor 12 is connected to the voltage line L11, and the other end is connected to the node N11. One end of the resistive element 13 is connected to the voltage line L11, and the other end is connected to the node N11.

[0019] The switching circuit 14 is configured to perform a switching operation based on the control signals G1 and G2. The switching circuit 14 includes transistors Q1 and Q2. The transistors Q1 and Q2 are switching elements that perform switching operations based on the control signals G1 and G2, respectively. The transistors Q1 and Q2 are configured using, for example, N-type field effect transistors (FETs: Field Effect Transistors). The transistors Q1 and Q2 each have body diodes D1 and D2. For example, the anode of the body diode D1 is connected to the source of the body of the transistor Q1, and the cathode is connected to the drain of the body of the transistor Q1. The same applies to the body diode D2. In this example, N-type field effect transistors are used, but any switching element may be used. The drain of the transistor Q1 is connected to the node N11, the source is connected to the node N12, and the control signal G1 is supplied to the gate. The drain of the transistor Q2 is connected to the node N12, the source is connected to the reference voltage line L12, and the control signal G2 is supplied to the gate.

[0020] One end of the inductor 15 is connected to a winding 16A (described later) in the transformer 16, and the other end is connected to the node N12.

[0021] Transformer 16 is configured to insulate the primary circuit and the secondary circuit from each other in terms of direct current and connect them in terms of alternating current, convert the alternating voltage supplied from the primary circuit by the turns ratio of transformer 16, and supply the converted alternating voltage to the secondary circuit. Transformer 16 has windings 16A and 16B. Winding 16A is the primary winding of transformer 16, one end of which is connected to voltage line L11 and the other end of which is connected to one end of inductor 15. Winding 16B is the secondary winding of transformer 16, one end of which is connected to voltage line L21A (described later) and the other end of which is connected to node N13.

[0022] Rectifier circuit 17 is configured to rectify the alternating voltage output from winding 16B of transformer 16. Rectifier circuit 17 has transistors Q3 and Q4. Transistors Q3 and Q4 are switching elements that perform a switching operation based on control signals G3 and G4 respectively. Transistors Q3 and Q4 are configured using, for example, N-type field effect transistors, similar to transistors Q1 and Q2. Transistors Q3 and Q4 each have body diodes D3 and D4, similar to transistors Q1 and Q2. The drain of transistor Q3 is connected to node N13, the source is connected to reference voltage line L22, and control signal G3 is supplied to the gate. The drain of transistor Q4 is connected to voltage line L21A, the source is connected to reference voltage line L22, and control signal G4 is supplied to the gate.

[0023] Smoothing circuit 18 is configured to smooth the voltage rectified by rectifier circuit 17. Smoothing circuit 18 has inductor 19 and capacitor 20. One end of inductor 19 is connected to voltage line L21A and the other end is connected to voltage line L21B. One end of capacitor 20 is connected to voltage line L21B and the other end is connected to reference voltage line L22.

[0024] Power regeneration circuit 30 is configured to regenerate the power of the surge generated in transistors Q3 and Q4 of rectifier circuit 17 to capacitor 20.

[0025] Figure 2 shows a configuration example of the power regeneration circuit 30. Figure 2 depicts the secondary-side circuit of the power conversion system 1 including the power regeneration circuit 30. The power regeneration circuit 30 includes diodes 31, 32, a capacitor 33, a voltage sensor 34, transistors Q5, Q6, an inductor 35, and a diode 36.

[0026] The anode of the diode 31 is connected to the node N13, and the cathode is connected to the node N1. One end of the diode 32 is connected to the voltage line L21A, and the cathode is connected to the node N1. One end of the capacitor 33 is connected to the node N1, and the other end is connected to the reference voltage line L22. One end of the voltage sensor 34 is connected to the node N1, and the other end is connected to the reference voltage line L22. The voltage sensor 34 is configured to detect the voltage VCreg at the node N1 with reference to the voltage on the reference voltage line L22.

[0027] The transistors Q5, Q6 are switching elements that perform a switching operation based on the control signals G5, G6 respectively. The transistors Q5, Q6 are configured using, for example, N-type field-effect transistors in the same manner as the transistors Q1 to Q4. The transistors Q5, Q6 each have body diodes D5, D6 in the same manner as the transistors Q1 to Q4. The drain of the transistor Q5 is connected to the node N1, the source is connected to the node N2, and the control signal G5 is supplied to the gate. The drain of the transistor Q6 is connected to the node N2, the source is connected to the reference voltage line L22, and the control signal G6 is supplied to the gate.

[0028] One end of the inductor 35 is connected to the node N2, and the other end is connected to the anode of the diode 36. The anode of the diode 36 is connected to the other end of the inductor 35, and the cathode is connected to one end of the capacitor 20.

[0029] With this configuration, the power regeneration circuit 30 can regenerate the surge power generated in the transistors Q3, Q4 of the rectifier circuit 17 into the capacitor 20.

[0030] One end of the voltage sensor 21 (Fig. 1) is connected to the voltage line L21B, and the other end is connected to the reference voltage line L22. The voltage sensor 21 is configured to detect the voltage VL on the voltage line L21B with reference to the voltage on the reference voltage line L22.

[0031] The control circuit 22 is configured to control the operation of the power conversion device 10 based on the voltage VH detected by the voltage sensor 11, the voltage VL detected by the voltage sensor 21, and the voltage VCreg detected by the voltage sensor 34 of the power regeneration circuit 30. The control circuit 22 is configured using, for example, a microcontroller or the like.

[0032] The terminals T21 and T22 are configured to supply the voltage generated by the power conversion device 10 to the low-voltage battery BL. Inside the power conversion device 10, the terminal T21 is connected to the voltage line L21B, and the terminal T22 is connected to the reference voltage line L22. Also, the terminal T21 is connected to the positive terminal of the low-voltage battery BL, and the terminal T22 is connected to the negative terminal of the low-voltage battery BL.

[0033] The low-voltage battery BL is configured to store the power supplied from the power conversion device 10.

[0034] With this configuration, the power conversion system 1 is adapted to perform a power conversion operation of converting the power supplied from the high-voltage battery BH and supplying the converted power to the low-voltage battery BL.

[0035] In addition, this power conversion system 1 also has a function of performing a so-called pre-charge operation of charging the capacitor 9 during a period before starting such a power conversion operation. In this pre-charge operation, the switches SW1 and SW2 are in the off state, and the control circuit 22 controls the operations of the switching circuit 14, the rectifier circuit 17, and the power regeneration circuit 30, so that the power conversion system 1 supplies the power of the low-voltage battery BL to the capacitor 9 via the transformer 16. Thereby, the power conversion device 10 can suppress the inrush current flowing from the high-voltage battery BH to the capacitor 9 when the switches SW1 and SW2 are turned on to perform the power conversion operation.

[0036] Here, the terminals T11 and T12 correspond to a specific example of the "first power terminal" in an embodiment of the present disclosure. The switching circuit 14 corresponds to a specific example of the "switching circuit" in an embodiment of the present disclosure. The transformer 16 corresponds to a specific example of the "transformer" in an embodiment of the present disclosure. The winding 16A corresponds to a specific example of the "first winding" in an embodiment of the present disclosure. The winding 16B corresponds to a specific example of the "second winding" in an embodiment of the present disclosure. The rectifier circuit 17 corresponds to a specific example of the "rectifier circuit" in an embodiment of the present disclosure. The smoothing circuit 18 corresponds to a specific example of the "smoothing circuit" in an embodiment of the present disclosure. The inductor 19 corresponds to a specific example of the "first inductor" in an embodiment of the present disclosure. The capacitor 20 corresponds to a specific example of the "first capacitor" in an embodiment of the present disclosure. The reference node corresponds to a specific example of the "reference voltage line L22" in an embodiment of the present disclosure. The power regeneration circuit 30 corresponds to a specific example of the "power regeneration circuit" in an embodiment of the present disclosure. The terminals T21 and T22 correspond to a specific example of the "second power terminal" in an embodiment of the present disclosure. The control circuit 22 corresponds to a specific example of the "control circuit" in an embodiment of the present disclosure.

[0037] The diode 31 corresponds to a specific example of the "first diode" in one embodiment of the present disclosure. The capacitor 33 corresponds to a specific example of the "second capacitor" in one embodiment of the present disclosure. The transistor Q5 corresponds to a specific example of the "first regenerative switching element" in one embodiment of the present disclosure. The transistor Q6 corresponds to a specific example of the "second regenerative switching element" in one embodiment of the present disclosure. The inductor 35 corresponds to a specific example of the "second inductor" in one embodiment of the present disclosure. The diode 36 corresponds to a specific example of the "second diode" in one embodiment of the present disclosure. The node N1 corresponds to a specific example of the "first node" in one embodiment of the present disclosure. The node N2 corresponds to a specific example of the "second node" in one embodiment of the present disclosure. The transistor Q3 corresponds to a specific example of the "first rectifying switching element" in one embodiment of the present disclosure. The transistor Q4 corresponds to a specific example of the "second rectifying switching element" in one embodiment of the present disclosure. The diode 32 corresponds to a specific example of the "third diode" in one embodiment of the present disclosure.

[0038] [Operation and Function] Subsequently, the operation and function of the power conversion system 1 of the present embodiment will be described.

[0039] (Overall Operation Outline) First, referring to FIG. 1, the overall operation outline of the power conversion system 1 will be described. When the power conversion system 1 starts, the switches SW1 and SW2 are in the off state. First, during the pre-charge period, the control circuit 22 generates control signals G1 to G6. The power conversion device 10 performs a switching operation based on the control signals G1 to G6, and charges the capacitor 9 by supplying the power of the low-voltage battery BL from the secondary side circuit to the primary side circuit via the transformer 16. As a result, the voltage VH rises and is maintained near the target voltage. Then, in the power conversion period after the pre-charge period, the switches SW1 and SW2 turn on, and the control circuit 22 generates control signals G1 to G6. The power conversion device 10 performs a switching operation based on the control signals G1 to G6, converts the power supplied from the high-voltage battery BH, and supplies the converted power to the low-voltage battery BL.

[0040] (Detailed operation) Hereinafter, an operation example of the power conversion system 1 will be described in detail. First, the power conversion operation will be described, and then the pre-charge operation will be described.

[0041] (Regarding the power conversion operation) FIG. 3 shows an operation example of the power conversion system 1 during the power conversion period. (A) to (D) respectively show the waveforms of the control signals G1 to G4, (E) shows the waveform of the drain-source voltage VdsQ3 of the transistor Q3, (F) shows the waveform of the drain-source voltage VdsQ4 of the transistor Q4, (G) shows the waveform of the voltage VCreg across the capacitor 33 in the power regeneration circuit 30, (H) and (I) respectively show the waveforms of the control signals G5 and G6, and (J) shows the waveform of the current ILreg flowing through the inductor 35 in the power regeneration circuit 30. In FIGS. 3(A) to (D), (H), and (I), the control signals G1 to G6 are illustrated using the gate-source voltage Vgs of the transistors Q1 to Q6. Note that the waveform of the voltage VCreg is also illustrated in FIGS. 3(E) and (F). The waveform of this voltage VCreg is as shown in FIG. 3(G), but in FIGS. 3(E) and (F), it is drawn so as to hardly change due to the difference in voltage scale.

[0042] When performing the power conversion operation, the control circuit 22 generates control signals G1 to G4 based on the voltage VL (Figs. 3(A) to (D)). The control signal G1 and the control signal G2 are controlled such that either one of them becomes high level. At that time, a dead time Td is provided for the control signal G1 and the control signal G2. During this dead time Td, both the control signals G1 and G2 become low level. Similarly, the control signal G3 and the control signal G4 are controlled such that either one of them becomes high level. At that time, a dead time Td is provided for the control signal G3 and the control signal G4. In this example, the control circuit 22 changes the control signal G2 from high level to low level at timing t4, changes the control signal G1 from low level to high level at timing t7, changes the control signal G1 from high level to low level at timing t8, and changes the control signal G2 from low level to high level at timing t9 (Figs. 3(A), (B)). Similarly, the control circuit 22 changes the control signal G3 from high level to low level at timing t4, changes the control signal G4 from low level to high level at timing t7, changes the control signal G4 from high level to low level at timing t8, and changes the control signal G3 from low level to high level at timing t9 (Figs. 3(C), (D)). The control circuit 22 repeats such an operation in the switching period T. The power conversion device 10 performs a power conversion operation of converting the power supplied from the high-voltage battery BH and supplying the converted power to the low-voltage battery BL by performing a switching operation based on such control signals G1 to G4. Then, the power conversion device 10 controls the duty ratio of the control signals G1 to G4 so that the voltage VL maintains a predetermined voltage.

[0043] In this power conversion operation, the power regeneration circuit 30 operates to regenerate the power of the surge generated in the transistor Q3. The power of the surge generated in the transistor Q3 is supplied to the capacitor 33 of the power regeneration circuit 30 via the diode 31 and is temporarily stored in this capacitor 33. The control circuit 22 generates control signals G5 and G6 based on the voltage VCreg of the capacitor 33. Thereby, the power regeneration circuit 30 regenerates the power of the surge generated in the transistor Q3.

[0044] For example, in this example, at timing t1, when the control circuit 22 changes the control signal G3 from a high level to a low level (Fig. 3(C)), the transistor Q3 changes from an on state to an off state. As a result, the drain-source voltage VdsQ3 of this transistor Q3 rises from 0V (Fig. 3(E)). The drain-source voltage VdsQ3 transiently exceeds the voltage VCreg at timing t2. During the period when the drain-source voltage VdsQ3 exceeds the voltage VCreg, the diode 31 turns on, and current flows into the capacitor 33 through this diode 31. In this way, the capacitor 33 is transiently charged, and the voltage VCreg of the capacitor 33 rises (Fig. 3(G)). The voltage VCreg after the rise is lower than the threshold voltage VthH. Thereafter, at timing t3, when the control circuit 22 changes the control signal G3 from a low level to a high level (Fig. 3(C)), the transistor Q3 changes from an off state to an on state. As a result, the drain-source voltage VdsQ3 of this transistor Q3 becomes 0V (Fig. 3(E)).

[0045] Similarly, when the control circuit 22 changes the control signal G3 from a high level to a low level at timing t4 (Fig. 3(C)), the transistor Q3 changes from an on state to an off state. As a result, the drain-source voltage VdsQ3 of this transistor Q3 rises from 0V (Fig. 3(E)). The drain-source voltage VdsQ3 becomes transiently high at timing t5, and the diode 31 becomes in an on state. Thereby, the capacitor 33 is transiently charged, and the voltage VCreg of the capacitor 33 rises (Fig. 3(G)). In this example, at timing t6, this voltage VCreg reaches the threshold voltage VthH. The control circuit 22 generates control signals G5 and G6 based on this voltage VCreg.

[0046] Fig. 4 shows an example of the operation of the control circuit 22. The control circuit 22 generates control signals G5 and G6 by comparing the voltage VCreg with the threshold voltages VthL and VthH. The threshold voltage VthH is higher than the threshold voltage VthL. When the control signal G5 is at a low level and the control signal G6 is at a high level, and the voltage VCreg rises and reaches the threshold voltage VthH, the control circuit 22 changes the control signal G6 from a high level to a low level, and at the timing when a dead time Td has elapsed from that timing, changes the control signal G5 from a low level to a high level. Also, when the control signal G5 is at a high level and the control signal G6 is at a low level, and the voltage VCreg drops and reaches the threshold voltage VthL, the control circuit 22 changes the control signal G5 from a high level to a low level, and at the timing when a dead time Td has elapsed from that timing, changes the control signal G6 from a low level to a high level. In this way, the control circuit 22 generates the control signals G5 and G6 using hysteresis characteristics based on the voltage VCreg.

[0047] As shown in FIG. 3, when the voltage VCreg reaches the threshold voltage VthH at timing t6, the control circuit 22 changes the control signal G6 from a high level to a low level at this timing t6 (FIG. 3(I)). As a result, the transistor Q6 changes from the on state to the off state. Then, the control circuit 22 changes the control signal G5 from a low level to a high level at timing t8 which is after the dead time Td has elapsed from this timing t6. As a result, the transistor Q5 changes from the off state to the on state, and a current ILreg flows from the capacitor 33, through the transistor Q5, the inductor 35, and the diode 36, toward the capacitor 20 (FIG. 3(J)). That is, the power of the surge generated in the transistor Q3 is once stored in the capacitor 33 of the power regeneration circuit 30 and then regenerated to the capacitor 20. During the period from timing t8 to t10, the current ILreg increases. Since the capacitor 33 is discharged, the voltage VCreg of the capacitor 33 decreases toward the threshold voltage VthL (FIG. 3(G)).

[0048] At timing t10, when the voltage VCreg reaches the threshold voltage VthL, the control circuit 22 changes the control signal G5 from a high level to a low level at this timing t10 (FIG. 3(H)). As a result, the transistor Q5 changes from the on state to the off state. As a result, the discharge of the capacitor 33 stops, so the voltage VCreg maintains the same voltage as the threshold voltage VthL (FIG. 3(G)). Then, the control circuit 22 changes the control signal G6 from a low level to a high level at timing t11 which is after the dead time Td has elapsed from this timing t10. As a result, the transistor Q6 changes from the off state to the on state. During the period from timing t10 to t12, the current ILreg decreases.

[0049] In this way, the power regeneration circuit 30 regenerates the power of the surge generated in the transistor Q3.

[0050] Note that, in this example, an example in which a surge occurs in the transistor Q3 is described, but the same applies to the transistor Q4.

[0051] (Regarding the precharge operation) FIG. 5 shows an example of the operation of the power conversion system 1 during the precharge period. (A) to (D) respectively show the waveforms of the control signals G1 to G4, (E) shows the waveform of the current ILch flowing through the inductor 19 of the smoothing circuit 18, (F) shows the waveform of the charging current Ichg to the capacitor 9, (G) shows the waveform of the voltage VH, (H) shows the waveform of the voltage VCreg in the capacitor 33 of the power regeneration circuit 30, (I) and (J) respectively show the waveforms of the control signals G5 and G6, and (K) shows the waveform of the current ILreg flowing through the inductor 35 of the power regeneration circuit 30. FIGS. 6A to 6G show an example of the operating state of the power conversion system 1. FIGS. 6A to 6G depict the transistors Q3 to Q6 using the symbols of switches indicating the states of the transistors. Also, in FIGS. 6A to 6G, the power regeneration circuit 30 is depicted in a simplified manner.

[0052] When performing the precharge operation, the control circuit 22 generates control signals G1 to G4 (Figs. 5(A) to (D)). The control signal G2 is maintained at a low level (Fig. 5(B)). The control signals G1 and G3 are controlled such that either one of them becomes high level. At that time, a dead time Td is provided for the control signals G1 and G3. The control signals G3 and G4 are controlled such that the periods during which they become high level overlap each other. The period during which both the control signals G3 and G4 become high level is the overlap time To. In this example, the control circuit 22 changes the control signal G4 from low level to high level at timing t21 (Fig. 5(D)). The control circuit 22 changes the control signal G1 from high level to low level at timing t22 and changes the control signal G3 from low level to high level at timing t23 (Figs. 5(A) and (C)). The control circuit 22 changes the control signal G4 from high level to low level at timing t24 (Fig. 5(D)). The control circuit 22 changes the control signal G3 from high level to low level at timing t25 and changes the control signal G1 from low level to high level at timing t27 (Figs. 5(A) and (C)). The control circuit 22 repeats such an operation in a switching period T. The power conversion device 10 performs a switching operation based on such control signals G1 to G4, and supplies the power of the low-voltage battery BL from the secondary side circuit to the primary side circuit via the transformer 16, thereby charging the capacitor 9. Specifically, the power conversion device 10 converts the power supplied from the low-voltage battery BL during the period when the control signal G3 is high level, and supplies the converted power to the capacitor 9. As a result, the voltage VH of the capacitor 9 gradually increases (Fig. 5(G)). The power conversion device 10 controls the duty ratios of the control signals G1, G3, and G4 such that this voltage VH gradually increases toward the target voltage. In this way, the power conversion device 10 performs the precharge operation.

[0053] In this pre-charge operation, the power regeneration circuit 30 operates to regenerate power while avoiding avalanche breakdown that may occur in transistors Q3 and Q4. The power is supplied to the capacitor 33 of the power regeneration circuit 30 via the diodes 31 and 32 and is once stored in this capacitor 33. The control circuit 22 generates control signals G5 and G6 based on the voltage VCreg of the capacitor 33. Thereby, the power regeneration circuit 30 regenerates power.

[0054] For example, the control circuit 22 changes the control signal G3 from a low level to a high level at timing t23 and changes the control signal G4 from a high level to a low level at timing t24 (Figs. 5(C) and (D)). Thereby, the transistor Q3 is turned on and the transistor Q4 is turned off (Fig. 6A). During the period from timing t24 to t25, as shown in Fig. 6A, in the secondary circuit, the power stored in the inductor 19 is released, and the current I1 flows in the order of the inductor 19, the winding 16B of the transformer 16, the transistor Q3, the capacitor 20, and the low-voltage battery BL. Thereby, power is supplied from the secondary circuit to the primary circuit via the transformer 16. In the primary circuit, during this period from timing t24 to t25, a charging current Ichg flows into the capacitor 9 (Fig. 5(F)), and the voltage VH rises (Fig. 5(G)).

[0055] Next, the control circuit 22 changes the control signal G3 from a high level to a low level at timing t25 (Fig. 5(C)). Thereby, the transistor Q3 is turned off (Fig. 6B). During the period from timing t25 to t26, as shown in Fig. 6B, in the secondary circuit, the residual power stored in the inductor 19 is released, and the current I1 flows in the order of the inductor 19, the winding 16B of the transformer 16, the diode 31, the capacitor 33, and the low-voltage battery BL, and in the order of the inductor 19, the diode 32, the capacitor 33, and the low-voltage battery BL. By this current I1, the capacitor 33 is charged and the voltage VCreg rises (Fig. 5(H)).

[0056] When the voltage VCreg of the capacitor 33 rises and reaches the threshold voltage VthH at the timing t26 (Fig. 5(H)), the control circuit 22 changes the control signal G6 from high level to low level at this timing t26 (Fig. 5(J)). As a result, the transistor Q6 turns off (Fig. 6C). During the period from timing t26 to t28, the voltage VCreg continues to rise (Fig. 5(H)).

[0057] Next, at the timing t28 when a dead time Td has elapsed from this timing t26, the control circuit 22 changes the control signal G5 from low level to high level (Fig. 5(I)). As a result, the transistor Q5 turns on (Fig. 6D). Consequently, during the period from timing t28 to t29, as shown in Fig. 6D, the regenerative current I2 flows in the order of the capacitor 33, the transistor Q5, the inductor 35, the diode 36, and the capacitor 20. That is, in the secondary circuit, the current I1 based on the power stored in the inductor 19 and this regenerative current I2 flow. The current I1 is the current that charges the capacitor 33, and the regenerative current I2 is the current that discharges the capacitor 33. Due to this regenerative current I2, the current ILreg of the inductor 35 starts to increase at the timing t28 (Fig. 5(K)).

[0058] At the timing t29, when the power stored in the inductor 19 runs out, the current I1 stops flowing and the current ILch of the inductor 19 becomes zero (Fig. 5(E)). Therefore, during the period from timing t29 to t30, as shown in Fig. 6E, the regenerative current I2 continues to flow in the secondary circuit. Since this regenerative current I2 is the current that discharges the capacitor 33, after the timing t29, the voltage VCreg of the capacitor 33 decreases (Fig. 5(H)).

[0059] When the voltage VCreg of the capacitor 33 drops and reaches the threshold voltage VthL at timing t30 (Fig. 5(H)), the control circuit 22 changes the control signal G5 from high level to low level at this timing t30 (Fig. 5(I)). As a result, the transistor Q5 turns off (Fig. 6F). During the period from timing t30 to t31, the transistor Q6 is off, but the body diode D6 of the transistor Q6 turns on. Therefore, as shown in Fig. 6F, the regenerative current I2 flows in the order of the inductor 35, the diode 36, the capacitor 20, and the body diode D6 of the transistor Q6. Since the transistor Q5 turns off and no current is supplied from the capacitor 33, the current ILreg (regenerative current I2) of the inductor 35 starts to decrease (Fig. 5(K)).

[0060] Next, at timing t31 when a dead time Td has elapsed from this timing t30, the control circuit 22 changes the control signal G6 from low level to high level (Fig. 5(J)), and at timing t32, changes the control signal G4 from low level to high level (Fig. 5(D)). As a result, the transistors Q4 and Q6 turn on (Fig. 6G). Consequently, during the period from timing t32 to t33, as shown in Fig. 6G, the current I1 flows in the order of the inductor 19, the transistor Q4, the capacitor 20, and the low-voltage battery BL. That is, in the secondary-side circuit, the regenerative current I2 and this current I1 flow. Due to this current I1, the current ILch of the inductor 19 starts to increase at timing t32 (Fig. 5(E)), and power is stored in the inductor 19.

[0061] The power regeneration circuit 30 repeats such an operation.

[0062] As shown in Fig. 5(H), the voltage VCreg of the capacitor 33 is approximately the same as the threshold voltages VthL and VthH, and even in the highest case, it is slightly higher than the threshold voltage VthH. The drain voltage of the transistor Q3 does not become higher than the voltage obtained by adding the forward voltage of the diode 31 to this voltage VCreg. Similarly, the drain voltage of the transistor Q4 does not become higher than the voltage obtained by adding the forward voltage of the diode 32 to this voltage VCreg. Therefore, in the power conversion system 1, avalanche breakdown in the transistors Q3 and Q4 can be avoided.

[0063] Thus, in the power conversion system 1, there are provided a first power terminal (terminals T11, T12), a switching circuit 14 connected to the first power terminal (terminals T11, T12), a first winding (winding 16A) led to the switching circuit 14, a transformer 16 having a second winding (winding 16B), a rectifier circuit 17 connected to the second winding (winding 16B) and having one or more rectifying switching elements, a first inductor (inductor 19) having one end and the other end, and a smoothing circuit 18 including a first capacitor (capacitor 20) having the other end connected to the other end of the first inductor (inductor 19) and a reference node (reference voltage line L22); a power regeneration circuit 30 connected to the rectifier circuit 17 and capable of regenerating power to the first capacitor (capacitor 20); a control circuit 22 capable of controlling the operations of the switching circuit 14, the rectifier circuit 17, and the power regeneration circuit 30; a first connection terminal (terminal T21) connected to the other end of the first inductor (inductor 19) and one end of the first capacitor, and a second power terminal (terminals T21, T22) having a second connection terminal (terminal T22) connected to the reference node (reference voltage line L22). The power regeneration circuit 30 includes a first diode (for example, diode 31) having an anode connected to the rectifier circuit 17 and a cathode connected to a first node (node N1), a second capacitor (capacitor 33) having one end connected to the first node (node N1) and the other end connected to the reference node, a first regenerative switching element (transistor Q5) having one end connected to the first node (node N1) and the other end connected to a second node (node N2), a second regenerative switching element (transistor Q6) having one end connected to the second node (node N2) and the other end connected to the reference node (reference voltage line L22), and a second inductor (inductor 35) and a second diode (diode 36) provided in a path connecting the second node (node N2) and one end of the first capacitor (capacitor 20). The control circuit 22 is capable of controlling the operations of the first regenerative switching element (transistor Q5) and the second regenerative switching element (transistor Q6) based on the voltage in the second capacitor (capacitor 33).As a result, in the power conversion system 1, during, for example, the pre-charge period, power can be regenerated while avoiding avalanche breakdown in transistors Q3 and Q4 as shown in FIGS. 5, 6A to 6G. Thereby, in the power conversion system 1, avalanche breakdown can be effectively avoided.

[0064] That is, for example, in the technique described in Patent Document 1, the current during power regeneration may become large. In this case, it is necessary to use components of a large size. In the power conversion system 1 according to the present embodiment, since the current flowing through the power regeneration circuit 30 can be reduced, the circuit can be configured using components of a small size. Further, the power regeneration circuit 30 can regenerate power while avoiding avalanche breakdown, for example, during the pre-charge period, and can regenerate the surge power generated in the transistor Q3 as shown in FIG. 3, for example, during the power conversion period. Thus, in the power conversion system 1, while using components of a small size, avalanche breakdown in the pre-charge operation can be avoided and the surge power in the power conversion operation can be regenerated. As a result, in the power conversion system 1, avalanche breakdown can be effectively avoided.

[0065] Also, in the power conversion system 1, the second winding (winding 16B) has one end connected to one end of the first inductor (inductor 19) and the other end. One or more rectifying switching elements include a first rectifying switching element (transistor Q3) having one end connected to one end of the second winding (winding 16B) and the other end connected to the reference node (reference voltage line L22), and a second rectifying switching element having one end connected to one end of the second winding (winding 16B) and the other end connected to the reference node (reference voltage line L22). (transistor Q4). The anode of the first diode (diode 31) is connected to one end of the first rectifying switching element (transistor Q3). The power regeneration circuit 30 further includes a third diode (diode 32) having an anode connected to one end of the second rectifying switching element (transistor Q4) and a cathode connected to the first node (node N1). Thereby, in the power conversion system 1, avalanche breakdown in both of the transistors Q3 and Q4 can be effectively avoided.

[0066] Also, in the power conversion system 1, during a predetermined period (precharge period) before a period (power conversion period) in which power is supplied from the first power terminals (terminals T11, T12) to the second power terminals (terminals T21, T22), the control circuit 22 can control the operations of the switching circuit 14 and the rectifying circuit 17 so as to supply power from the second power terminals (terminals T21, T22) to the first power terminals (terminals T11, T12), and in the predetermined period (precharge period), the first rectifying switching element (transistor Q3) can be changed from the on state to the off state. The power regeneration circuit 30 can charge the second capacitor (capacitor 33) by flowing a current through the first inductor (inductor 19), the second winding (winding 16B), the first diode (diode 31), and the second capacitor (capacitor 33) in this order during a first period after the first rectifying switching element (transistor Q3) changes to the off state in the predetermined period (precharge period). Thereby, in the power conversion system 1, power can be stored in the capacitor 33 while avoiding avalanche breakdown in the transistor Q3. As a result, in the power conversion system 1, avalanche breakdown in the transistor Q3 can be effectively avoided.

[0067] Also, in the power conversion system 1, during a predetermined period (precharge period) before the period (power conversion period) in which power is supplied from the first power terminals (terminals T11, T12) to the second power terminals (terminals T21, T22), the control circuit 22 can control the operations of the switching circuit 14 and the rectifier circuit 17 so as to supply power from the second power terminals (terminals T21, T22) to the first power terminals (terminals T11, T12). After the voltage in the second capacitor (capacitor 33) reaches a predetermined threshold voltage (threshold voltage VthH) during the predetermined period (precharge period), the first regenerative switching element (transistor Q5) can be changed from the off state to the on state. The power regeneration circuit 30 can charge the first capacitor (capacitor 20) by flowing a current from the second capacitor (capacitor 33) through the first regenerative switching element (transistor Q5), the second inductor (inductor 35), the second diode (diode 36), the first capacitor (capacitor 20), and the second regenerative switching element (transistor Q6) in this order during a second period after the first regenerative switching element (transistor Q5) changes to the on state during the predetermined period (precharge period). As a result, in the power conversion system 1, the power stored in the capacitor 33 can be regenerated to the capacitor 20. Consequently, in the power conversion system 1, avalanche breakdown can be effectively avoided.

[0068] Also, in the power conversion system 1, during a predetermined period (precharge period) before the period (power conversion period) in which power is supplied from the first power terminals (terminals T11, T12) to the second power terminals (terminals T21, T22), the control circuit 22 can control the operations of the switching circuit 14 and the rectifying circuit 17 so as to supply power from the second power terminals (terminals T21, T22) to the first power terminals (terminals T11, T12). In a third period during the predetermined period (precharge period), the first regenerative switching element (transistor Q5) can be turned off and the second regenerative switching element (transistor Q6) can be turned on. The power regeneration circuit 30 can charge the first capacitor by causing current to flow through the second inductor (inductor 35), the second diode (diode 36), and the first capacitor (capacitor 20) in this order during the third period. As a result, in the power conversion system 1, the power stored in the inductor 35 can be regenerated to the capacitor 20. Consequently, in the power conversion system 1, avalanche breakdown can be effectively avoided.

[0069] [Effect] As described above, in the present embodiment, a first power terminal, a switching circuit connected to the first power terminal, a first winding led to the switching circuit, a transformer having a second winding, a rectifier circuit connected to the second winding and having one or more rectifying switching elements, a first inductor having one end and the other end, and a smoothing circuit including a first capacitor having one end connected to the other end of the first inductor and the other end connected to a reference node; a power regeneration circuit connected to the rectifier circuit and capable of regenerating power to the first capacitor; a control circuit capable of controlling the operations of the switching circuit, the rectifier circuit, and the power regeneration circuit; and a second power terminal having a first connection terminal connected to the other end of the first inductor and one end of the first capacitor and a second connection terminal connected to the reference node are provided. The power regeneration circuit includes a first diode having an anode connected to the rectifier circuit and a cathode connected to the first node, a second capacitor having one end connected to the first node and the other end connected to the reference node, a first regenerative switching element having one end connected to the first node and the other end connected to the second node, a second regenerative switching element having one end connected to the second node and the other end connected to the reference node, and a second inductor and a second diode provided in a path connecting the second node and one end of the first capacitor. The control circuit is configured to be able to control the operations of the first regenerative switching element and the second regenerative switching element based on the voltage across the second capacitor. Thereby, avalanche breakdown can be effectively avoided.

[0070] In this embodiment, the second winding is configured to have one end connected to one end of the first inductor and the other end. One or more rectifying switching elements include a first rectifying switching element having one end connected to the other end of the second winding and the other end connected to the reference node, and a second rectifying switching element having one end connected to one end of the second winding and the other end connected to the reference node. The anode of the first diode is connected to one end of the first rectifying switching element. The power regeneration circuit further includes a third diode having an anode connected to one end of the second rectifying switching element and a cathode connected to the first node. Thereby, avalanche breakdown can be effectively avoided.

[0071] In this embodiment, the control circuit is capable of controlling the operations of the switching circuit and the rectifying circuit so as to supply power from the second power terminal to the first power terminal during a predetermined period before the period of supplying power from the first power terminal to the second power terminal, and is capable of changing the first rectifying switching element from the on state to the off state during the predetermined period. The power regeneration circuit is capable of charging the second capacitor by flowing current through the first inductor, the second winding, the first diode, and the second capacitor in this order during a first period after the first rectifying switching element changes to the off state during the predetermined period. Thereby, avalanche breakdown can be effectively avoided.

[0072] In this embodiment, the control circuit can control the operations of the switching circuit and the rectifying circuit so as to supply power from the second power terminal to the first power terminal during a predetermined period before the period of supplying power from the first power terminal to the second power terminal. After the voltage across the second capacitor reaches a predetermined threshold voltage during the predetermined period, the first regenerative switching element can be changed from the off state to the on state. The power regeneration circuit can charge the first capacitor by causing current to flow through the first regenerative switching element, the second inductor, the second diode, and the first capacitor in this order from the second capacitor during a second period after the first regenerative switching element changes to the on state during the predetermined period. Thereby, avalanche breakdown can be effectively avoided.

[0073] In this embodiment, the control circuit can control the operations of the switching circuit and the rectifying circuit so as to supply power from the second power terminal to the first power terminal during a predetermined period before the period of supplying power from the first power terminal to the second power terminal. During a third period within the predetermined period, the first regenerative switching element can be turned off and the second regenerative switching element can be turned on. The power regeneration circuit can charge the first capacitor by causing current to flow through the second inductor, the second diode, the first capacitor, and the second regenerative switching element in this order during the third period. Thereby, avalanche breakdown can be effectively avoided.

[0074] [Modification Example] In the above embodiment, the present technology is applied to the power conversion system 1 having the circuit configuration shown in FIG. 1, but the present technology is not limited thereto. The present technology can be applied to power conversion systems having various circuit configurations. Some examples will be given below to describe this modification example.

[0075] FIG. 7 shows a configuration example of the power conversion system 2 according to this modified example. The power conversion system 2 includes a power conversion device 40. The power conversion device 40 has terminals T11, T12, a voltage sensor 11, a switching circuit 44, an inductor 45, a transformer 46, a rectifier circuit 47, a smoothing circuit 18, a power regeneration circuit 30, a voltage sensor 21, a control circuit 52, and terminals T21, T22. The high-voltage battery BH, switches SW1, SW2, the voltage sensor 11, the switching circuit 44, and the inductor 45 constitute the primary-side circuit of the power conversion system 2, and the rectifier circuit 47, the smoothing circuit 18, the power regeneration circuit 30, the voltage sensor 21, and the low-voltage battery BL constitute the secondary-side circuit of the power conversion system 2.

[0076] The switching circuit 44 has transistors Q11 to Q14. The drain of transistor Q11 is connected to voltage line L11, the source is connected to node N21, and control signal G11 is supplied to the gate. The drain of transistor Q12 is connected to node N21, the source is connected to reference voltage line L12, and control signal G12 is supplied to the gate. The drain of transistor Q13 is connected to voltage line L11, the source is connected to node N22, and control signal G13 is supplied to the gate. The drain of transistor Q14 is connected to node N22, the source is connected to reference voltage line L12, and control signal G14 is supplied to the gate.

[0077] One end of the inductor 45 is connected to node N21, and the other end is connected to winding 46A (described later) of the transformer 46.

[0078] The transformer 46 has windings 46A, 46B, and 46C. Winding 46A is the primary winding of the transformer 46, one end is connected to the other end of the inductor 45, and the other end is connected to node N22. Windings 46B and 46C are the secondary windings of the transformer 46. One end of winding 46B is connected to node N23, and the other end is connected to voltage line L21A. One end of winding 46C is connected to voltage line L21A, and the other end is connected to node N24.

[0079] The rectifier circuit 47 has transistors Q15 and Q16. The drain of transistor Q15 is connected to node N24, the source is connected to the reference voltage line L22, and the control signal G15 is supplied to the gate. The drain of transistor Q16 is connected to node N23, the source is connected to the reference voltage line L22, and the control signal G16 is supplied to the gate.

[0080] FIG. 8 shows a configuration example of the power regeneration circuit 30. The anode of diode 31 is connected to node N24, and the anode of diode 32 is connected to node N23.

[0081] The control circuit 52 (FIG. 7) is configured to control the operation of the power conversion device 40 based on the voltage VH detected by the voltage sensor 11, the voltage VL detected by the voltage sensor 21, and the voltage VCreg detected by the voltage sensor 34 of the power regeneration circuit 30.

[0082] FIG. 9 shows a configuration example of another power conversion system 3 according to this modification. The power conversion system 3 includes a power conversion device 60. The power conversion device 60 has terminals T11, T12, a voltage sensor 11, a switching circuit 44, an inductor 45, a transformer 16, a rectifier circuit 67, a smoothing circuit 18, a power regeneration circuit 80, a voltage sensor 21, a control circuit 72, and terminals T21, T22. The high-voltage battery BH, switches SW1, SW2, the voltage sensor 11, the switching circuit 44, and the inductor 45 constitute the primary-side circuit of the power conversion system 3, and the rectifier circuit 67, the smoothing circuit 18, the power regeneration circuit 80, the voltage sensor 21, and the low-voltage battery BL constitute the secondary-side circuit of the power conversion system 3.

[0083] One end of the winding 16B of the transformer 16 is connected to node N31, and the other end is connected to node N32.

[0084] The rectifying circuit 67 includes transistors Q21 to Q24. The drain of transistor Q21 is connected to voltage line L21A, the source is connected to node N31, and control signal G21 is supplied to the gate. The drain of transistor Q22 is connected to node N31, the source is connected to reference voltage line L22, and control signal G22 is supplied to the gate. The drain of transistor Q23 is connected to voltage line L21A, the source is connected to node N32, and control signal G23 is supplied to the gate. The drain of transistor Q24 is connected to node N32, the source is connected to reference voltage line L22, and control signal G24 is supplied to the gate.

[0085] FIG. 10 shows a configuration example of the power regeneration circuit 80. The power regeneration circuit 80 includes diode 31, capacitor 33, voltage sensor 34, transistors Q5 and Q6, inductor 35, and diode 36. That is, the power regeneration circuit 80 is obtained by removing diode 32 from the power regeneration circuit 30 (FIG. 2). The anode of diode 31 is connected to voltage line L21A.

[0086] The control circuit 72 is configured to control the operation of the power conversion device 60 based on the voltage VH detected by the voltage sensor 11, the voltage VL detected by the voltage sensor 21, and the voltage VCreg detected by the voltage sensor 34 of the power regeneration circuit 80.

[0087] The present invention has been described above with reference to the embodiments and modification examples, but the present invention is not limited to these embodiments and the like, and various modifications are possible.

[0088] For example, in the above embodiment, the power conversion system 1 is configured to perform a step-down operation in the power conversion operation, but the present invention is not limited thereto, and a step-up operation may be performed.

[0089] The effects described in this specification are merely examples, and the effects of the present disclosure are not limited to the effects described in this specification. Therefore, other effects may be obtained with respect to the present disclosure.

[0090] Furthermore, the present disclosure may take the following aspects.

[0091] (1) A first power terminal, A switching circuit connected to the first power terminal, A transformer having a first winding and a second winding led to the switching circuit, A rectifier circuit connected to the second winding and having one or more rectifier switching elements, A smoothing circuit including a first inductor having one end and the other end, and a first capacitor having one end connected to the other end of the first inductor and the other end connected to a reference node, A power regeneration circuit connected to the rectifier circuit and capable of regenerating power to the first capacitor, A control circuit capable of controlling the operations of the switching circuit, the rectifier circuit, and the power regeneration circuit, A second power terminal having a first connection terminal connected to the other end of the first inductor and one end of the first capacitor, and a second connection terminal connected to the reference node, Comprising, The power regeneration circuit is A first diode having an anode connected to the rectifier circuit and a cathode connected to a first node, A second capacitor having one end connected to the first node and the other end connected to the reference node, A first regeneration switching element having one end connected to the first node and the other end connected to a second node, A second regeneration switching element having one end connected to the second node and the other end connected to the reference node, A second inductor and a second diode provided in a path connecting the second node and one end of the first capacitor, Having, The control circuit can control the operations of the first regenerative switching element and the second regenerative switching element based on the voltage across the second capacitor. Power conversion device. (2) The second winding has one end connected to the one end of the first inductor and the other end. The one or more rectifying switching elements include a first rectifying switching element having one end connected to the other end of the second winding and the other end connected to the reference node, and a second rectifying switching element having one end connected to the one end of the second winding and the other end connected to the reference node. The anode of the first diode is connected to the one end of the first rectifying switching element. The power regeneration circuit further includes a third diode having an anode connected to the one end of the second rectifying switching element and a cathode connected to the first node. The power conversion device according to (1) above. (3) The control circuit During a predetermined period before the period of supplying power from the first power terminal to the second power terminal, the control circuit can control the operations of the switching circuit and the rectifying circuit so as to supply power from the second power terminal to the first power terminal. During the predetermined period, the first rectifying switching element can be changed from the on state to the off state. During the first period after the first rectifying switching element changes to the off state during the predetermined period, the power regeneration circuit can charge the second capacitor by flowing current through the first inductor, the second winding, the first diode, and the second capacitor in this order. The power conversion device according to (2) above. (4) The control circuit In a predetermined period before a period of supplying power from the first power terminal to the second power terminal, the operations of the switching circuit and the rectifying circuit can be controlled so as to supply power from the second power terminal to the first power terminal. In the predetermined period, after the voltage in the second capacitor reaches a predetermined threshold voltage, the first regenerative switching element can be changed from an off state to an on state. The power regeneration circuit can charge the first capacitor by flowing a current from the second capacitor through the first regenerative switching element, the second inductor, the second diode, and the first capacitor in this order in a second period after the first regenerative switching element changes to the on state in the predetermined period. The power conversion device according to (2) or (3) above. (5) The control circuit In a predetermined period before a period of supplying power from the first power terminal to the second power terminal, the operations of the switching circuit and the rectifying circuit can be controlled so as to supply power from the second power terminal to the first power terminal. In a third period in the predetermined period, the first regenerative switching element can be turned off and the second regenerative switching element can be turned on. The power regeneration circuit can charge the first capacitor by flowing a current through the second inductor, the second diode, the first capacitor, and the second regenerative switching element in this order in the third period. The power conversion device according to any one of (2) to (4) above. (6) A first battery having a first terminal and a second terminal, A capacitor having a first terminal and a second terminal, A first switch provided in a path connecting the first terminal of the first battery and the first terminal of the capacitor, A second switch provided in a path connecting the second terminal of the first battery and the second terminal of the capacitor; A power conversion device; A second battery; and includes: The power conversion device includes: A first power terminal connected to the capacitor; A switching circuit connected to the first power terminal; A transformer having a first winding and a second winding led to the switching circuit; A rectifying circuit connected to the second winding and having one or more rectifying switching elements; A smoothing circuit including a first inductor having one end and the other end, and a first capacitor having one end connected to the other end of the first inductor and the other end connected to a reference node; A power regeneration circuit connected to the rectifying circuit and capable of regenerating power to the first capacitor; A control circuit capable of controlling operations of the switching circuit, the rectifying circuit, and the power regeneration circuit; A first connection terminal connected to the other end of the first inductor and one end of the first capacitor, and a second connection terminal connected to the reference node, and a second power terminal connected to the second battery; and includes: The power regeneration circuit includes: A first diode having an anode connected to the rectifying circuit and a cathode connected to a first node; A second capacitor having one end connected to the first node and the other end connected to the reference node; A first regeneration switching element having one end connected to the first node and the other end connected to a second node; A second regeneration switching element having one end connected to the second node and the other end connected to the reference node; A second inductor and a second diode provided in a path connecting the second node and one end of the first capacitor; having, The control circuit can control the operations of the first regenerative switching element and the second regenerative switching element based on the voltage across the second capacitor. A power conversion system.

Description of Reference Numerals

[0092] 1~3... Power conversion system, 9... Capacitor, 10, 40, 60... Power conversion device, 11... Voltage sensor, 12... Capacitor, 13... Resistive element, 14, 44... Switching circuit, 15, 45... Inductor, 16, 46... Transformer, 16A, 16B, 46A, 46B, 46C... Windings, 17, 47, 57... Rectifier circuit, 18... Smoothing circuit, 19... Inductor, 20... Capacitor, 21... Voltage sensor, 22, 52, 72... Control circuit, 30, 80... Power regeneration circuit, 31, 32... Diode, 33... Capacitor, 34... Voltage sensor, 35... Inductor, 36... Diode, BH... High-voltage battery, BL... Low-voltage battery, D1~D6... Body diode, G1~G6, G11~G16, G21~G24... Control signal, L11, L21A, L21B... Voltage line, L12, L22... Reference voltage line, N1, N2, N11~N13, N21~N24, N31, N32... Node, Q1~Q6, Q11~Q16, Q21~Q24... Transistor, SW1, SW2... Switch, T11, T12, T21, T22... Terminal.

Claims

1. a first power terminal; a switching circuit connected to the first power terminal; a transformer having a first winding and a second winding led to the switching circuit; a rectifying circuit connected to the second winding and having one or more rectifying switching elements; a smoothing circuit including a first inductor having one end and the other end, and a first capacitor having one end connected to the other end of the first inductor and the other end connected to a reference node; a power regeneration circuit connected to the rectifying circuit and capable of regenerating power to the first capacitor; a control circuit capable of controlling the operations of the switching circuit, the rectifying circuit, and the power regeneration circuit; a second power terminal having a first connection terminal connected to the other end of the first inductor and one end of the first capacitor, and a second connection terminal connected to the reference node and comprising; the power regeneration circuit includes a first diode having an anode connected to the rectifying circuit and a cathode connected to a first node; a second capacitor having one end connected to the first node and the other end connected to the reference node; a first regenerative switching element having one end connected to the first node and the other end connected to a second node; a second regenerative switching element having one end connected to the second node and the other end connected to the reference node; a second inductor and a second diode provided in a path connecting the second node and one end of the first capacitor and having; the control circuit is capable of controlling the operations of the first regenerative switching element and the second regenerative switching element based on the voltage across the second capacitor a power conversion device.

2. the second winding has one end connected to the one end of the first inductor and the other end; the one or more rectifying switching elements include a first rectifying switching element having one end connected to the other end of the second winding and the other end connected to the reference node, and a second rectifying switching element having one end connected to the one end of the second winding and the other end connected to the reference node; the anode of the first diode is connected to the one end of the first rectifying switching element The power regeneration circuit further includes a third diode having an anode connected to the one end of the second rectifying switching element and a cathode connected to the first node. The power conversion device according to claim 1.

3. The control circuit is capable of controlling the operations of the switching circuit and the rectifying circuit so as to supply power from the second power terminal to the first power terminal during a predetermined period before a period of supplying power from the first power terminal to the second power terminal. is capable of changing the first rectifying switching element from an on state to an off state during the predetermined period. The power regeneration circuit is capable of charging the second capacitor by flowing a current through the first inductor, the second winding, the first diode, and the second capacitor in this order during a first period after the first rectifying switching element changes to the off state during the predetermined period. The power conversion device according to claim 2.

4. The control circuit is capable of controlling the operations of the switching circuit and the rectifying circuit so as to supply power from the second power terminal to the first power terminal during a predetermined period before a period of supplying power from the first power terminal to the second power terminal. is capable of changing the first regenerative switching element from an off state to an on state after the voltage across the second capacitor reaches a predetermined threshold voltage during the predetermined period. The power regeneration circuit is capable of charging the first capacitor by flowing a current from the second capacitor through the first regenerative switching element, the second inductor, the second diode, and the first capacitor in this order during a second period after the first regenerative switching element changes to the on state during the predetermined period. The power conversion device according to claim 2.

5. The control circuit is capable of controlling the operations of the switching circuit and the rectifying circuit so as to supply power from the second power terminal to the first power terminal during a predetermined period before a period of supplying power from the first power terminal to the second power terminal. In a third period within the predetermined period, it is possible to turn off the first regeneration switching element and turn on the second regeneration switching element. In the third period, the power regeneration circuit can charge the first capacitor by flowing current through the second inductor, the second diode, the first capacitor, and the second regeneration switching element in this order. The power conversion device according to claim 2.

6. A first battery having a first terminal and a second terminal; A capacitor having a first terminal and a second terminal; A first switch provided in a path connecting the first terminal of the first battery and the first terminal of the capacitor; A second switch provided in a path connecting the second terminal of the first battery and the second terminal of the capacitor; A power conversion device; A second battery Comprising: The power conversion device A first power terminal connected to the capacitor; A switching circuit connected to the first power terminal; A transformer having a first winding and a second winding led to the switching circuit; A rectifier circuit connected to the second winding and having one or more rectifier switching elements; A smoothing circuit including a first inductor having one end and the other end, and a first capacitor having one end connected to the other end of the first inductor and the other end connected to a reference node; A power regeneration circuit connected to the rectifier circuit and capable of regenerating power to the first capacitor; A control circuit capable of controlling the operations of the switching circuit, the rectifier circuit, and the power regeneration circuit; A first connection terminal connected to the other end of the first inductor and one end of the first capacitor, and a second connection terminal connected to the reference node, and a second power terminal connected to the second battery Comprising: The power regeneration circuit A first diode having an anode connected to the rectifier circuit and a cathode connected to a first node; A second capacitor having one end connected to the first node and the other end connected to the reference node; A first regeneration switching element having one end connected to the first node and the other end connected to a second node; A second regeneration switching element having one end connected to the second node and the other end connected to the reference node; A second inductor and a second diode provided in a path connecting the second node and the one end of the first capacitor and having the control circuit is capable of controlling operations of the first regenerative switching element and the second regenerative switching element based on a voltage in the second capacitor power conversion system.

Citation Information

Patent Citations

  • Electric power conversion system

    JP2018061381A