WO2022062327A1 - 一种改进型开关耦合电感准z源逆变器 - Google Patents
一种改进型开关耦合电感准z源逆变器 Download PDFInfo
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- WO2022062327A1 WO2022062327A1 PCT/CN2021/080447 CN2021080447W WO2022062327A1 WO 2022062327 A1 WO2022062327 A1 WO 2022062327A1 CN 2021080447 W CN2021080447 W CN 2021080447W WO 2022062327 A1 WO2022062327 A1 WO 2022062327A1
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of AC power input into DC power output; Conversion of DC power input into AC power output
- H02M7/42—Conversion of DC power input into AC power output without possibility of reversal
- H02M7/44—Conversion of DC power input into AC power output without possibility of reversal by static converters
- H02M7/48—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/53—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M7/537—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters
- H02M7/5387—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration
- H02M7/53871—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration with automatic control of output voltage or current
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of AC power input into DC power output; Conversion of DC power input into AC power output
- H02M7/42—Conversion of DC power input into AC power output without possibility of reversal
- H02M7/44—Conversion of DC power input into AC power output without possibility of reversal by static converters
- H02M7/48—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/53—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M7/537—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters
- H02M7/539—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters with automatic control of output wave form or frequency
- H02M7/5395—Conversion of DC power input into AC power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters with automatic control of output wave form or frequency by pulse-width modulation
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B70/00—Technologies for an efficient end-user side electric power management and consumption
- Y02B70/10—Technologies improving the efficiency by using switched-mode power supplies [SMPS], i.e. efficient power electronics conversion e.g. power factor correction or reduction of losses in power supplies or efficient standby modes
Definitions
- the invention belongs to the technical field of DC-AC conversion equipment, and relates to an improved switched coupled inductor quasi-Z source inverter (MSCL qZSI).
- inverters play a vital role in solar power generation systems.
- Traditional single-stage photovoltaic power generation systems use DC/AC inverters to directly transfer the energy output by photovoltaic cells to the grid.
- this method can achieve higher conversion efficiency, it also has great drawbacks: First, it requires a higher input voltage, and multiple photovoltaic modules must be connected in series, which will greatly increase the system cost and failure rate and lead to non-ideal conditions. Second, in actual work, in order to track the maximum power point voltage of the photovoltaic cell, the DC bus voltage of the inverter needs to fluctuate within a wide range, which leads to an additional increase in the power capacity of the inverter design.
- a two-stage control structure of cascaded DC-DC circuits can be used to solve the above problems.
- a DC/DC circuit with maximum power point tracking function is added between the photovoltaic module and the inverter, and the DC circuit can be used to boost the voltage to reduce the number of photovoltaic modules in series and obtain a constant DC link voltage.
- ZSI Z-Source Inverter
- ZSI Z-Source Inverter
- ZSI Z-Source Inverter
- the inverter (ZSI) can step up and step down the voltage of a single-stage inverter, which has certain advantages when used in photovoltaic power generation grid-connected systems.
- the development of single-chip photovoltaic module capacity has promoted the rapid development of micro-inverter grid-connected systems.
- High-voltage gain ZSI is very suitable for such application scenarios.
- experimental studies have found that traditional ZSI also has some shortcomings: First, it is limited by its own topology.
- the quasi-Z-source inverter (qZSI) circuit is used for photovoltaic power generation and The grid system can realize the maximum power point tracking (MPPT) of the photovoltaic module and facilitate the grid connection of the inverter.
- MPPT maximum power point tracking
- the continuous input current of the qZSI contributes to the MPPT of the PV module, while the "low" voltage overshoot of the DC bus contributes to the type selection of switches and improves the electromagnetic environment (EMI) of the inverter, but the lower DC of the qZSI
- the link boost capability requires a large number of PV modules to be connected in series to reach the grid-connected voltage level, which leads to high cost and failure rate of the PV module system.
- Hafiz Furqan Ahmed, HonnyongCha et al proposed SCL qZSI, in which a bootstrap capacitor and a symmetrical parallel structure are used to improve the boost capability at a small shoot-through duty cycle D, and the symmetrical parallel structure can reduce the current stress of the components, in addition , the added tertiary winding N23 in the coupled inductor improves the boost capability of the inverter, however, the copper losses in the windings in the non-shoot-through state reduce the efficiency.
- the mSSCL qZSI proposed by Saeed Sharifi and Mohammad Monfared achieves high voltage gain at small D by using a bootstrap capacitor and a switched-coupled inductor unit, however, during shoot-through and non-shoot-through states, the switch-coupled inductor tertiary winding N23 has higher
- the high current stress leads to high copper loss in the coupled inductor, which in turn reduces the inverter efficiency. Therefore, it has become a challenging task in photovoltaic power generation systems to seek an inverter circuit with a simple structure, high conversion efficiency, low current stress, and suitable for high boost occasions.
- MSCL qZSI switched-coupled-inductor quasi-Z-source inverter
- the present invention provides the following scheme:
- the main structure of the improved switched coupled inductor quasi-Z source inverter of the present invention includes a DC power supply, a first inductor, a first capacitor, a first diode, a second diode, a third pole tube, the second capacitor, the third capacitor, the first winding, the second winding, the third winding, the fourth winding and six power switch tubes, wherein the second diode, the third diode, the third capacitor, The first winding, the second winding, the third winding and the fourth winding form a boosting unit; the two ends of the first inductor are respectively connected to the anode of the DC power supply, the anode of the first diode and the cathode of the second capacitor.
- the cathode of the diode is connected to the anode of the first capacitor, the same-named terminal of the first winding and the anode of the third diode respectively, the cathode of the third diode is connected to the different-named terminal of the fourth winding, and the terminal of the first winding is connected.
- the synonym terminal is connected to the synonym terminal of the third winding and the cathode of the third capacitor respectively, the synonym terminal of the third winding is connected to the anode of the second diode, the anode of the third capacitor is respectively connected to the synonym terminal of the second winding and the anode of the second diode.
- the same name terminal of the fourth winding is connected, the cathode of the second diode is connected to the anode of the second capacitor and the different name terminal of the second winding respectively, the drain of the upper bridge wall power switch tube is respectively connected to the anode of the second capacitor and the second terminal of the second capacitor.
- the power switch tubes form a power switch tube group, and the power switch tube group includes the upper arm power switch tube and the lower arm power switch tube;
- the upper bridge arm power switch tube includes a first power switch tube, a third power switch tube and a fifth power switch tube;
- the lower arm power switch tube includes a second power switch tube, a fourth power switch tube and a sixth power switch tube a power switch tube; the drains of the first power switch tube, the third power switch tube and the fifth power switch tube are connected to form the drain of the upper arm power switch tube; the first power switch tube
- the source of the switch tube is connected to the drain of the fourth power switch tube; the source of the third power switch tube is connected to the drain of the sixth power switch tube; the source of the fifth power switch tube is connected
- the second power switch tube, the fourth power switch tube and the source of the sixth power switch tube are connected to form the lower arm power switch source of the tube.
- the invention switches the working state of the circuit by controlling the on or off of the power switch tube, so as to control whether the DC power supply provides the energy required for the circuit operation to the coupled inductor, and by changing the size of the duty cycle and the winding turns ratio of the coupled inductor, The change of the gain of the input and output voltage is realized, so as to realize the step-up and step-down control of the DC power supply by the output voltage.
- the present invention realizes the continuous charging and discharging process of the coupled inductance unit due to the on and off of the switch tube in actual work, so as to achieve the purpose of high boosting gain; and the four coupled inductances
- the unique connection method between the terminals of the same name can effectively reduce the current stress of the winding, reduce the loss, and can reduce the resonance problem of the converter circuit, and the output efficiency is high.
- FIG. 1 is a schematic diagram of the main structure circuit principle of the present invention.
- FIG. 2 is a schematic diagram of the working state of the circuit when the power switch tubes S 1 -S 6 (marked as S eq in the figure) of the present invention are turned on.
- FIG. 3 is a schematic diagram of the working state of the circuit when the power switch tubes S 1 to S 6 of the present invention are turned off.
- FIG. 4 is a relationship diagram of the boost factor B and the shoot-through duty ratio D of the three inverters according to the embodiment of the present invention.
- FIG. 5 is a graph showing the relationship between the winding current and the voltage gain G of the three inverters according to the embodiment of the present invention.
- FIG. 6 is a functional relationship diagram of the efficiency and output power of the three inverters according to the embodiment of the present invention.
- the ability to achieve high voltage conversion including the DC power supply V g , first inductor L 1 , first capacitor C 1 , first diode D 1 , second diode D 21 , third diode D 22 , second capacitor C 2 , third capacitor C 21 , the first winding N 21 , the second winding N 22 , the third winding N 23 , the fourth winding N 24 and six power switch tubes S 1 -S 6 , wherein the second diode D 21 , the third diode D 22 , the third capacitor C 21 , the first winding N 21 , the second winding N 22 , the third winding N 23 and the fourth winding N 24 form a boosting unit; the two ends of the first inductor L 1 are respectively connected to the DC power supply V
- the anode of g , the anode of the first diode D1 and the cathode of the second capacitor C2 are connected, and the cathode of the first diode D1
- the anode of the third diode D 22 is connected to the anode of the third diode D 22
- the cathode of the third diode D 22 is connected to the synonym end of the fourth winding N 24
- the synonym end of the first winding N 21 is respectively connected to the synonym end of the third winding N 23 .
- the different terminal is connected to the cathode of the third capacitor C 21 , the same terminal of the third winding N 23 is connected to the anode of the second diode D 21 , and the anode of the third capacitor C 21 is respectively connected to the same terminal of the second winding N 22 It is connected to the same name terminal of the fourth winding N 24 , the cathode of the second diode D 21 is connected to the anode of the second capacitor C 2 and the different name terminal of the second winding N 22 respectively, and the upper bridge wall power switch tube S 1 -
- the drain of S3 is respectively connected with the anode of the second capacitor C2, the cathode of the second diode D21 and the different terminal of the second winding N22 , and the sources of the lower arm power switch tubes S4 - S6 are respectively It is connected to the negative electrode of the DC power supply V g and the negative electrode of the first capacitor C 1 ; the first winding N 21 , the second winding N 22 , the third winding N 23
- six of the power switch tubes form a power switch tube group, and the power switch tube group includes the upper arm power switch tube and the lower arm power switch tube; the upper arm power switch tube;
- the bridge arm power switch tube includes a first power switch tube S 1 , a third power switch tube S 3 and a fifth power switch tube S 5 ;
- the lower arm power switch tube includes a second power switch tube S 2 and a fourth power switch tube S 5 .
- the switch S4 and the sixth power switch S6 are connected to form the drain of the power switch tube of the upper bridge arm; the source of the first power switch S1 is connected to the drain of the fourth power switch S4; the source of the third power switch S3 is connected to the drain of the fourth power switch S4.
- the drain of the sixth power switch S6 is connected; the source of the fifth power switch S5 is connected to the drain of the second power switch S2; the second power switch S2 ,
- the fourth power switch S4 and the source of the sixth power switch S6 are connected to form the source of the lower arm power switch.
- the unipolar SPWM mode is used to control the turn-on or turn-off of the power switch to complete the switching of different working modes, thereby reducing the switching loss in the overall circuit structure, improving the overall work efficiency of the circuit, and the switch-off and conduction of the switch.
- the different working states of the on-time circuit are shown in Figure 2 and Figure 3 respectively:
- the first diode D 1 is reverse biased, while the second diode D 21 and the third diode D 22 conduct, the first inductor L 1 is input by the second capacitor C 2 and The power supply V g is charged, the four windings N 21 , N 22 , N 23 and N 24 are all charged by the first capacitor C 1 , and the third capacitor C 21 stores the energy from the first capacitor C 1 .
- the specific current loop is shown in the figure 2 shown. At this time, the circuit has the following voltage and current relationship:
- the second diode D 21 and the third diode D 22 are reverse biased, the first diode D 1 is turned on, and the storage is stored in the first winding N 21 and the second winding N 22
- the energy in the first inductor L 1 is combined with the DC power supply V g to supply power to the load.
- the first capacitor C 1 and the second capacitor C 2 are charged in this state.
- the specific current loop is shown in Figure 3, At this time, the circuit structure has the following voltage and current relationship:
- V L1-ON , V N-ON , V L1-OFF , V N-OFF are the voltages across the magnetic elements (inductors and windings) in the shoot-through state and non-shoot-through state, respectively
- VC is the capacitor voltage
- V PN is the peak DC link voltage
- V L1-ON (1-D) V PN
- B is the peak DC link boost factor of the inverter
- D is the shoot-through duty cycle (0 ⁇ D ⁇ 1)
- the peak DC link boost factors of SCL qZSI and mSSCL qZSI in the prior art are as follows:
- the boost factor of MSCL qZSI is between the boost factors of mSSCL qZSI and SCL qZSI;
- MSCL qZSI is more efficient than the other two due to lower current stress on windings N 23 and N 2 4
- the inverter has higher efficiency, despite the high boost capability of mSSCL qZSI, its efficiency is the lowest among the three inverters due to the high current stress in windings N 23 and N 24 , the coupled inductor in MSCLqZSI Power consumption is much smaller than the other two candidates.
- the MSCL qZSI is tested under the test conditions of an input voltage of 100V, an effective value of an output phase voltage of 120V, and an output power of 1kW, and the maximum efficiency reaches 92.8%, which basically meets the design requirements.
- the MSCL qZSI of this embodiment has the advantages of high voltage gain and high efficiency, it provides continuous input current and low DC bus voltage spikes, and can achieve maximum power point tracking (MPPT) of photovoltaic modules; Due to the unique design of coupled inductors, the winding current stress in the proposed MSCL qZSI is lower than that of SCL qZSI and mSSCL qZSI, reducing the power loss of the windings and improving the efficiency of the proposed inverter.
- MPPT power point tracking
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Abstract
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Claims (2)
- 一种改进型开关耦合电感准Z源逆变器,其特征在于主体结构包括直流电源、第一电感、第一电容、第一二极管、第二二极管、第三二极管、第二电容、第三电容、第一绕组、第二绕组、第三绕组、第四绕组和六个功率开关管,其中第二二极管、第三二极管、第三电容、第一绕组、第二绕组、第三绕组和第四绕组组成升压单元;第一电感的两端分别与直流电源的正极、第一二极管的阳极和第二电容的阴极相连,第一二极管的阴极分别与第一电容的阳极、第一绕组的同名端和第三二极管的阳极相连,第三二极管的阴极与第四绕组的异名端相连,第一绕组的异名端分别与第三绕组的异名端和第三电容的阴极相连,第三绕组的同名端与第二二极管的阳极相连,第三电容的阳极分别与第二绕组的同名端和第四绕组的同名端相连,第二二极管的阴极分别与第二电容的阳极和第二绕组的异名端相连,上桥壁功率开关管的漏极分别与第二电容的阳极、第二二极管的阴极和第二绕组异名端相连,下桥臂功率开关管的源极分别与直流电源的负极和第一电容的阴极相连;第一绕组、第二绕组、第三绕组和第四绕组两两耦合,其对应的匝数比为N 23/N 21=N 24/N 22=n,0<n<1,且均为同向耦合。
- 根据权利要求1所述的改进型开关耦合电感准Z源逆变器,其特征在于,六个所述功率开关管组成功率开关管组,所述功率开关管组包括所述上桥臂功率开关管和所述下桥臂功率开关管;所述上桥臂功率开关管包括第一功率开关管、第三功率开关管和第五功率开关管;所述下桥臂功率开关管包括第二功率开关管、第四功率开关管和第六功率开关管;所述第一功率开关管、所述第三功率开关管和所述第五功率开关管的漏极连接,形成所述上桥臂功率开关管的漏极;所述第一功率开关管的源极和所述第四功率开关管的漏极连接;所述第三功率开关管的源极和所述第六功率开关管的漏极连接;所述第五功率开关管的源极和所述第二功率开关管的漏极连接;所述第二功率开关管、所述第四功率开关管和所述第六功率开关管的源极连接,形成所述下桥臂功率开关管的源极。
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| CN202011039876.9 | 2020-09-28 | ||
| CN202011039876.9A CN112072942B (zh) | 2020-09-28 | 2020-09-28 | 一种改进型开关耦合电感准z源逆变器 |
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| CN114513125A (zh) * | 2022-02-22 | 2022-05-17 | 广东志成冠军集团有限公司 | 单相逆变器及其控制方法、控制系统 |
| CN114583990A (zh) * | 2022-05-07 | 2022-06-03 | 深圳古瑞瓦特新能源有限公司 | 宽范围增益的单相逆变器、控制方法及三相逆变器 |
| CN114759792A (zh) * | 2022-05-11 | 2022-07-15 | 南京航空航天大学 | 一种单级式高增益模块化多电平谐振直流升压变换器 |
| CN115441708A (zh) * | 2022-08-12 | 2022-12-06 | 南通大学 | 零共模电流单相非隔离型光伏升压逆变器及其控制方法 |
| CN115694241A (zh) * | 2022-11-29 | 2023-02-03 | 哈尔滨理工大学 | 一种基于新型开关电感单元的高增益双向准z源逆变器 |
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| CN112072942B (zh) * | 2020-09-28 | 2024-12-27 | 青岛理工大学 | 一种改进型开关耦合电感准z源逆变器 |
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| CN113922690B (zh) * | 2021-08-16 | 2023-11-07 | 青岛理工大学 | 一种改进型三耦合电感准z源升压逆变器及控制方法 |
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| CN114513125A (zh) * | 2022-02-22 | 2022-05-17 | 广东志成冠军集团有限公司 | 单相逆变器及其控制方法、控制系统 |
| WO2023207049A1 (zh) * | 2022-04-28 | 2023-11-02 | 中国科学院电工研究所 | 一种低压大电流无线充电系统及其协同控制方法 |
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| CN115694241A (zh) * | 2022-11-29 | 2023-02-03 | 哈尔滨理工大学 | 一种基于新型开关电感单元的高增益双向准z源逆变器 |
| CN115800734A (zh) * | 2023-02-08 | 2023-03-14 | 浙江日风电气股份有限公司 | 一种单级二阶升压逆变器、升压方法、装置、设备及介质 |
| CN118017861A (zh) * | 2024-04-09 | 2024-05-10 | 湖南大学 | 一种低共模电压的宽调压耦合电感型升降压逆变器 |
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