Step-up switched-capacitor multilevel inverter employing multiple inputs with reduced switches
A large device count, weak boosting capability, and DC voltage imbalance are common issues in conventional multilevel inverters. In this paper, a novel multilevel inverter is presented that can generate the desired number of output levels with reduced devices by using new switched-capacitor circuits...
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Published in | JOURNAL OF POWER ELECTRONICS Vol. 21; no. 7; pp. 986 - 997 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
Published |
Singapore
Springer Singapore
01.07.2021
전력전자학회 |
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Abstract | A large device count, weak boosting capability, and DC voltage imbalance are common issues in conventional multilevel inverters. In this paper, a novel multilevel inverter is presented that can generate the desired number of output levels with reduced devices by using new switched-capacitor circuits (SCCs). The two input sources and capacitors in the SCC can be switched in parallel and series modes. In the parallel mode, the capacitor voltage of the SCC is charged to the DC source voltage, which inherently solves the capacitor voltage imbalance issue without any auxiliary circuits. In the series mode, the capacitor can be used as an alternative source, which helps achieve a high voltage gain. The multiple input sources of the SCC make the proposed topology suitable for application in renewable energy generation systems where several DC sources are available. Instead of an H-bridge module, a structure with two half-bridges and two switches is used as a polarity generation circuit at the load terminal. The input sources of two SCCs can be selected as symmetric and asymmetric patterns, which can result in a great number of output voltage levels. The circuit topology, operational principle, modulation strategy, capacitor analysis, and performance comparisons of the inverter are described in this paper. In addition, experimental results verify the feasibility and validity of the inverter. |
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AbstractList | A large device count, weak boosting capability, and DC voltage imbalance are common issues in conventional multilevel inverters. In this paper, a novel multilevel inverter is presented that can generate the desired number of output levels with reduced devices by using new switched-capacitor circuits (SCCs). The two input sources and capacitors in the SCC can be switched in parallel and series modes. In the parallel mode, the capacitor voltage of the SCC is charged to the DC source voltage, which inherently solves the capacitor voltage imbalance issue without any auxiliary circuits. In the series mode, the capacitor can be used as an alternative source, which helps achieve a high voltage gain. The multiple input sources of the SCC make the proposed topology suitable for application in renewable energy generation systems where several DC sources are available. Instead of an H-bridge module, a structure with two half-bridges and two switches is used as a polarity generation circuit at the load terminal. The input sources of two SCCs can be selected as symmetric and asymmetric patterns, which can result in a great number of output voltage levels. The circuit topology, operational principle, modulation strategy, capacitor analysis, and performance comparisons of the inverter are described in this paper. In addition, experimental results verify the feasibility and validity of the inverter. KCI Citation Count: 2 A large device count, weak boosting capability, and DC voltage imbalance are common issues in conventional multilevel inverters. In this paper, a novel multilevel inverter is presented that can generate the desired number of output levels with reduced devices by using new switched-capacitor circuits (SCCs). The two input sources and capacitors in the SCC can be switched in parallel and series modes. In the parallel mode, the capacitor voltage of the SCC is charged to the DC source voltage, which inherently solves the capacitor voltage imbalance issue without any auxiliary circuits. In the series mode, the capacitor can be used as an alternative source, which helps achieve a high voltage gain. The multiple input sources of the SCC make the proposed topology suitable for application in renewable energy generation systems where several DC sources are available. Instead of an H-bridge module, a structure with two half-bridges and two switches is used as a polarity generation circuit at the load terminal. The input sources of two SCCs can be selected as symmetric and asymmetric patterns, which can result in a great number of output voltage levels. The circuit topology, operational principle, modulation strategy, capacitor analysis, and performance comparisons of the inverter are described in this paper. In addition, experimental results verify the feasibility and validity of the inverter. |
Author | Wang, Zhe Wang, Yaoqiang Liu, Wenjun Wang, Kewen Zhang, Yun Liang, Jun |
Author_xml | – sequence: 1 givenname: Yaoqiang orcidid: 0000-0003-3063-1105 surname: Wang fullname: Wang, Yaoqiang organization: School of Electrical Engineering, Zhengzhou University, Henan Engineering Research Center of Power Electronics and Energy Systems – sequence: 2 givenname: Zhe surname: Wang fullname: Wang, Zhe organization: School of Electrical Engineering, Zhengzhou University, Henan Engineering Research Center of Power Electronics and Energy Systems – sequence: 3 givenname: Wenjun surname: Liu fullname: Liu, Wenjun email: lwenjun1990@163.com organization: School of Electrical Engineering, Zhengzhou University, Henan Engineering Research Center of Power Electronics and Energy Systems – sequence: 4 givenname: Yun surname: Zhang fullname: Zhang, Yun organization: School of Electrical and Information Engineering, Tianjin University – sequence: 5 givenname: Kewen surname: Wang fullname: Wang, Kewen organization: School of Electrical Engineering, Zhengzhou University, Henan Engineering Research Center of Power Electronics and Energy Systems – sequence: 6 givenname: Jun surname: Liang fullname: Liang, Jun organization: School of Electrical Engineering, Zhengzhou University, Cardiff University |
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Title | Step-up switched-capacitor multilevel inverter employing multiple inputs with reduced switches |
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ispartofPNX | Journal of Power Electronics, 2021, 21(7), , pp.986-997 |
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