A high-power high-voltage direct-current converter and a control method thereof
By combining a three-phase bridge inverter circuit, a three-phase resonant circuit, and a three-phase transformer, along with frequency conversion and three-phase phase shift control, the problem of low ripple and low device stress in existing high-voltage DC converters is solved, meeting the high-voltage power supply requirements of industrial microwave devices and reducing costs and complexity.
Patent Information
- Application Number
- CN202511425856.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-30
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2045-09-30
AI Technical Summary
Existing high-voltage DC converters are unable to achieve high-power high-voltage DC power conversion with low ripple and low device voltage and current stress, and cannot meet the application requirements of industrial microwave devices.
It adopts a combination of a three-phase bridge inverter circuit, a three-phase resonant circuit, a three-phase transformer, and a three-phase voltage multiplier rectifier circuit, combined with a hybrid control strategy of frequency conversion and three-phase phase shifting. By using parallel positive and negative symmetrical three-phase voltage multiplier modules and three-phase interleaved input characteristics, it reduces the output ripple frequency and adapts to the rated voltage requirements of different types of magnetrons through frequency conversion voltage regulation and phase shift voltage regulation.
It achieves low ripple and high-voltage power output quality, reduces device voltage stress, reduces the amount of magnetic components and bus capacitors, lowers hardware costs and control complexity, and is suitable for high-power energy transmission scenarios.
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Figure CN120915147B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of high-voltage direct current converters, in particular to a high-power high-voltage direct current converter and a control method thereof. BACKGROUND
[0002] Microwave heating technology is widely used in high-quality material preparation, food processing and other industries. The core equipment of industrial microwave device relies on high-voltage electric field power supply, and different types of magnetrons have large differences in rated voltage demand of power supply. At the same time, the power supply requires low output ripple and high power. Therefore, a wide range of low-ripple output high-power high-voltage direct current converter is essential.
[0003] In the research of the prior art, the following obvious deficiencies are found: the traditional high-voltage electric field power supply adopts a power frequency step-up transformer, which has a large volume, an uncontrollable output voltage and a large ripple; although the switching LCC resonant converter can reduce the size of magnetic components and realize soft switching by increasing the switching frequency, it is mainly used in small and medium power occasions, and in high-power scenarios, modules need to be connected in parallel, which faces the problems of current sharing difficulty, high cost and complex control. In the commonly used voltage doubling rectifier circuit, the Dickson voltage doubling rectifier circuit has strong load capacity, but the voltage of the last stage capacitor is high, which is not suitable for high-voltage output. The CW voltage doubling rectifier circuit has low device voltage stress but high output ripple. Both of them cannot balance low device stress and low ripple.
[0004] The Chinese utility model patent with the authorized publication number CN201893698U discloses a high-voltage wide-output direct current conversion device, which meets the wide-range output demand to some extent, but its performance in low-ripple output and other aspects is not good.
[0005] In summary, the current conventional high-voltage direct current converter cannot realize low-ripple, low-device voltage and current stress high-power high-voltage direct current energy conversion, and cannot meet the application requirements of industrial microwave devices. Therefore, the related technical breakthrough has become an industry difficulty. SUMMARY
[0006] The main purpose of the present application is to provide a high-power high-voltage direct current converter and a control method thereof, which aims to solve the technical problems that the prior art cannot realize low-ripple, low-device voltage and current stress high-power high-voltage direct current energy conversion, and cannot meet the high-power application requirements of industrial microwave devices.
[0007] To achieve the above purpose, the present application provides a high-power high-voltage direct current converter, which comprises a three-phase bridge inverter circuit, a three-phase resonant circuit, a three-phase transformer and a three-phase voltage doubling rectifier circuit.
[0008] The input end of the three-phase bridge inverter circuit is connected with an external DC power supply, the output end of the three-phase bridge inverter circuit is connected with the input end of the three-phase resonant circuit, the output end of the three-phase resonant circuit is connected with the input end of the three-phase transformer, the output end of the three-phase transformer is connected with the input end of the three-phase voltage doubling rectifier circuit, the three-phase voltage doubling rectifier circuit is provided with two three-phase voltage doubling modules which are structurally positive and negative symmetrical, and the output end of the three-phase voltage doubling rectifier circuit is connected with an external load.
[0009] Preferably, the three-phase voltage doubling rectifier circuit is provided with two three-phase voltage doubling modules which are structurally positive and negative symmetrical, specifically:
[0010] The three-phase voltage doubling rectifier circuit is provided with a first three-phase voltage doubling module and a second three-phase voltage doubling module, and the first three-phase voltage doubling module and the second three-phase voltage doubling module are structurally positive and negative symmetrical.
[0011] The input end of the first three-phase voltage doubling module and the input end of the second three-phase voltage doubling module are connected in parallel to form the input end of the three-phase voltage doubling rectifier circuit, the input end of the first three-phase voltage doubling module is formed by the first end of a first support capacitor, the first end of a second support capacitor, the first end of a third support capacitor and the first end of a first bus capacitor, and the input end of the second three-phase voltage doubling module is formed by the first end of a fourth support capacitor, the first end of a fifth support capacitor, the first end of a sixth support capacitor and the first end of a second bus capacitor.
[0012] The output end of the first three-phase voltage doubling module and the output end of the second three-phase voltage doubling module are connected in series to form the output end of the three-phase voltage doubling rectifier circuit, the output end of the first three-phase voltage doubling module is formed by the cathode of a fourth diode, the cathode of a fifth diode, the cathode of a sixth diode and the second end of the first bus capacitor, and the output end of the second three-phase voltage doubling module is formed by the anode of a twelfth diode, the anode of an eleventh diode, the anode of a tenth diode and the second end of the second bus capacitor.
[0013] Preferably, the first three-phase voltage doubling module is provided with at least one first three-phase voltage doubling unit, and the first three-phase voltage doubling unit comprises a first diode, a second diode, a third diode, a fourth diode, a fifth diode, a sixth diode, a first support capacitor, a second support capacitor, a third support capacitor and a first bus capacitor.
[0014] The first end of the first support capacitor is connected with the A-phase output end of the three-phase transformer, the second end of the first support capacitor is connected with the cathode of the first diode, the anode of the first diode is connected with the first end of the first bus capacitor, the second end of the first support capacitor is also connected with the anode of the fourth diode, the cathode of the fourth diode is connected with the second end of the first bus capacitor.
[0015] the first end of the second support capacitor is connected with the B-phase output end of the three-phase transformer, the second end of the second support capacitor is connected with the cathode of the second diode, the anode of the second diode is connected with the first end of the first bus capacitor, the second end of the second support capacitor is also connected with the anode of the fifth diode, and the cathode of the fifth diode is connected with the second end of the first bus capacitor;
[0016] the first end of the third support capacitor is connected with the C-phase output end of the three-phase transformer, the second end of the third support capacitor is connected with the cathode of the third diode, the anode of the third diode is connected with the first end of the first bus capacitor, the second end of the third support capacitor is also connected with the anode of the sixth diode, and the cathode of the sixth diode is connected with the second end of the first bus capacitor;
[0017] the anode of the first diode, the anode of the second diode, the anode of the third diode and the first end of the first bus capacitor are all connected with the neutral output end of the three-phase transformer;
[0018] the second three-phase voltage doubling module is provided with at least one second three-phase voltage doubling unit, and the second three-phase voltage doubling unit comprises a seventh diode, an eighth diode, a ninth diode, a twelfth diode, an eleventh diode, a tenth diode, a fourth support capacitor, a fifth support capacitor, a sixth support capacitor and a second bus capacitor;
[0019] the first end of the fourth support capacitor is connected with the A-phase output end of the three-phase transformer, the second end of the fourth support capacitor is connected with the anode of the seventh diode, the cathode of the seventh diode is connected with the first end of the second bus capacitor, the second end of the fourth support capacitor is also connected with the cathode of the twelfth diode, and the anode of the twelfth diode is connected with the second end of the second bus capacitor;
[0020] the first end of the fifth support capacitor is connected with the B-phase output end of the three-phase transformer, the second end of the fifth support capacitor is connected with the anode of the eighth diode, the cathode of the eighth diode is connected with the first end of the second bus capacitor, the second end of the fifth support capacitor is also connected with the cathode of the eleventh diode, and the anode of the eleventh diode is connected with the second end of the second bus capacitor;
[0021] The first end of the sixth support capacitor is connected with the C-phase output end of the three-phase transformer, the second end of the sixth support capacitor is connected with the anode of the ninth diode, the cathode of the ninth diode is connected with the first end of the second bus capacitor, the second end of the sixth support capacitor is also connected with the cathode of the tenth diode, the anode of the tenth diode is connected with the second end of the second bus capacitor;
[0022] The cathode of the seventh diode, the cathode of the eighth diode, the cathode of the ninth diode and the first end of the second bus capacitor are all connected with the neutral output end of the three-phase transformer.
[0023] As preferred, the number of the three-phase voltage doubling units provided by the three-phase voltage doubling module is determined based on the actual output voltage demand.
[0024] As preferred, when the number of the three-phase voltage doubling units provided by the first three-phase voltage doubling module is greater than one, the connection relationship between the multiple three-phase voltage doubling units is as follows:
[0025] The first end of the first support capacitor of the next three-phase voltage doubling unit is connected with the second end of the first support capacitor of the previous three-phase voltage doubling unit, the cathode of the first diode and the anode of the fourth diode;
[0026] The first end of the second support capacitor of the next three-phase voltage doubling unit is connected with the second end of the second support capacitor of the previous three-phase voltage doubling unit, the cathode of the second diode and the anode of the fifth diode;
[0027] The first end of the third support capacitor of the next three-phase voltage doubling unit is connected with the second end of the third support capacitor of the previous three-phase voltage doubling unit, the cathode of the third diode and the anode of the sixth diode;
[0028] The first end of the first bus capacitor of the next three-phase voltage doubling unit is connected with the second end of the first bus capacitor of the previous three-phase voltage doubling unit, the cathode of the fourth diode, the cathode of the fifth diode and the cathode of the sixth diode;
[0029] When the number of the three-phase voltage doubling units provided by the second three-phase voltage doubling module is greater than one, the connection relationship between the multiple three-phase voltage doubling units is as follows:
[0030] The first end of the fourth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the fourth support capacitor of the previous three-phase voltage doubling unit, the anode of the seventh diode and the cathode of the twelfth diode;
[0031] The first end of the fifth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the fifth support capacitor of the previous three-phase voltage doubling unit, the anode of the eighth diode and the cathode of the eleventh diode;
[0032] The first end of the sixth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the sixth support capacitor of the previous three-phase voltage doubling unit, the anode of the ninth diode and the cathode of the tenth diode;
[0033] The first end of the second bus capacitor of the next three-phase voltage doubling unit is connected with the second end of the second bus capacitor of the previous three-phase voltage doubling unit, the cathode of the twelfth diode, the cathode of the eleventh diode and the anode of the tenth diode.
[0034] Preferably, in the no-load state:
[0035] The voltage stress of all capacitors in the three-phase voltage doubling rectifier circuit is less than or equal to 1 / (2n) of the total output voltage, and the voltage stress of all diodes is less than or equal to 1 / (2n) of the total output voltage;
[0036] The primary winding voltage of the three-phase transformer is less than or equal to 1 / (4n) of the total output voltage, and the secondary winding voltage of the three-phase transformer is less than or equal to 1 / (4n) of the total output voltage;
[0037] Wherein, n is the number of the three-phase voltage doubling units in a single three-phase voltage doubling module.
[0038] To achieve the above object, the application further discloses a control method of a high-power high-voltage DC converter, which is applied to the high-power high-voltage DC converter and comprises the following steps:
[0039] S1: setting the switching frequency working range of the three-phase bridge inverter circuit as the maximum switching frequency to the minimum switching frequency, and setting the switching phase difference adjustment range between the three bridge arms of the three-phase bridge inverter circuit as 0°~120°;
[0040] S2: when the actual output voltage demand is greater than the critical voltage value, determining that it is a high-voltage output working condition and performing S3; when the actual output voltage demand is less than or equal to the critical voltage value, determining that it is a low-voltage output working condition and performing S4;
[0041] S3: fixing the switching phase difference between the three bridge arms as 120°, and adjusting the switching frequency in the range from the maximum switching frequency to the minimum switching frequency to match the actual output voltage demand;
[0042] S4: the fixed switching frequency is the maximum switching frequency, and the switching phase difference among the three bridge arms is adjusted to change in the range of 0°~120° to match the actual output voltage demand.
[0043] As a preference, the critical voltage value is the output voltage when the three-phase bridge inverter circuit operates at the switching frequency of the maximum switching frequency and the switching phase difference among the three bridge arms is 120°.
[0044] As a preference, the minimum switching frequency is greater than the series resonance frequency of the three-phase resonant circuit, which is composed of the series resonance inductance and the series resonance capacitance of the three-phase resonant circuit.
[0045] As a preference, after S3 or S4 is executed, the control method further comprises the following steps:
[0046] A1: after power-on start, the initial switching frequency is set to the maximum switching frequency, and the initial switching phase difference among the three bridge arms is set to the minimum phase difference, and the minimum phase difference belongs to (0°, 120°];
[0047] A2: given the output reference voltage, the current actual output voltage is detected in real time;
[0048] A3: if the current is a high-voltage output working condition, a variable-frequency PI control strategy is used to adjust the switching frequency, so that the actual output voltage approaches the output reference voltage; if the current is a low-voltage output working condition, a three-phase phase-shift PI control strategy is used to adjust the switching phase difference, so that the actual output voltage approaches the output reference voltage;
[0049] A4: repeat A2 to A3 until the actual output voltage and the output reference voltage are equal.
[0050] Beneficial effects: firstly, the three-phase voltage doubling rectifier circuit adopts two positive and negative symmetric three-phase voltage doubling modules in parallel input and series output, combined with the three-phase staggered input characteristics, the output ripple frequency can reach 6 times of the switching frequency, greatly reducing the output ripple, meeting the requirements of industrial microwave devices for high voltage power output quality; secondly, through the frequency conversion and three-phase phase shift mixed control strategy, the high and low voltage working conditions are divided by the maximum switching frequency and the critical voltage corresponding to the 120° phase difference, the high voltage section is fixed phase difference variable frequency regulation, and the low voltage section is fixed maximum frequency phase shift regulation, realizing wide range output voltage regulation, adapting to the rated voltage demand of different types of magnetrons; thirdly, in the no-load state, the voltage stress of the capacitor and the diode is less than or equal to 1 / (2n) of the total output voltage, and the voltage of the primary and secondary windings of the transformer is less than or equal to 1 / (4n) of the total output voltage (n is the number of three-phase voltage doubling units), which significantly reduces the voltage stress of the device and adapts to the high-power energy transmission scene; fourthly, a single three-phase transformer is used to replace multiple single-phase transformers, reducing the use of magnetic elements and bus capacitance, reducing hardware cost and control complexity, and facilitating engineering application. BRIEF DESCRIPTION OF DRAWINGS
[0051] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or prior art description will be briefly introduced as follows. Obviously, for those skilled in the art, other drawings can also be obtained based on these drawings without any creative labor.
[0052] Figure 1 The basic working principle diagram of the high-power high-voltage DC converter provided by the embodiment of the present application is provided.
[0053] Figure 2 The circuit principle diagrams of the three-phase bridge inverter circuit, the three-phase resonant circuit and the three-phase transformer provided by the embodiment of the present application are provided.
[0054] Figure 3 The circuit principle diagram of the three-phase voltage doubling rectifier circuit provided by the embodiment of the present application is provided.
[0055] Figure 4 The control principle diagram of the control method of the high-power high-voltage DC converter provided by the embodiment of the present application is provided.
[0056] Figure 5 A typical waveform diagram of the high-power high-voltage DC converter provided by the embodiment of the present application is provided.
[0057] Figure 6 The typical working mode diagram of the three-phase voltage doubling rectifier circuit provided by the embodiment of the present application in the time period is provided. ~
[0058] Figure 7 The three-phase voltage doubling rectifier circuit provided by the embodiment of the present application is in a typical working mode diagram in the period of
[0059] Figure 8 The three-phase voltage doubling rectifier circuit provided by the embodiment of the present application is in a typical working mode diagram in the period of
[0060] Figure 9 The three-phase voltage doubling rectifier circuit provided by the embodiment of the present application is in a typical working mode diagram in the period of
[0061] Figure 10 The three-phase voltage doubling rectifier circuit provided by the embodiment of the present application is in a typical working mode diagram in the period of
[0062] Figure 11 The three-phase voltage doubling rectifier circuit provided by the embodiment of the present application is in a typical working mode diagram in the period of
[0063] Figure 12 The voltage stress diagram of each device of the three-phase voltage doubling module provided by the embodiment of the present application.
[0064] In the figure: 10, three-phase bridge inverter circuit; 20, three-phase resonant circuit and three-phase transformer; 30, low-ripple three-phase voltage doubling rectifier circuit; 101, first bridge arm; 102, second bridge arm; 103, third bridge arm; 301, first three-phase voltage doubling module; 3011, first three-phase voltage doubling unit; 3012, second three-phase voltage doubling unit; 302, second three-phase voltage doubling module; 3021, third three-phase voltage doubling unit; 3022, fourth three-phase voltage doubling unit.
[0065] The implementation, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION
[0066] It should be understood that the specific embodiments described herein are merely intended to explain the present application and not to limit the present application.
[0067] To solve the technical problem that it is difficult to realize a large-power high-voltage DC power converter with low ripple and low device voltage and current stress, and the large-power application requirement of industrial microwave devices cannot be met, the embodiment discloses a large-power high-voltage DC converter as shown in Figure 1 Figure 1 The basic working principle diagram of the high-power high-voltage DC converter is provided for the embodiment. The high-power high-voltage DC converter comprises a three-phase bridge inverter circuit, a three-phase resonant circuit, a three-phase transformer and a three-phase voltage doubling rectifier circuit;
[0068] The input end of the three-phase bridge inverter circuit is connected with an external DC power supply, the output end of the three-phase bridge inverter circuit is connected with the input end of the three-phase resonant circuit, the output end of the three-phase resonant circuit is connected with the input end of the three-phase transformer, the output end of the three-phase transformer is connected with the input end of the three-phase voltage doubling rectifier circuit, the three-phase voltage doubling rectifier circuit is provided with two three-phase voltage doubling modules which are structurally positive and negative symmetrical, and the output end of the three-phase voltage doubling rectifier circuit is connected with an external load.
[0069] Reference Figure 1 , the three-phase bridge inverter circuit in the embodiment corresponds to the three-phase bridge inverter circuit 10 in the figure, the three-phase resonant circuit and the three-phase transformer correspond to the three-phase resonant circuit and the three-phase transformer 20 in the figure, and the three-phase voltage doubling rectifier circuit corresponds to the low-ripple three-phase voltage doubling rectifier circuit 30 in the figure, DC ) is a preset external DC power supply, is a preset external load. Further, the two three-phase voltage doubling modules which are structurally positive and negative symmetrical and which are provided in the three-phase voltage doubling rectifier circuit correspond to the first three-phase voltage doubling module 301 and the second three-phase voltage doubling module 302 in the figure.
[0070] In the embodiment, the three-phase bridge inverter circuit comprises three bridge arms, namely a first bridge arm 101, a second bridge arm 102 and a third bridge arm 103, each bridge arm is connected by two switching tubes, and three lines are led out from the middle points of the three bridge arms and connected to the input end of the three-phase transformer; any phase of the three-phase resonant circuit comprises a resonant inductor in series, a resonant capacitor in series and a parallel resonant capacitor which is equivalent to being connected in parallel across the secondary winding of the transformer, and the equivalent parallel resonant capacitor comprises the parasitic capacitance of the three-phase transformer, the three-phase voltage doubling rectifier circuit diode and the external parallel resonant capacitor. Reference Figure 2 , Figure 2 The circuit principle diagram of the three-phase bridge inverter circuit, the three-phase resonant circuit and the three-phase transformer is provided for the embodiment. In a specific application, DC is an input DC source, is an input DC source voltage, and is a DC bus capacitor, and the connection middle point thereof is a potential reference point. A metal-oxide-semiconductor field effect transistor (MOSFET) ~ constitutes the three-phase bridge inverter circuit 10; the three-phase resonant circuit and the three-phase transformer 20 are composed of an A-phase resonant capacitor , a resonant inductor , a parallel resonant capacitor , a B-phase resonant capacitor Resonant inductor Parallel resonant capacitor C-phase resonant capacitor Resonant inductor Parallel resonant capacitor and three-phase transformers Connection configuration, three-phase transformer Both the primary and secondary sides adopt a star connection, with the parallel connection in the three-phase transformer. Secondary winding three-phase output terminal , , of , , Includes three-phase transformers The parasitic capacitance of the winding, the equivalent parasitic capacitance of the diodes in the three-phase voltage doubler rectifier circuit, and the externally connected resonant capacitor. , , Connect to the input terminal of the low-ripple three-phase voltage doubler rectifier circuit 30.
[0071] Reference Figure 3 , Figure 3 The circuit diagram of the three-phase voltage doubler rectifier circuit provided in this embodiment is shown.
[0072] Specifically, such as Figure 3 As shown, the three-phase voltage multiplier rectifier circuit has two three-phase voltage multiplier modules with symmetrical structures, specifically:
[0073] The three-phase voltage multiplier rectifier circuit is equipped with a first three-phase voltage multiplier module and a second three-phase voltage multiplier module, which are structurally symmetrical.
[0074] The input terminals of the first three-phase voltage multiplier module and the second three-phase voltage multiplier module are connected in parallel to form the input terminals of the three-phase voltage multiplier rectifier circuit; the input terminal of the first three-phase voltage multiplier module is composed of the first terminal of the first supporting capacitor, the first terminal of the second supporting capacitor, the first terminal of the third supporting capacitor, and the first terminal of the first bus capacitor; the input terminal of the second three-phase voltage multiplier module is composed of the first terminal of the fourth supporting capacitor, the first terminal of the fifth supporting capacitor, the first terminal of the sixth supporting capacitor, and the first terminal of the second bus capacitor.
[0075] The output terminals of the first three-phase voltage multiplier module and the second three-phase voltage multiplier module are connected in series to form the output terminals of the three-phase voltage multiplier rectifier circuit. The output terminal of the first three-phase voltage multiplier module is composed of the cathodes of the fourth, fifth, and sixth diodes and the second terminal of the first bus capacitor. The output terminal of the second three-phase voltage multiplier module is composed of the anodes of the tenth, eleventh, and twelfth diodes and the second terminal of the second bus capacitor.
[0076] Specifically, the first three-phase voltage doubling module is provided with at least one first three-phase voltage doubling unit, and the first three-phase voltage doubling unit comprises a first diode, a second diode, a third diode, a fourth diode, a fifth diode, a sixth diode, a first supporting capacitor, a second supporting capacitor, a third supporting capacitor and a first bus capacitor;
[0077] The first end of the first supporting capacitor is connected with the A-phase output end of the three-phase transformer, the second end of the first supporting capacitor is connected with the cathode of the first diode, the anode of the first diode is connected with the first end of the first bus capacitor, the second end of the first supporting capacitor is also connected with the anode of the fourth diode, and the cathode of the fourth diode is connected with the second end of the first bus capacitor;
[0078] The first end of the second supporting capacitor is connected with the B-phase output end of the three-phase transformer, the second end of the second supporting capacitor is connected with the cathode of the second diode, the anode of the second diode is connected with the first end of the first bus capacitor, the second end of the second supporting capacitor is also connected with the anode of the fifth diode, and the cathode of the fifth diode is connected with the second end of the first bus capacitor;
[0079] The first end of the third supporting capacitor is connected with the C-phase output end of the three-phase transformer, the second end of the third supporting capacitor is connected with the cathode of the third diode, the anode of the third diode is connected with the first end of the first bus capacitor, the second end of the third supporting capacitor is also connected with the anode of the sixth diode, and the cathode of the sixth diode is connected with the second end of the first bus capacitor;
[0080] The anode of the first diode, the anode of the second diode, the anode of the third diode and the first end of the first bus capacitor are all connected with the neutral output end of the three-phase transformer;
[0081] The second three-phase voltage doubling module is provided with at least one second three-phase voltage doubling unit, and the second three-phase voltage doubling unit comprises a seventh diode, an eighth diode, a ninth diode, a twelfth diode, an eleventh diode, a tenth diode, a fourth supporting capacitor, a fifth supporting capacitor, a sixth supporting capacitor and a second bus capacitor;
[0082] The first end of the fourth supporting capacitor is connected with the A-phase output end of the three-phase transformer, the second end of the fourth supporting capacitor is connected with the anode of the seventh diode, the cathode of the seventh diode is connected with the first end of the second bus capacitor, the second end of the fourth supporting capacitor is also connected with the cathode of the twelfth diode, and the anode of the twelfth diode is connected with the second end of the second bus capacitor;
[0083] The first end of the fifth supporting capacitor is connected to the B-phase output terminal of the three-phase transformer. The second end of the fifth supporting capacitor is connected to the anode of the eighth diode. The cathode of the eighth diode is connected to the first end of the second bus capacitor. The second end of the fifth supporting capacitor is also connected to the cathode of the eleventh diode. The anode of the eleventh diode is connected to the second end of the second bus capacitor.
[0084] The first end of the sixth supporting capacitor is connected to the C-phase output terminal of the three-phase transformer. The second end of the sixth supporting capacitor is connected to the anode of the ninth diode. The cathode of the ninth diode is connected to the first end of the second bus capacitor. The second end of the sixth supporting capacitor is also connected to the cathode of the twelfth diode. The anode of the twelfth diode is connected to the second end of the second bus capacitor.
[0085] The cathodes of the seventh diode, the eighth diode, and the ninth diode, as well as the first terminal of the second bus capacitor, are all connected to the neutral output terminal of the three-phase transformer.
[0086] In a specific application, such as Figure 3 As shown in the figure, 3011 and 3012 correspond to the first and second three-phase voltage multiplier units, and 3021 and 3022 correspond to the third and fourth three-phase voltage multiplier units. Taking the first three-phase voltage multiplier unit 3011 as an example, one three-phase voltage multiplier unit consists of six diodes. , , , , and These correspond to the first diode, fourth diode, second diode, fifth diode, third diode, and sixth diode, respectively, and are three supporting capacitors. , and These correspond to the first supporting capacitor, the second supporting capacitor, and the third supporting capacitor, respectively, as well as a bus output capacitor. This corresponds to the bus capacitor configuration. , , The cathodes are respectively with , , The anodes are connected, and each is connected via a supporting capacitor. , , With the output terminal of the three-phase transformer , , Connected. , , The anodes are connected together to the bus output capacitor. One end, , , The cathodes are connected together to the bus output capacitor. The other end.
[0087] In a specific application, such as Figure 3 As shown, the second three-phase voltage multiplier module 302 is a three-phase voltage multiplier module that is structurally symmetrical to the first three-phase voltage multiplier module 301. The first three-phase voltage multiplier module 301 and the second three-phase voltage multiplier module 302 are connected in series and then connected to the load resistor. The relationship between the output voltage and the input voltage of each phase of this three-phase voltage doubler rectifier circuit under no-load conditions is as follows: ,in This is the output voltage under no-load conditions. This refers to the number of three-phase voltage multiplier units in the first three-phase voltage multiplier module 301 and the second three-phase voltage multiplier module 302. This refers to the phase voltage amplitude of the three-phase input voltage.
[0088] Specifically, the number of three-phase voltage multiplier units in the three-phase voltage multiplier module is determined based on the actual output voltage requirements.
[0089] Specifically, when the number of three-phase voltage multiplier units set in the first three-phase voltage multiplier module is greater than one, the connection relationship between the multiple three-phase voltage multiplier units is as follows:
[0090] The first terminal of the first supporting capacitor of the next three-phase voltage multiplier unit is connected to the second terminal of the first supporting capacitor of the previous three-phase voltage multiplier unit, the cathode of the first diode, and the anode of the fourth diode.
[0091] The first terminal of the second supporting capacitor of the next three-phase voltage multiplier unit is connected to the second terminal of the second supporting capacitor of the previous three-phase voltage multiplier unit, the cathode of the second diode, and the anode of the fifth diode;
[0092] The first terminal of the third supporting capacitor of the next three-phase voltage multiplier unit is connected to the second terminal of the third supporting capacitor of the previous three-phase voltage multiplier unit, the cathode of the third diode, and the anode of the sixth diode.
[0093] The first terminal of the first bus capacitor of the next three-phase voltage multiplier unit is connected to the second terminal of the first bus capacitor of the previous three-phase voltage multiplier unit, the cathode of the fourth diode, the cathode of the fifth diode, and the cathode of the sixth diode.
[0094] When the number of three-phase voltage multiplier units set in the second three-phase voltage multiplier module is greater than one, the connection relationship between the multiple three-phase voltage multiplier units is as follows:
[0095] The first terminal of the fourth supporting capacitor of the next three-phase voltage multiplier unit is connected to the second terminal of the fourth supporting capacitor of the previous three-phase voltage multiplier unit, the anode of the seventh diode, and the cathode of the tenth diode.
[0096] The first end of the fifth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the fifth support capacitor of the previous three-phase voltage doubling unit, the anode of the eighth diode and the cathode of the eleventh diode.
[0097] The first end of the sixth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the sixth support capacitor of the previous three-phase voltage doubling unit, the anode of the ninth diode and the cathode of the tenth diode.
[0098] The first end of the second bus capacitor of the next three-phase voltage doubling unit is connected with the second end of the second bus capacitor of the previous three-phase voltage doubling unit, the cathode of the twelfth diode, the cathode of the eleventh diode and the anode of the tenth diode.
[0099] As shown in Figure 3 , in a specific application, n structures identical to the first three-phase voltage doubling unit 3011, such as the second three-phase voltage doubling unit 3012, are cascaded to form a first three-phase voltage doubling module 301, and all three-phase voltage doubling unit bus output capacitors ~ are connected in series.
[0100] As shown in Figure 3 , in a specific application, n structures identical to the third three-phase voltage doubling unit 3021, such as the fourth three-phase voltage doubling unit 3022, are cascaded to form a second three-phase voltage doubling module 302, and all three-phase voltage doubling unit bus output capacitors ~ are connected in series.
[0101] Specifically, in the no-load state:
[0102] The voltage stress of all capacitors in the three-phase voltage doubling rectifier circuit is less than or equal to 1 / (2n) of the total output voltage, and the voltage stress of all diodes is less than or equal to 1 / (2n) of the total output voltage;
[0103] The primary winding voltage of the three-phase transformer is less than or equal to 1 / (4n) of the total output voltage, and the secondary winding voltage of the three-phase transformer is less than or equal to 1 / (4n) of the total output voltage;
[0104] Wherein, n is the number of three-phase voltage doubling units in a single three-phase voltage doubling module.
[0105] To solve the above technical problems, with reference to Figure 4 , Figure 4 the control principle diagram of the control method of the high-power high-voltage DC converter, the embodiment further provides a control method of a high-power high-voltage DC converter, applied to the high-power high-voltage DC converter as described above, and the control method comprises the following steps:
[0106] S1: Set the operating range of the switching frequency of the three-phase bridge inverter circuit to the maximum switching frequency to the minimum switching frequency, and set the adjustment range of the switching phase difference between the three bridge arms of the three-phase bridge inverter circuit to 0°~120°.
[0107] S2: When the actual output voltage demand is greater than the critical voltage value, it is determined to be a high voltage output condition and S3 is executed; when the actual output voltage demand is less than or equal to the critical voltage value, it is determined to be a low voltage output condition and S4 is executed.
[0108] S3: Fix the switching phase difference between the three bridge arms to 120°, and adjust the switching frequency within the range of the maximum switching frequency to the minimum switching frequency to match the actual output voltage requirements.
[0109] S4: The fixed switching frequency is the maximum switching frequency. The switching phase difference between the three bridge arms is adjusted to vary within the range of 0° to 120° to match the actual output voltage requirements.
[0110] like Figure 2 and Figure 4 As shown, in this embodiment, all switches of the high-power HVDC converter operate between the maximum and minimum switching frequencies. Furthermore, the switch of the third bridge arm 103 in the three-phase inverter circuit lags behind the switch of the second bridge arm 102 by the same phase difference, and the switch of the second bridge arm 102 lags behind the switch of the first bridge arm 101 by the same phase difference. The phase difference range is... ~120°, where 0 < ≤120°. With a reasonable switching frequency and resonant component design, the converter output voltage decreases as the switching frequency increases. When the converter operates at its maximum switching frequency, the phase difference between the three bridge arms is reduced, resulting in asymmetry in the primary-side three-phase voltage. The degree of asymmetry increases as the phase difference between the three bridge arms decreases. Therefore, the output voltage can be further reduced by decreasing the phase difference between the three bridge arms, allowing the converter to achieve a wider voltage output range within a certain switching frequency range. Even when operating at its maximum switching frequency under three-phase asymmetry, the low output power has no additional impact on the hardware circuitry.
[0111] Specifically, the critical voltage value is the output voltage of a three-phase bridge inverter circuit when the switching frequency is the maximum switching frequency and the phase difference between the three bridge arms is 120°.
[0112] Specifically, the minimum switching frequency is greater than the series resonant frequency of the three-phase resonant circuit, which is composed of the series resonant inductance and series resonant capacitor of the three-phase resonant circuit.
[0113] Specifically, after executing S3 or S4, the control method further includes the following steps:
[0114] A1: After power-on, initially set the switching frequency to the maximum switching frequency, and initially set the switching phase difference among the three bridge arms to the minimum phase difference, and the minimum phase difference belongs to (0°, 120°];
[0115] A2: Given an output reference voltage, real-time detection of the current actual output voltage is performed;
[0116] A3: If the current is a high-voltage output condition, a variable-frequency PI control strategy is used to adjust the switching frequency, so that the actual output voltage approaches the output reference voltage; if the current is a low-voltage output condition, a three-phase phase-shift PI control strategy is used to adjust the switching phase difference, so that the actual output voltage approaches the output reference voltage;
[0117] A4: Repeat A2 to A3 until the actual output voltage and the output reference voltage are equal.
[0118] In a specific application, the specific control mode of the embodiment is: after the converter is powered on, the switching tube is set to work at the maximum switching frequency and the minimum phase difference , then an output reference voltage is given, and it is judged whether the phase difference is equal to 120°, if it is equal to 120°, variable-frequency PI control is performed by adjusting the working frequency of all switching tubes, if it is not equal to 120°, i.e. less than 120°, three-phase phase-shift PI control is performed by adjusting the phase difference among the three-phase bridge arms. Then it is compared whether the output voltage and the reference voltage are equal, if they are not equal, the process is repeated to the step of judging the phase difference , and the above process is repeated.
[0119] Therefore, according to the output voltage value, the high-power high-voltage DC converter of the embodiment can work in two working modes of variable-frequency PI control and three-phase phase-shift PI control, when high-voltage output, it is variable-frequency control mode, the phase difference among the three-phase bridge arms is fixed at 120°, and the switching frequency is changed to regulate the voltage. When low-voltage output, it is three-phase phase-shift control mode, the switching tube working frequency is fixed at the maximum switching frequency, and the phase difference among the three bridge arms is changed to regulate the voltage.
[0120] In a specific application, each three-phase voltage doubling module contains one three-phase voltage doubling unit, and works in variable-frequency control mode, i.e. n=1. The typical waveform is shown in Figure 5 . The positive direction of all electrical quantities is shown in Figure 2 and Figure 3 . , , is the voltage between the output end of the three-phase bridge inverter circuit and the potential reference point, and the amplitude is , and the frequency of each phase square wave voltage is equal to the switching frequency. The current , , are the currents of the A, B, C three-phase resonant circuits respectively, under the reasonable switching frequency and resonant element design, the currents , , lag behind , , respectively, the three-phase bridge inverter circuit can realize zero voltage turn-on, greatly reducing the switching loss of the MOSFET switch tube. The voltages , , are the voltages between the three-phase output windings of the three-phase transformer and the transformer neutral, and are also the terminal voltages of the parallel resonant capacitors, the input voltage of the three-phase voltage doubler rectifier circuit, the amplitude is . The voltage is the voltage across the output capacitor of the first three-phase voltage doubler module 301, and the voltage is the voltage across the output capacitor of the second three-phase voltage doubler module 302, and the voltage across the load after the output of the first three-phase voltage doubler module 301 and the second three-phase voltage doubler module 302 is connected in series is .
[0121] The typical working mode of the three-phase voltage doubler rectifier circuit of the embodiment is shown in Figures 6-11 . Since the low-ripple three-phase voltage doubler rectifier circuit 30 is forward and reverse symmetric, the currents between the first three-phase voltage doubler module 301 and the second three-phase voltage doubler module 302 and the transformer neutral cancel each other out, and the current flowing through the neutral is 0, so the input port of the low-ripple three-phase voltage doubler rectifier circuit 30 can be ignored when analyzing the mode. As shown in Figure 5 , the diodes with common cathodes, the diode with the highest anode potential is turned on, and the diodes with common anodes, the diode with the lowest cathode potential is turned on, in the ~ period, > > , therefore the A phase and the B phase are turned on, and the C phase is not working at this time, and the working mode of the three-phase voltage doubler rectifier circuit at this time is shown in Figure 6 . In the ~ period, > > , the A phase and the C phase are turned on, and the B phase is not working at this time, and the working mode at this time is shown in Figure 7 . In the ~ period, > > , the B phase and the C phase are turned on, and the A phase is not working at this time, and the working mode at this time is shown in Figure 8 . In period, , B phase and A phase are conducted, C phase is not working at this time, the working mode at this time is shown in Figure 9 period, , C phase and A phase are conducted, B phase is not working at this time, the working mode at this time is shown in Figure 10 period, , C phase and B phase are conducted, A phase is not working at this time, the working mode at this time is shown in Figure 11
[0122] According to the above analysis, in a switching cycle, A, B and C phases are alternately conducted to charge the bus output capacitor of the three-phase voltage doubling module, and since the first three-phase voltage doubling module 301 and the second three-phase voltage doubling module 302 are symmetrically opposite, the bus output capacitor of the first three-phase voltage doubling module 301 and the second three-phase voltage doubling module 302 are connected in series to the load resistor After that, the output voltage ripple of the two modules is staggered and superimposed, and the voltage across the load resistor pulses 6 times in each switching cycle, that is, the ripple frequency is 6 times the switching frequency, effectively reducing the output voltage ripple.
[0123] According to the working mode analysis of the low-ripple three-phase voltage doubling rectifier circuit 30, the three-phase voltage doubling rectifier circuit of the embodiment reduces the current and voltage stress of capacitors and diodes compared with the traditional voltage doubling rectifier circuit through the alternating conduction of the three-phase circuit and the parallel input and series output connection of the three-phase voltage doubling module. In the low-ripple three-phase voltage doubling rectifier circuit 30, the average current of each diode is 1 / 3 , wherein is the average load current, when the number n of three-phase voltage doubling units in each three-phase voltage doubling module is greater than 1, the current flowing through the support capacitor and the bus output capacitor increases, the current flowing through the diode remains unchanged, but compared with the traditional voltage doubling rectifier circuit, the current stress of all devices is effectively reduced under the same working condition. In a specific application, when each three-phase voltage doubling module contains n three-phase voltage doubling units, the voltage stress of each device is referred to Figure 12 , wherein is the input phase voltage amplitude of the three-phase voltage doubling rectifier circuit, and the relationship between the output voltage of the three-phase voltage doubling rectifier circuit and the input voltage of each phase when the three-phase voltage doubling rectifier circuit is in an idle state is .
[0124] In summary, the high-power high-voltage DC converter and the control method thereof of the embodiment achieve the following technical effects:
[0125] Firstly, the three-phase voltage doubling rectifier circuit adopts two positive and negative symmetric three-phase voltage doubling modules in parallel input and series output, combines the three-phase staggered input characteristics, and the output ripple frequency can reach 6 times of the switching frequency, greatly reducing the output ripple, meeting the requirements of industrial microwave devices on high-voltage power output quality.
[0126] Secondly, by using the frequency conversion and three-phase phase shift hybrid control strategy, the high and low voltage conditions are divided by the critical voltage corresponding to the maximum switching frequency and 120° phase difference, the high voltage section is fixed phase difference variable frequency regulation, and the low voltage section is fixed maximum frequency phase shift regulation, realizing wide range output voltage regulation and adapting to the rated voltage requirements of different types of magnetrons.
[0127] Thirdly, in the no-load state, the voltage stress of the capacitor and the diode is less than or equal to 1 / (2n) of the total output voltage, and the voltage of the primary and secondary windings of the transformer is less than or equal to 1 / (4n) of the total output voltage (n is the number of three-phase voltage doubling units), which significantly reduces the voltage stress of the device and adapts to the high-power energy transmission scenario.
[0128] Fourthly, a single three-phase transformer is used to replace multiple single-phase transformers, reducing the use of magnetic elements and bus capacitor, reducing hardware cost and control complexity, and being beneficial to engineering application.
[0129] It should be understood that the above is only for illustration, and does not constitute any limitation on the technical solutions of the present application. In specific applications, those skilled in the art can set it up according to the needs, and the present application does not limit it.
[0130] It should be noted that the above-described workflow is only illustrative and does not limit the scope of protection of the present application. In actual application, those skilled in the art can select part or all of them to achieve the purpose of the embodiment scheme according to actual needs, which is not limited here.
[0131] It should be noted that in this paper, the term "includes", "contains" or any other variant thereof is intended to cover non-exclusive inclusion, so that the process, method, article or system including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or system. Without more limitation, the element defined by the sentence "includes a" does not exclude the presence of another identical element in the process, method, article or system including the element.
[0132] Through the above description of the embodiments, those skilled in the art can clearly understand that the above-mentioned example method can be realized by means of software and a necessary general hardware platform, and of course, it can also be realized by hardware, but in many cases, the former is a better embodiment. Based on such understanding, the technical solutions of the present application can be embodied in the form of a software product, which is stored in a storage medium (such as a read-only memory / random access memory, a magnetic disk, or an optical disk) and includes a number of instructions for causing an end device (which can be a mobile phone, a computer, a server, an air conditioner, or a network device) to execute the method described in each embodiment of the present application.
[0133] The above is only a preferred embodiment of the present application, and does not limit the patent scope of the present application, and any equivalent structure or equivalent flow transformation made by using the content of the specification and drawings of the present application, or directly or indirectly applied to other related technical fields, are also included in the patent protection scope of the present application.
Claims
1. A high-power high-voltage DC converter, characterized in that The three-phase bridge inverter circuit, the three-phase resonance circuit, the three-phase transformer and the three-phase voltage doubling rectifier circuit; The input end of the three-phase bridge inverter circuit is connected with an external DC power supply, the output end of the three-phase bridge inverter circuit is connected with the input end of the three-phase resonance circuit, the output end of the three-phase resonance circuit is connected with the input end of the three-phase transformer, the output end of the three-phase transformer is connected with the input end of the three-phase voltage doubling rectifier circuit, the three-phase voltage doubling rectifier circuit is provided with two three-phase voltage doubling modules which are structurally positive and negative symmetrical, and the output end of the three-phase voltage doubling rectifier circuit is connected with an external load; The three-phase voltage doubling rectifier circuit is provided with two three-phase voltage doubling modules which are structurally positive and negative symmetrical, and specifically comprises: The three-phase voltage doubling rectifier circuit is provided with a first three-phase voltage doubling module and a second three-phase voltage doubling module, and the first three-phase voltage doubling module and the second three-phase voltage doubling module are structurally positive and negative symmetrical; The input end of the first three-phase voltage doubling module and the input end of the second three-phase voltage doubling module are connected in parallel to form the input end of the three-phase voltage doubling rectifier circuit; the input end of the first three-phase voltage doubling module is formed by the first end of a first supporting capacitor, the first end of a second supporting capacitor, the first end of a third supporting capacitor and the first end of a first bus capacitor; and the input end of the second three-phase voltage doubling module is formed by the first end of a fourth supporting capacitor, the first end of a fifth supporting capacitor, the first end of a sixth supporting capacitor and the first end of a second bus capacitor; The output end of the first three-phase voltage doubling module and the output end of the second three-phase voltage doubling module are connected in series to form the output end of the three-phase voltage doubling rectifier circuit; the output end of the first three-phase voltage doubling module is formed by the cathode of a fourth diode, the cathode of a fifth diode, the cathode of a sixth diode and the second end of the first bus capacitor; and the output end of the second three-phase voltage doubling module is formed by the anode of a twelfth diode, the anode of an eleventh diode, the anode of a tenth diode and the second end of the second bus capacitor; The first three-phase voltage doubling module is provided with at least one first three-phase voltage doubling unit, and the first three-phase voltage doubling unit comprises a first diode, a second diode, a third diode, a fourth diode, a fifth diode, a sixth diode, a first supporting capacitor, a second supporting capacitor, a third supporting capacitor and a first bus capacitor; The first end of the first supporting capacitor is connected with the A-phase output end of the three-phase transformer, the second end of the first supporting capacitor is connected with the cathode of the first diode, the anode of the first diode is connected with the first end of the first bus capacitor, the second end of the first supporting capacitor is also connected with the anode of the fourth diode, and the cathode of the fourth diode is connected with the second end of the first bus capacitor; The first end of the second supporting capacitor is connected with the B-phase output end of the three-phase transformer, the second end of the second supporting capacitor is connected with the cathode of the second diode, the anode of the second diode is connected with the first end of the first bus capacitor, the second end of the second supporting capacitor is also connected with the anode of the fifth diode, and the cathode of the fifth diode is connected with the second end of the first bus capacitor; and The first end of the third supporting capacitor is connected with the C-phase output end of the three-phase transformer, the second end of the third supporting capacitor is connected with the cathode of the third diode, the anode of the third diode is connected with the first end of the first bus capacitor, the second end of the third supporting capacitor is also connected with the anode of the sixth diode, and the cathode of the sixth diode is connected with the second end of the first bus capacitor. The first end of the third support capacitor is connected with the C-phase output end of the three-phase transformer, the second end of the third support capacitor is connected with the cathode of the third diode, the anode of the third diode is connected with the first end of the first bus capacitor, the second end of the third support capacitor is also connected with the anode of the sixth diode, and the cathode of the sixth diode is connected with the second end of the first bus capacitor; The anode of the first diode, the anode of the second diode, the anode of the third diode and the first end of the first bus capacitor are all connected with the neutral output end of the three-phase transformer; The second three-phase voltage doubling module is provided with at least one second three-phase voltage doubling unit, and the second three-phase voltage doubling unit comprises a seventh diode, an eighth diode, a ninth diode, a twelfth diode, an eleventh diode, a tenth diode, a fourth support capacitor, a fifth support capacitor, a sixth support capacitor and a second bus capacitor. The first end of the fourth support capacitor is connected with the A-phase output end of the three-phase transformer, the second end of the fourth support capacitor is connected with the anode of the seventh diode, the cathode of the seventh diode is connected with the first end of the second bus capacitor, the second end of the fourth support capacitor is also connected with the cathode of the twelfth diode, and the anode of the twelfth diode is connected with the second end of the second bus capacitor. The first end of the fifth support capacitor is connected with the B-phase output end of the three-phase transformer, the second end of the fifth support capacitor is connected with the anode of the eighth diode, the cathode of the eighth diode is connected with the first end of the second bus capacitor, the second end of the fifth support capacitor is also connected with the cathode of the eleventh diode, and the anode of the eleventh diode is connected with the second end of the second bus capacitor. The first end of the sixth support capacitor is connected with the C-phase output end of the three-phase transformer, the second end of the sixth support capacitor is connected with the anode of the ninth diode, the cathode of the ninth diode is connected with the first end of the second bus capacitor, the second end of the sixth support capacitor is also connected with the cathode of the tenth diode, and the anode of the tenth diode is connected with the second end of the second bus capacitor. The cathode of the seventh diode, the cathode of the eighth diode, the cathode of the ninth diode and the first end of the second bus capacitor are all connected with the neutral output end of the three-phase transformer.
2. The high power high voltage DC converter of claim 1, wherein, The number of the three-phase voltage doubling units provided by the three-phase voltage doubling module is determined based on actual output voltage demand.
3. The high power high voltage DC converter of claim 2, wherein, When the number of the three-phase voltage doubling units provided by the first three-phase voltage doubling module is greater than one, the connection relationship between the multiple three-phase voltage doubling units is as follows: The first end of the first support capacitor of the next three-phase voltage doubling unit is connected with the second end of the first support capacitor of the previous three-phase voltage doubling unit, the cathode of the first diode and the anode of the fourth diode; The first end of the second support capacitor of the next three-phase voltage doubling unit is connected with the second end of the second support capacitor of the previous three-phase voltage doubling unit, the cathode of the second diode and the anode of the fifth diode; The first end of the second support capacitor of the next three-phase voltage doubling unit is connected with the second end of the second support capacitor of the previous three-phase voltage doubling unit, the cathode of the second diode and the anode of the fifth diode; The first end of the third support capacitor of the next three-phase voltage doubling unit is connected with the second end of the third support capacitor of the previous three-phase voltage doubling unit, the cathode of the third diode and the anode of the sixth diode; The first end of the first bus capacitor of the next three-phase voltage doubling unit is connected with the second end of the first bus capacitor of the previous three-phase voltage doubling unit, the cathode of the fourth diode, the cathode of the fifth diode and the cathode of the sixth diode; When the number of the three-phase voltage doubling units of the second three-phase voltage doubling module is greater than one, the connection relationship between the three-phase voltage doubling units is as follows: The first end of the fourth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the fourth support capacitor of the previous three-phase voltage doubling unit, the anode of the seventh diode and the cathode of the twelfth diode; The first end of the fifth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the fifth support capacitor of the previous three-phase voltage doubling unit, the anode of the eighth diode and the cathode of the eleventh diode; The first end of the sixth support capacitor of the next three-phase voltage doubling unit is connected with the second end of the sixth support capacitor of the previous three-phase voltage doubling unit, the anode of the ninth diode and the cathode of the tenth diode; The first end of the second bus capacitor of the next three-phase voltage doubling unit is connected with the second end of the second bus capacitor of the previous three-phase voltage doubling unit, the cathode of the twelfth diode, the cathode of the eleventh diode and the anode of the tenth diode.
4. The high power high voltage DC converter of claim 2, wherein, In the no-load state: The voltage stress of all capacitors in the three-phase voltage doubling rectifier circuit is less than or equal to 1 / (2n) of the total output voltage, and the voltage stress of all diodes is less than or equal to 1 / (2n) of the total output voltage; The primary winding voltage of the three-phase transformer is less than or equal to 1 / (4n) of the total output voltage, and the secondary winding voltage of the three-phase transformer is less than or equal to 1 / (4n) of the total output voltage; Wherein, n is the number of the three-phase voltage doubling units in a single three-phase voltage doubling module.
5. A control method of a high-power high-voltage DC converter, applied to the high-power high-voltage DC converter according to any one of claims 1-4, characterized in that, The control method comprises the following steps: S1: setting the switching frequency operating range of the three-phase bridge inverter circuit to be the maximum switching frequency to the minimum switching frequency, and setting the switching phase difference adjustment range between the three bridge arms to be 0°~120°; S2: when the actual output voltage demand is greater than the critical voltage value, it is determined to be a high-voltage output working condition, and S3 is executed; when the actual output voltage demand is less than or equal to the critical voltage value, it is determined to be a low-voltage output working condition, and S4 is executed; S3: fixing the switching phase difference between the three bridge arms to be 120°, and adjusting the switching frequency in the range of the maximum switching frequency to the minimum switching frequency to match the actual output voltage demand; S4: fixing the switching frequency to be the maximum switching frequency, and adjusting the switching phase difference between the three bridge arms in the range of 0°~120° to match the actual output voltage demand.
6. The control method of a high-power high-voltage DC converter according to claim 5, characterized by, The critical voltage value is an output voltage of the three-phase bridge inverter circuit when the three-phase bridge inverter circuit works at a switching frequency of the maximum switching frequency and a switching phase difference between three bridge arms is 120°.
7. The control method of a high-power high-voltage DC converter according to claim 5, characterized by, The minimum switching frequency is greater than a series resonance frequency of the three-phase resonance circuit, and the series resonance frequency is composed of a series resonance inductance and a series resonance capacitance of the three-phase resonance circuit.
8. The control method of a high-power high-voltage DC converter according to claim 5, characterized by, After S3 or S4 is executed, the control method further comprises the following steps: A1: after power-on starting, initially setting the switching frequency as the maximum switching frequency, initially setting the switching phase difference between three bridge arms as the minimum phase difference, and the minimum phase difference belongs to (0°, 120°]; A2: given an output reference voltage, detecting a current actual output voltage in real time; A3: if the current is a high-voltage output working condition, a variable-frequency PI control strategy is adopted to adjust the switching frequency, so that the actual output voltage approaches the output reference voltage; if the current is a low-voltage output working condition, a three-phase phase-shift PI control strategy is adopted to adjust the switching phase difference, so that the actual output voltage approaches the output reference voltage; A4: A2 to A3 are repeatedly executed until the actual output voltage is equal to the output reference voltage.
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