A robust passivity based control strategy for quasi‐resonant converters

Abstract This paper presents a robust passivity‐based control (RPBC) strategy for half‐wave zero‐voltage switching quasi‐resonant (HW‐ZVS‐QR) buck and boost type converters. The proposed controller is based on energy shaping and damping injection. Theoretical analysis shows that the resulted closed‐...

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Main Authors: Mostafa Ali Ayubirad, Simin Amiri Siavoshani, Mohammad Javad Yazdanpanah
Format: Article
Language:English
Published: Wiley 2021-05-01
Series:IET Power Electronics
Online Access:https://doi.org/10.1049/pel2.12133
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spelling doaj-d72593d543be4a85844168ff0c96db022021-08-02T08:20:11ZengWileyIET Power Electronics1755-45351755-45432021-05-011471360137010.1049/pel2.12133A robust passivity based control strategy for quasi‐resonant convertersMostafa Ali Ayubirad0Simin Amiri Siavoshani1Mohammad Javad Yazdanpanah2Department of Electrical and Biomedical Engineering University of Vermont Burlington Vermont USADepartment of Electrical Engineering Shariaty Technical College Tehran IranControl and Intelligent Processing Center of Excellence School of Electrical and Computer Engineering University of Tehran Tehran IranAbstract This paper presents a robust passivity‐based control (RPBC) strategy for half‐wave zero‐voltage switching quasi‐resonant (HW‐ZVS‐QR) buck and boost type converters. The proposed controller is based on energy shaping and damping injection. Theoretical analysis shows that the resulted closed‐loop HW‐ZVS‐QRs are globally asymptotically stabilised even if the physical constraint on the magnitude of the control signal is taken into account. Also, an integral function of the output error is added into the feedback path of the conventional passivity‐based control design. As a result, such controller not only offers a global asymptotic stable operation but also provides strong robustness to a wide range of parameter mismatch. It is also demonstrated that the proposed controller stabilises the converter in cases where the widely used linear multiloop controller fails. Finally, some simulation and experimental results comparing the performance of the proposed RPBC with that of the conventional linear multiloop controller are presented.https://doi.org/10.1049/pel2.12133
collection DOAJ
language English
format Article
sources DOAJ
author Mostafa Ali Ayubirad
Simin Amiri Siavoshani
Mohammad Javad Yazdanpanah
spellingShingle Mostafa Ali Ayubirad
Simin Amiri Siavoshani
Mohammad Javad Yazdanpanah
A robust passivity based control strategy for quasi‐resonant converters
IET Power Electronics
author_facet Mostafa Ali Ayubirad
Simin Amiri Siavoshani
Mohammad Javad Yazdanpanah
author_sort Mostafa Ali Ayubirad
title A robust passivity based control strategy for quasi‐resonant converters
title_short A robust passivity based control strategy for quasi‐resonant converters
title_full A robust passivity based control strategy for quasi‐resonant converters
title_fullStr A robust passivity based control strategy for quasi‐resonant converters
title_full_unstemmed A robust passivity based control strategy for quasi‐resonant converters
title_sort robust passivity based control strategy for quasi‐resonant converters
publisher Wiley
series IET Power Electronics
issn 1755-4535
1755-4543
publishDate 2021-05-01
description Abstract This paper presents a robust passivity‐based control (RPBC) strategy for half‐wave zero‐voltage switching quasi‐resonant (HW‐ZVS‐QR) buck and boost type converters. The proposed controller is based on energy shaping and damping injection. Theoretical analysis shows that the resulted closed‐loop HW‐ZVS‐QRs are globally asymptotically stabilised even if the physical constraint on the magnitude of the control signal is taken into account. Also, an integral function of the output error is added into the feedback path of the conventional passivity‐based control design. As a result, such controller not only offers a global asymptotic stable operation but also provides strong robustness to a wide range of parameter mismatch. It is also demonstrated that the proposed controller stabilises the converter in cases where the widely used linear multiloop controller fails. Finally, some simulation and experimental results comparing the performance of the proposed RPBC with that of the conventional linear multiloop controller are presented.
url https://doi.org/10.1049/pel2.12133
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