Resonant converter and resonant conversion circuit system
The resonant converter system addresses high voltage stress in power conversion circuits by switching between full-bridge and three-phase three-level modes, enhancing efficiency and reducing costs in electric vehicle applications.
Patent Information
- Application Number
- JP2024014110
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-02-10
- Filing Date
- 2024-02-01
- Publication Date
- 2025-10-07
- Estimated Expiration
- 2044-02-01
AI Technical Summary
Existing power conversion circuits in electric vehicles face challenges with high voltage stress on semiconductor switches, leading to increased costs and complexity, particularly in high-power applications.
A resonant converter system with a switching circuit that selectively switches the connection positions of bridge arm units, allowing operation as a full-bridge or three-phase three-level conversion circuit, reducing voltage stress and simplifying circuit structure.
The system achieves flexible voltage output and reduced power consumption while minimizing voltage stress on semiconductor switches, enabling high-power and high-density circuit designs.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to techniques for converting power sources, and more particularly to resonant converters and resonant conversion circuit systems. [Background technology]
[0002] In recent years, with the growing awareness of environmental protection, electric vehicles powered by electrical energy have become increasingly popular. Accordingly, the importance and application needs of power conversion circuits have also increased. Therefore, how to improve current power conversion circuits has become one of the important issues in this field. Summary of the Invention
[0003] The present disclosure relates to a resonant converter comprising: a first conversion circuit including a plurality of first bridge arm units and for outputting a first voltage; a resonant transformer circuit coupled to the first bridge arm units and for converting the first voltage to a second voltage; a second conversion circuit coupled to the resonant transformer circuit and including a plurality of second bridge arm units and a plurality of multi-level switching elements; and a switching circuit coupled to the second conversion circuit, wherein the switching circuit selectively switches a connection position of the second bridge arm units so that the second conversion circuit converts the second voltage to a first DC output voltage only via the second bridge arm units without via the multi-level switching elements, or so that the second conversion circuit converts the second voltage to a second DC output voltage via both the second bridge arm units and the multi-level switching elements.
[0004] The present disclosure further relates to a resonant converter system comprising: a first resonant converter including a first pre-conversion circuit that generates a first voltage based on a plurality of first pre-control signals; and a first resonant transformer circuit coupled to the first pre-conversion circuit for converting the first voltage to a second voltage; and a second resonant converter including a second pre-conversion circuit that generates a third voltage based on a plurality of second pre-control signals; and a second resonant transformer circuit coupled to the second pre-conversion circuit, used to convert the third voltage to a fourth voltage, and further coupled to the first resonant transformer circuit, wherein the first pre-control signals and the second pre-control signals are alternately turned on and off.
[0005] The present disclosure further relates to a resonant converter system including: a first resonant converter including a first pre-conversion circuit including a plurality of first pre-bridge arm units and for outputting a first voltage; a first resonant transformer circuit coupled to the first pre-bridge arm units and for converting the first voltage to a second voltage; and a first post-conversion circuit coupled to the first resonant transformer circuit and including a plurality of first post-bridge arm units; a second resonant converter including a second pre-conversion circuit including a plurality of second pre-bridge arm units and for outputting a third voltage; a second resonant transformer circuit coupled to the second pre-bridge arm units and for converting the third voltage to a fourth voltage; and a second post-conversion circuit coupled to the second resonant transformer circuit and including a plurality of second post-bridge arm units; and a state selection circuit coupled to the first resonant converter and the second resonant converter for selectively connecting the first resonant converter and the second resonant converter in series or in parallel.
[0006] The resonant converter of the present disclosure allows the conversion circuit to have different circuit structures to meet different charging and discharging requirements by selectively switching the connection positions of the bridge arm units using a switching circuit. [Brief explanation of the drawings]
[0007] [Figure 1]FIG. 1 is a schematic diagram of a resonant converter according to some embodiments of the present disclosure. [Figure 2A] FIG. 1 is an operational schematic diagram of a resonant converter according to some embodiments of the present disclosure. [Figure 2B] FIG. 1 is an operational schematic diagram of a resonant converter according to some embodiments of the present disclosure. [Figure 3] FIG. 1 is a schematic diagram of a resonant converter circuit system according to some embodiments of the present disclosure. [Figure 4] 1 is a partial schematic diagram of a resonant converter circuit system according to some embodiments of the present disclosure. FIG. [Figure 5] FIG. 2 is a voltage signal diagram of a resonant converter circuit system according to some embodiments of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0008] In the following, several embodiments of the present invention are disclosed in the drawings, and for clarity, many practical details are set forth in the following description. However, it should be understood that these practical details are not intended to limit the present invention. That is, in some embodiments of the present invention, these practical details are not necessary. In addition, in order to simplify the drawings, some conventional structures and elements are shown in simplified and schematic form in the drawings.
[0009] As used herein, when elements are referred to as being "connected" or "coupled," this may refer to an "electrical connection" or "electrical coupling." "Connected" or "coupled" may also be used to describe a combinatorial operation or interaction between two or more elements. Also, although terms such as "first," "second," ... may be used herein to describe different elements, these terms are merely used to distinguish between elements or operations described with the same technical terminology. Unless clearly indicated in the context, these terms do not specifically refer to or suggest an order or sequence, and are not intended to limit the invention.
[0010] As electric vehicles become increasingly popular, the capacity and performance of energy storage units (e.g., removable batteries) installed in electric vehicles are also constantly improving. When electric vehicle energy storage units are not installed in electric vehicles, these idle energy storage units may be used in other ways, such as as power supply units to provide household power. Similarly, charging stations (i.e., charging stations for charging electric vehicles, also known as electric vehicle supply equipment (EVSE)) can be applied to power various electronic devices.
[0011] Whether it's the energy storage unit of an electric vehicle or a charging pile, a power converter with bidirectional charging and discharging functions is installed inside. Looking at the development trend of power systems, the application requirements for power converters are high power and high output voltage. Therefore, the semiconductor switches in the power converter require higher voltage stress (voltage resistance), which leads to increased costs.
[0012] 1 is a schematic diagram of a resonant converter 100 according to some embodiments of the present disclosure. The resonant converter 100 includes a first conversion circuit 110, a resonant transformer circuit 120, a second conversion circuit 130, and a switching circuit 140. In one embodiment, the resonant converter 100 is applicable to an energy storage unit or charging pile for an electric vehicle, although the present disclosure is not limited thereto and may be applied to power converters for any application.
[0013] The first conversion circuit 110 includes a plurality of first bridge arm units BF1, BF2, and BF3. Each of the first bridge arm units BF1, BF2, and BF3 includes at least two transistor switches (TX1 to TX6 shown), and has an output node between two transistor switches (e.g., TX1 and TX2, TX3 and TX4, and TX5 and TX6) in the same first bridge arm unit BF1, BF2, and BF3. In some embodiments, the first conversion circuit 110 can receive an input voltage through a power factor correction circuit (not shown) and an input capacitor C11.
[0014] In some embodiments, the resonant converter 100 further includes a processor 160. The processor 160 is used to provide a plurality of control signals to the transistor switches TX1-TX6 in the first bridge arm units BF1, BF2, BF3, respectively, so that the transistor switches TX1-TX6 are turned on or off based on the corresponding control signals and output first voltages via their output nodes.
[0015] 1, the first conversion circuit 110 receives a DC input voltage through the input capacitor C11 of the resonant converter 100 and converts the input voltage into an AC first voltage through bridge arm units BF1, BF2, and BF3. In some embodiments, the first conversion circuit 110 may be a full-bridge conversion circuit. Since those skilled in the art understand how a full-bridge circuit works, a detailed description thereof will be omitted here.
[0016] The resonant transformer circuit 120 includes a first resonant channel 121, a three-phase transformer 122, and a second resonant channel 123. The first resonant channel 121 is respectively coupled to three output nodes of the first conversion circuit 110 and has a resonant circuit formed by multiple sets of series-connected capacitors and inductance elements for resonating the received first voltage. The three-phase transformer 122 is coupled to the first resonant channel 121 for converting (e.g., stepping up or stepping down) the first voltage to a second voltage. The second resonant channel 123 is coupled to the three-phase transformer 122 and has a resonant circuit formed by multiple sets of series-connected capacitors and inductance elements for resonating the received second voltage.
[0017] The second conversion circuit 130 is coupled to the resonant transformer circuit 120 and includes a plurality of second bridge arm units BR1, BR2, and BR3, a plurality of multi-level switching elements TA and TB, and a conversion capacitor C12. The second bridge arm units BR1, BR2, and BR3 include a plurality of bridge arm switching elements T1 to T6. The multi-level switching elements TA / TB and the bridge arm switching elements T1 to T6 may be realized by transistor switching elements, such as P-type metal oxide semiconductor field effect transistors. In some other embodiments, the multi-level switching elements TA / TB and the bridge arm switching elements T1 to T6 may be realized by N-type metal oxide semiconductor field effect transistors, bipolar junction transistors (BJTs), thin film transistors (TFTs), or other types of switching elements.
[0018] In some embodiments, the processor 160 provides a plurality of control signals to the bridge arm switching elements T1-T6 and the multi-level switching elements TA, TB in the second bridge arm units BR1, BR2, BR3, respectively, such that the bridge arm switching elements T1-T6 and the multi-level switching elements TA, TB are turned on or off based on the corresponding control signals.
[0019] The switching circuit 140 is coupled to the second conversion circuit 130 to selectively switch the connection positions of the second bridge arm units BR1, BR2, and BR3 (e.g., by controlling the on or off of multiple switching elements). As shown in FIG. 1, the switching circuit 140 can couple both ends of these second bridge arm units BR1, BR2, and BR3 to the multilevel switching elements TA and TB, or the switching circuit 140 can form a short-circuit path between both ends of these second bridge arm units BR1, BR2, and BR3 and the output end of the resonant converter 100. This allows the second conversion circuit 130 to be switched to operate with different circuit architectures.
[0020] Based on the above, when both ends of these second bridge arm units BR1, BR2, BR3 are coupled to the multilevel switching elements TA, TB by the switching circuit 140, the second conversion circuit 130 can convert the second voltage into the first DC output voltage only through the second bridge arm units BR1, BR2, BR3 without passing through the multilevel switching elements TA, TB. In other words, in this case, the multilevel switching elements TA, TB do not operate in cooperation with the second bridge arm units BR1, BR2, BR3.
[0021] On the other hand, when the switching circuit 140 forms a short-circuit path between both ends of the second bridge arm units BR1, BR2, BR3 and the output end of the resonant converter 100, the second conversion circuit 130 converts the second voltage into a second DC output voltage greater than the first DC output voltage through both the second bridge arm units BR1, BR2, BR3 and the multilevel switching elements TA, TB.
[0022] In one embodiment, the resonant converter 100 further includes a voltage divider circuit 150. The voltage divider circuit 150 is coupled to the second conversion circuit 130 and includes a plurality of voltage divider capacitors C13 and C14 for providing the first DC output voltage or the second DC output voltage generated by the second conversion circuit 130 to the load LD. In addition, the conversion capacitor C12 may be a flying capacitor for balancing the voltages of the voltage divider capacitors C13 and C14.
[0023] 2A and 2B are schematic diagrams illustrating operation modes of a resonant converter 100 according to some embodiments of the present disclosure. In one embodiment, the switching circuit 140 includes first shorting switching elements W11 and W12. The first shorting switching elements W11 and W12 are selectively turned on or off based on control signals provided by the processor 160. One end of the first shorting switching element W11 is coupled to the positive output terminal of the resonant converter 100 (or one end of the voltage divider circuit 150). The other end of the first shorting switching element W11 is coupled to one end of the second bridge arm units BR1, BR2, and BR3. One end of the first shorting switching element W12 is coupled to the other end of the second bridge arm units BR1, BR2, and BR3. The other end of the first shorting switching element W12 is coupled to the negative output terminal of the resonant converter 100 (or the other end of the voltage divider circuit 150). When the first short-circuit switching elements W11 and W12 are turned on, a short-circuit path is formed, so that no voltage or current flows through the multilevel switching elements TA and TB.
[0024] 2A, in one embodiment, when both ends of the second bridge arm units BR1, BR2, and BR3 are coupled to the output end of the resonant converter via a short-circuit path formed by the switching circuit 140 (the first short-circuiting switching elements W11 and W12 are turned on, but the second short-circuiting switching element W13 is turned off), the second bridge arm units BR1, BR2, and BR3 are used as a full-bridge circuit 210 for converting the second voltage into a first DC output voltage. In this case, the voltage stress applied to each of the bridge arm switching elements T1 to T6 in the second conversion circuit 130 is equal to the voltage output by the second conversion circuit 130 (the first DC output voltage).
[0025] In one embodiment, the switching circuit 140 further includes a second short-circuiting switching element W13. The second short-circuiting switching element W13 is selectively turned on or off based on a control signal provided by the processor 160. One end of the second short-circuiting switching element W13 is coupled between one bridge arm switching element (e.g., bridge arm switching elements T5 and T6) of the second bridge arm units BR1, BR2, and BR3. The other end of the second short-circuiting switching element W13 is coupled to a node between the voltage-dividing capacitors C13 and C14.
[0026] As shown in FIG. 2B , in some embodiments, when both ends of the second bridge arm units BR1, BR2, BR3 are coupled to the output end of the resonant converter via multi-level switching elements TA, TB (i.e., the first short-circuiting switching elements W11, W12 are turned off, but the second short-circuiting switching element W13 is turned on), the second bridge arm units BR1, BR2, BR3 and the multi-level switching elements TA, TB form a three-phase three-level conversion circuit 220 to convert the second voltage into a second DC output voltage.
[0027] 2B, when the second conversion circuit 130 operates as a three-phase three-level conversion circuit, the second DC output voltage output thereby is higher than the first DC output voltage (for example, twice the first DC output voltage). In addition, both ends of the second bridge arm units BR1, BR2, and BR3 are coupled to the multilevel switching elements TA and TB to operate in cooperation with each other, and the intermediate node of at least one second bridge arm unit (for example, BR3) is coupled between the voltage dividing capacitors C13 and C14. Therefore, when the second conversion circuit 130 converts the voltage, the voltage stress experienced by each bridge arm switching element T1 to T6 and the multilevel switching elements TA and TB is small (for example, the voltage stress is half that of a full-bridge circuit).
[0028] The shorting switches W11 / W12 / W13 may be implemented by transistor switches such as P-type metal oxide semiconductor field effect transistors, etc. In some other embodiments, the shorting switches W11 / W12 / W13 may be implemented by N-type metal oxide semiconductor field effect transistors, bipolar junction transistors (BJTs), thin film transistors (TFTs), or other types of switching elements.
[0029] In the above-described embodiment, the resonant converter 100 receives an input voltage via the first conversion circuit 110 and generates an output voltage via the second conversion circuit 130. However, in other embodiments, the resonant converter 100 may receive an input voltage via the second conversion circuit 130 and generate an output voltage via the first conversion circuit 110. In other words, the resonant converter 100 is a bidirectional resonant circuit whose input / output terminals are interchangeable as required.
[0030] In the present disclosure, the switching circuit 140 selectively switches the connection positions of the second bridge arm units BR1, BR2, and BR3 so that both ends of the second bridge arm units BR1, BR2, and BR3 are coupled to the output end of the resonant converter 100 via a short-circuit path, or so that both ends of the second bridge arm units BR1, BR2, and BR3 are coupled to the output end of the resonant converter 100 via multi-level switching elements TA and TB. This allows for flexible response to different charging and discharging requirements. For example, when the second conversion circuit 130 is applied to a load with a high operating voltage, the switching circuit 140 can adjust the second conversion circuit 130 to a three-phase three-level conversion circuit 220 to receive / output a high voltage and reduce the voltage stress experienced by each transistor element in the second conversion circuit 130. On the other hand, when the second conversion circuit 130 is applied to a load with a normal operating voltage, the switching circuit 140 can adjust the second conversion circuit 130 to a full-bridge circuit 210 to receive / output a normal voltage and reduce power consumption.
[0031] Typically, three-phase, three-level conversion circuits have the drawbacks of requiring a large number of power elements and being large in volume, making it difficult to design them as high-density circuits. The present disclosure combines multiple multilevel switching elements TA and TB into a full-bridge circuit architecture using a switching circuit 140. This not only simplifies the circuit structure, but also allows the second conversion circuit 130 to have different circuit structures, which can be switched as needed depending on usage needs, achieving, for example, a wide voltage output range and a wide load range.
[0032] 1, each switching element (e.g., the transistor switching elements TX1-TX6 of the first bridge arm units BF1-BF3, the bridge arm switching elements T1-T6 of the second bridge arm units BR1-BR3, the multilevel switching elements TA-TB, and the short-circuiting switching elements W11-W13) is controlled by a processor 160. In other words, the processor 160 is coupled to the first conversion circuit 110, the second conversion circuit 130, and the switching circuit 140. As will be understood by those skilled in the art, since the first conversion circuit 110 and the second conversion circuit 130 are electrically isolated by the resonant transformer circuit 120, the processor 160 needs to provide corresponding isolation processes for the different control signals provided to the first conversion circuit 110, the second conversion circuit 130, and the switching circuit 140, and the isolation processes will not be described here.
[0033] In addition, in one embodiment, the processor 160 may be connected to the load LD to detect the electrode voltage of the load LD. Since the electrode voltage of the load LD reflects the power supply capability or charging requirement of the load LD, the processor 160 can generate a detection signal by detecting the load LD, and control the switching circuit 140 according to the detection signal to switch the connection positions of both ends of the second bridge arm units BR1 to BR3.
[0034] 3 is a schematic diagram illustrating a resonant converter circuit system 300 according to some embodiments of the present disclosure. The resonant converter circuit system 300 includes a first resonant converter 310 and a second resonant converter 320.
[0035] The first resonant converter 310 includes a first pre-conversion circuit 311, a first resonant transformer circuit 312, and a first post-conversion circuit 313. In this embodiment, the structure of the first resonant converter 310 may be the same as that of the resonant converter 100 shown in FIG. 1. That is, the first pre-conversion circuit 311 may be the first conversion circuit 110 shown in FIG. 1 and includes a plurality of first pre-bridge arm units, such as the first bridge arm units BF1 to BF3 shown in FIG. 1. The first resonant transformer circuit 312 is the resonant transformer circuit 120 shown in FIG. 1. The first post-conversion circuit 313 may be the second conversion circuit 130 shown in FIG. 1 and includes a plurality of first post-bridge arm units, such as the second bridge arm units BR1 to BR3 shown in FIG. 1.
[0036] Similarly, the structure of the second resonant converter 320 may be the same as that of the resonant converter 100 shown in Figure 1. That is, the second pre-conversion circuit 321 may be the first conversion circuit 110 shown in Figure 1 and includes a plurality of second pre-bridge arm units, such as the first bridge arm units BF1 to BF3 shown in Figure 1. The second resonant transformer circuit 322 is the resonant transformer circuit 120 shown in Figure 1. The second post-conversion circuit 323 may be the second conversion circuit 130 shown in Figure 1 and includes a plurality of second post-bridge arm units, such as the second bridge arm units BR1 to BR3 shown in Figure 1.
[0037] In some embodiments, the resonant converter circuit system 300 further includes a processor (not shown in FIG. 3 ) for providing control signals to control multiple switching elements in the first resonant converter 310 and the second resonant converter 320, respectively. Specifically, the first pre-conversion circuit 311 is used to generate a first voltage based on the multiple first pre-control signals, and the first resonant transformer circuit 312 further converts the first voltage to a second voltage. The second pre-conversion circuit 321 generates a third voltage based on the multiple second pre-control signals, and the second resonant transformer circuit 322 further converts the third voltage to a fourth voltage.
[0038] In some embodiments, the first resonant transformer circuit 312 and the second resonant transformer circuit 322 are coupled to each other, for example, first portions of the multiple secondary windings in the first resonant transformer circuit 312 are coupled to each other, first portions of the multiple secondary windings in the second resonant transformer circuit 322 are also coupled to each other, and second portions of the multiple secondary windings in the first resonant transformer circuit 312 are coupled to second portions of the multiple secondary windings in the second resonant transformer circuit 322.
[0039] Based on the above, in an embodiment in which the first resonant transformer circuit 312 and the second resonant transformer circuit 322 are coupled to each other, the first pre-control signal and the second pre-control signal are interleaved, i.e., the same transistor switching elements (TX1 shown in FIG. 1) at corresponding positions in the first pre-conversion circuit 311 and the second pre-conversion circuit 321 are controlled to opposite states (i.e., one is turned on and the other is turned off).
[0040] Similarly, the first post-conversion circuit 313 converts the second voltage to a DC output voltage based on a plurality of first post-control signals. The second post-conversion circuit 323 converts the fourth voltage to a DC output voltage based on a plurality of second post-control signals. The first and second post-control signals are alternately turned on and off to enable the first resonant converter 310 and the second resonant converter 320 to operate in cooperation.
[0041] 4 is a schematic diagram illustrating a first resonant transformer circuit 312 and a second resonant transformer circuit 322 according to some embodiments of the present disclosure. The first resonant transformer circuit 312 includes a plurality of primary windings WP11, WP12, and WP13 and a plurality of secondary windings, each of which also includes a first sub-winding (WS11, WS13, and WS15 as shown) and a second sub-winding (WS12, WS14, and WS16 as shown). Similarly, the second resonant transformer circuit 322 includes a plurality of primary windings WP21, WP22, and WP23 and a plurality of secondary windings, each of which also includes a first sub-winding (WS21, WS23, and WS25 as shown) and a second sub-winding (WS22, WS24, and WS26 as shown).
[0042] First portions of the multiple secondary windings in the first resonant transformer circuit 312 are coupled to each other, first portions of the multiple secondary windings in the second resonant transformer circuit 322 are also coupled to each other, and second portions of the multiple secondary windings in the first resonant transformer circuit 312 and the second resonant transformer circuit 322 are coupled to each other, so that the voltages in the first resonant transformer circuit 312 and the second resonant transformer circuit 322 are superimposed on each other by on-off (interleaving), making the voltages output by the first resonant transformer circuit 312 and the second resonant transformer circuit 322 higher.
[0043] 4, specifically, the same corresponding ends (e.g., negative poles, winding ends in the opposite direction, winding ends with a negative-phase magnetomotive force) of the primary windings WP11 to WP13 of the first resonant transformer circuit 312 are coupled to each other. Similarly, the same corresponding ends (e.g., positive poles, winding ends in the same direction, winding ends with a positive-phase magnetomotive force) of the primary windings WP21 to WP23 of the second resonant transformer circuit 322 are coupled to each other.
[0044] In FIG. 4, locations labeled with the same nodes N1 to N6 represent mutual coupling. In some embodiments, one end (e.g., positive pole) of the first sub-windings WS11 / WS13 / WS15 of the first resonant transformer circuit 312 is coupled to the first post-conversion circuit 313 via a resonant groove. The other end (e.g., negative pole) of the first sub-windings WS11 / WS13 / WS15 of the first resonant transformer circuit 312 is respectively coupled to one secondary winding of the second resonant transformer circuit 322, and the coupling locations alternate (i.e., the positive pole is coupled to the negative pole). For example, the first sub-winding WS11 is coupled to the first sub-winding WS21 via node N1, the first sub-winding WS13 is coupled to the first sub-winding WS23 via node N3, and the first sub-winding WS15 is coupled to the first sub-winding WS25 via node N5.
[0045] In some embodiments, one end (e.g., positive pole) of the second sub-windings WS12 / WS14 / WS16 of the first resonant transformer circuit 312 is coupled to each other. The other end (e.g., negative pole) of the second sub-windings WS12 / WS14 / WS16 of the first resonant transformer circuit 312 is coupled to another secondary winding of the second resonant transformer circuit 322, and the coupling positions alternate (i.e., the positive pole is coupled to the negative pole). For example, the second sub-winding WS12 is coupled to the second sub-winding WS22 via node N2, the second sub-winding WS14 is coupled to the second sub-winding WS24 via node N4, and the second sub-winding WS16 is coupled to the second sub-winding WS26 via node N6.
[0046] 5 is a schematic diagram illustrating voltage signals of a resonant transformer circuit system according to some embodiments of the present disclosure, assuming that the coil ratio between the primary winding and the secondary winding in the first resonant transformer circuit 312 and the second resonant transformer circuit 322 is 1:1. The voltage waveform in FIG. 5 includes an induced voltage VP1 in the primary winding WP11 and an induced voltage VP2 in the primary winding WP21, and a voltage VTA is the induced voltage at nodes N1 and N2. Furthermore, because the first resonant transformer circuit 312 and the second resonant transformer circuit 322 are interleaved, the output voltage Vout of the secondary winding in the first resonant transformer circuit 312 may be equal to the voltage difference between nodes Na and Nb. Since the induced voltages VP1 and VP2 alternately turn on and off and the secondary windings of the first resonant transformer circuit 312 and the second resonant transformer circuit 322 are coupled to each other via nodes N1 and N2, the output voltage Vout is the sum of the induced voltages at node N1 of the first resonant transformer circuit 312 and the second resonant transformer circuit 322.
[0047] 3, in some embodiments, the resonant converter circuit system 300 further includes a state selection circuit 330. The state selection circuit 330 is coupled to the first resonant converter 310 and the second resonant converter 320, respectively, for selectively connecting the first resonant converter 310 and the second resonant converter 320 in series or connecting the first resonant converter 310 and the second resonant converter 320 in parallel (e.g., by controlling the on or off of multiple switching elements).
[0048] In some embodiments, the state selection circuit 330 includes a series switching device W31. The series switching device W31 is coupled between the first resonant converter 310 and the second resonant converter 320. The first post-conversion circuit 313 is coupled to the positive output Np of the resonant conversion circuit system 300 and a first end of the series switching device W31. The second post-conversion circuit 323 is coupled to the negative output Nn of the resonant conversion circuit system 300 and a second end of the series switching device W31.
[0049] In some embodiments, the state selection circuit 330 includes a first parallel switching element W32 and a second parallel switching element W33. The first parallel switching element W32 is coupled between a first end of the series switching element W31 and the negative output terminal Nn. The second parallel switching element W33 is coupled between a second end of the series switching element W31 and the positive output terminal Np.
[0050] Thus, when the series switching device W31 is turned on but the parallel switching devices W32 and W33 are turned off, the first resonant converter 310 and the second resonant converter 320 are connected in series with each other (abbreviated as "series mode"). Conversely, when the series switching device W31 is turned off but the parallel switching devices W32 and W33 are turned on, the first resonant converter 310 and the second resonant converter 320 are connected in parallel with each other (abbreviated as "parallel mode"). In series mode, the resonant conversion circuit system 300 can provide a large voltage, and in parallel mode, the resonant conversion circuit system 300 can provide a large current. Under the control of the state selection circuit 330, the resonant conversion circuit system 300 can charge and discharge in different modes depending on application needs and load conditions.
[0051] In the embodiment shown in FIG. 3, the first resonant converter 310 and / or the second resonant converter 320 may include the switching circuit 140 shown in FIG. 1. That is, the switching circuit of the first resonant converter 310 may be coupled to the first post-conversion circuit 313 to selectively switch the connection position of the first post-bridge arm unit. This allows the first post-conversion circuit 313 to convert the second voltage to the first DC output voltage only via the first post-bridge arm unit without via the first multilevel switching element (multilevel switching elements TA and TB shown in FIG. 1). Alternatively, the first post-conversion circuit 313 can convert the second voltage to the second DC output voltage via both the first post-bridge arm unit and the first multilevel switching element.
[0052] In the above-described embodiment, the resonant conversion circuit system 300 receives the input voltage via the first pre-conversion circuit 311 and the second pre-conversion circuit 321, but in other embodiments, the resonant converter 100 may receive the input voltage via the first post-conversion circuit 313 and the second post-conversion circuit 323. In other words, the resonant conversion circuit system 300 is a bidirectional resonant circuit system in which the input / output terminals are interchangeable as required.
[0053] In the above-described embodiments of the present disclosure, the resonant converter 100 shown in FIG. 1 is combined with a switching circuit 140, or the resonant transformer circuits of multiple resonant converters 310, 320 are combined, or the resonant converters 310, 320 are combined with a state selection circuit 330. The above-described three application methods can be combined with each other, but their respective features can be applied independently. For example, a resonant converter may combine the resonant transformer circuits of multiple resonant converters but may not have a state selection circuit. Similarly, multiple resonant converters may switch between series and parallel modes by a state selection circuit, but may not have multiple resonant transformer circuits combined.
[0054] The elements, method steps or technical features in the above-described embodiments can be combined with each other and are not limited to the literal order of description in this disclosure or the order of appearance in the drawings.
[0055] Although the present disclosure has been disclosed as above by way of embodiments, it is not limited to these embodiments, and those skilled in the art may make various changes and modifications without departing from the spirit and scope of the present disclosure. Therefore, the scope of protection of the present disclosure is determined by the content specified in the following claims. [Explanation of symbols]
[0056] 100 Resonant Converter 110 First conversion circuit 120 Resonant transformer circuit 121 1st resonance groove 122 Three-phase transformer 123 2nd resonance groove 130 Second conversion circuit 140 Switching Circuits 150 Voltage divider circuit 160 processors 210 Full-bridge circuit 220 Three-phase three-level conversion circuit C11 Input capacitor C12 Conversion capacitor C13 voltage dividing capacitor C14 voltage divider capacitor BF1~BF3 1st Bridge Arm Unit BR1~BR3 Second bridge arm unit TX1~TX6 Transistor switching elements T1~T6 Bridge arm switching elements TA, TB multilevel switching elements W11, W12 First short-circuit switching element W13 Second short-circuit switching element LD load 300 Resonant Conversion Circuit System 310 First Resonant Converter 311 First pre-conversion circuit 312 First resonant transformer circuit 313 First Post-Conversion Circuit 320 Second Resonant Converter 321 Second pre-conversion circuit 322 Second resonant transformer circuit 323 Second Post-Conversion Circuit 330 State selection circuit W31 Series switching element W32 1st parallel switching element W33 Second parallel switching element Np positive output terminal Nn Negative output terminal WP11~WP13, WP21~WP23 Primary winding WS11, WS13, WS15, WS21, WS23, WS25 First sub-winding WS12, WS14, WS16, WS22, WS24, WS26 Second sub-winding N1~N6, Na, Nb nodes VP1, VP2 induced voltage VTA voltage Vout Output voltage
Claims
1. a first conversion circuit including a plurality of first bridge arm units and for outputting a first voltage; a resonant transformer circuit coupled to the first bridge arm unit for transforming the first voltage into a second voltage; a second conversion circuit coupled to the resonant transformer circuit, the second conversion circuit including a plurality of second bridge arm units and a plurality of multi-level switching elements; a switching circuit coupled to the second conversion circuit; Equipped with the switching circuit selectively switches a connection position of the second bridge arm unit so that the second conversion circuit converts the second voltage into a first DC output voltage only via the second bridge arm unit without via the multilevel switching element, or so that the second conversion circuit converts the second voltage into a second DC output voltage via both the second bridge arm unit and the multilevel switching element.
2. The switching circuit a plurality of first short-circuit switching elements coupled to both ends of the plurality of second bridge arm units; a second short-circuit switching element coupled between a plurality of bridge arm switching elements of at least one second bridge arm unit among the plurality of second bridge arm units; 2. The resonant converter of claim 1, comprising:
3. a voltage divider circuit coupled to the second conversion circuit and including a plurality of voltage divider capacitors; 3. The resonant converter of claim 2, wherein the first shorting switching elements are coupled to both ends of the voltage divider circuit, and the second shorting switching element is coupled to the voltage divider capacitor.
4. 2. The resonant converter according to claim 1, wherein the switching circuit selectively switches a connection position of the second bridge arm unit so that a short-circuit path formed by the second bridge arm unit and the switching circuit is coupled to an output end of the resonant converter, or so that both ends of the second bridge arm unit are coupled to the output end of the resonant converter by the multilevel switching element.
5. 5. The resonant converter according to claim 4, wherein when both ends of the second bridge arm unit are coupled to the output terminal of the resonant converter by the multi-level switching element, the second bridge arm unit and the multi-level switching element are used as a three-phase three-level conversion circuit.
6. 6. The resonant converter according to claim 5, wherein when the short-circuit path formed by the second bridge arm unit and the switching circuit is coupled to the output end of the resonant converter, the second bridge arm unit is used as a full-bridge circuit.
7. 2. The resonant converter according to claim 1, further comprising a processor coupled to the switching circuit and adapted to detect an electrode voltage of a load to generate a detection signal, and adapted to control the switching circuit based on the detection signal to switch the connection position of the second bridge arm unit.
8. a first resonant converter including: a first pre-conversion circuit that generates a first voltage based on a plurality of first pre-control signals; and a first resonant transformer circuit that is coupled to the first pre-conversion circuit and that converts the first voltage into a second voltage; a second resonant converter including: a second pre-conversion circuit that generates a third voltage based on a plurality of second pre-control signals; and a second resonant transformer circuit that is coupled to the second pre-conversion circuit and used to convert the third voltage into a fourth voltage, and that is further coupled to the first resonant transformer circuit; Equipped with The first pre-control signal and the second pre-control signal are alternately turned on and off, the first resonant converter further includes a first post-conversion circuit coupled to the first resonant transformer circuit; the first resonant transformer circuit includes a plurality of first primary windings and a plurality of first secondary windings, and the second resonant transformer circuit includes a plurality of second primary windings and a plurality of second secondary windings; one of the plurality of first secondary windings further includes a first sub-winding; The first sub-winding has one end coupled to the first post-transformation circuit and the other end coupled to one of the plurality of second secondary windings.
9. The first post-conversion circuit converts the second voltage based on a plurality of first post-control signals; the second resonant converter further includes a second post-transformation circuit coupled to the second resonant transformer circuit and configured to transform the fourth voltage based on a plurality of second post-control signals; 9. The resonant conversion circuit system according to claim 8, wherein the first post-control signal and the second post-control signal are alternately turned on and off.
10. the one of the plurality of first secondary windings further includes a plurality of second sub-windings; 9. The resonant converter circuit system according to claim 8, wherein the second sub-windings are coupled to each other at one end and to the other one of the second secondary windings at the other end.
11. 9. The resonant converter circuit system according to claim 8, wherein one end of the first primary winding is coupled to one another.
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