Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control

The theory of space vector pulse-width modulation (SVPWM) technique for the three-phase Z-source inverter has been introduced in detail, and a novel implementation scheme based on the maximum constant boost control method is presented in this paper. Like the traditional carrier-based maximum constan...

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Main Authors: Cai, Xu, Yu, Kun, Luo, Fang Lin, Zhu, Miao
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2013
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Online Access:https://hdl.handle.net/10356/104502
http://hdl.handle.net/10220/16991
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1045022020-03-07T14:00:38Z Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control Cai, Xu Yu, Kun Luo, Fang Lin Zhu, Miao School of Electrical and Electronic Engineering DRNTU::Engineering::Electrical and electronic engineering::Electronic circuits The theory of space vector pulse-width modulation (SVPWM) technique for the three-phase Z-source inverter has been introduced in detail, and a novel implementation scheme based on the maximum constant boost control method is presented in this paper. Like the traditional carrier-based maximum constant boost control strategy, the proposed control method is able to achieve the maximum voltage boost ability while always keeping the shoot-through duty ratio constant. Besides, it inherits the advantages from the SVPWM technique. Compared with carrier-based strategies, it has wider linear operation range and is easier for digital implementation. The number of switching transition in each switching cycle is reduced, which significantly decreases switching losses. To investigate the advantages of lessening switching losses, three optimal switching patterns are proposed and compared with the carrier-based strategy. It is demonstrated that the number of switching transition can be reduced by 60% at most by the proposed SVPWM-based control method. All the theoretical analysis has been validated by the simulation results in MATLAB/Simulink at last. 2013-10-28T09:22:18Z 2019-12-06T21:34:09Z 2013-10-28T09:22:18Z 2019-12-06T21:34:09Z 2012 2012 Journal Article Yu, K., Luo, F. L., Zhu, M., & Cai, X. (2012). Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control. International Journal of Circuit Theory and Applications. 0098-9886 https://hdl.handle.net/10356/104502 http://hdl.handle.net/10220/16991 10.1002/cta.1842 en International journal of circuit theory and applications.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering::Electronic circuits
spellingShingle DRNTU::Engineering::Electrical and electronic engineering::Electronic circuits
Cai, Xu
Yu, Kun
Luo, Fang Lin
Zhu, Miao
Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control
description The theory of space vector pulse-width modulation (SVPWM) technique for the three-phase Z-source inverter has been introduced in detail, and a novel implementation scheme based on the maximum constant boost control method is presented in this paper. Like the traditional carrier-based maximum constant boost control strategy, the proposed control method is able to achieve the maximum voltage boost ability while always keeping the shoot-through duty ratio constant. Besides, it inherits the advantages from the SVPWM technique. Compared with carrier-based strategies, it has wider linear operation range and is easier for digital implementation. The number of switching transition in each switching cycle is reduced, which significantly decreases switching losses. To investigate the advantages of lessening switching losses, three optimal switching patterns are proposed and compared with the carrier-based strategy. It is demonstrated that the number of switching transition can be reduced by 60% at most by the proposed SVPWM-based control method. All the theoretical analysis has been validated by the simulation results in MATLAB/Simulink at last.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Cai, Xu
Yu, Kun
Luo, Fang Lin
Zhu, Miao
format Article
author Cai, Xu
Yu, Kun
Luo, Fang Lin
Zhu, Miao
author_sort Cai, Xu
title Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control
title_short Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control
title_full Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control
title_fullStr Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control
title_full_unstemmed Space vector pulse-width modulation theory and solution for Z-source inverters with maximum constant boost control
title_sort space vector pulse-width modulation theory and solution for z-source inverters with maximum constant boost control
publishDate 2013
url https://hdl.handle.net/10356/104502
http://hdl.handle.net/10220/16991
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