Driver Based Soft Switch for Pulse-Width-Modulated Power Converters

The work in this dissertation presents the first attempt in the literature to propose the concept of â soft switchâ . The goal of â soft switchâ is to develop a standard PWM switch cell with built-in adaptive soft switching capabilities. Just like a regular switch, only one PWM signal is needed...

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Bibliographic Details
Main Author: Yu, Huijie
Other Authors: Electrical and Computer Engineering
Format: Others
Published: Virginia Tech 2014
Subjects:
SiC
ZVT
BJT
PWM
Online Access:http://hdl.handle.net/10919/26399
http://scholar.lib.vt.edu/theses/available/etd-03092005-002643/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-263992021-12-21T06:03:07Z Driver Based Soft Switch for Pulse-Width-Modulated Power Converters Yu, Huijie Electrical and Computer Engineering Lai, Jih-Sheng Nelson, Douglas J. Liu, Yilu Lu, Guo-Quan Wang, Fei Fred SiC ZVT zero voltage transition inverter BJT PWM coupled inductor soft switch soft switching base drive The work in this dissertation presents the first attempt in the literature to propose the concept of â soft switchâ . The goal of â soft switchâ is to develop a standard PWM switch cell with built-in adaptive soft switching capabilities. Just like a regular switch, only one PWM signal is needed to drive the soft switch under soft switching condition. The core technique in soft switch development is a built-in adaptive soft switching circuit with minimized circulation energy. The necessity of minimizing circulation energy is first analyzed. The design and implementation of a universal controller for implementation of variable timing control to minimize circulation energy is presented. The controller has been tested successfully with three different soft switching inverters for electric vehicles application in the Partnership for a New Generation Vehicles (PNGV) project. To simplify the control, several methods to achieve soft switching with fixed timing control are proposed by analyzing a family of zero-voltage switching converters. The driver based soft switch concept was originated from development of a base driver circuit for current driven bipolar junction transistor (BJT). A new insulated-gate-bipolar-transistor (IGBT) and power metal-oxide-semiconductor field-effect-transistor (MOSFET) gated transistor (IMGT) base drive structure was initially proposed for a high power SiC BJT. The proposed base drive method drives SiC BJTs in a way similar to a Darlington transistor. With some modification, a new base driver structure can adaptively achieve zero voltage turn-on for BJT at all load current range with one single gate. The proposed gate driver based soft switching method is verified by experimental test with both Si and SiC BJT. The idea is then broadened for â soft switchâ implementation. The whole soft switched BJT (SSBJT) structure behaves like a voltage-driven soft switch. The new structure has potentially inherent soft transition property with reduced stress and switching loss. The basic concept of the current driven soft switch is then extended to a voltage-driven device such as IGBT and MOSFET. The key feature and requirement of the soft switch is outlined. A new coupled inductor based soft switching cell is proposed. The proposed zero-voltage-transition (ZVT) cell serves as a good candidate for the development of soft switch. The â Equivalent Inductorâ and state plane based analysis method are used to simply the analysis of coupled inductor based zero-voltage switching scheme. With the proposed analysis method, the operational property of the ZVT cell can be identified without solving complicated differential equations. Detailed analysis and design is proposed for a 3kW boost converter example. With the proposed soft switch design, the boost converter can achieve up to 98.9% efficiency over a wide operation range with a single gate drive. A high power inverter with coupled inductor scheme is also designed with simple control compared to the earlier implementation. A family of soft-switching converters using the proposed â soft switchâ cell can be developed by replacing the conventional PWM switch with the proposed soft switch. Ph. D. 2014-03-14T20:08:06Z 2014-03-14T20:08:06Z 2005-02-23 2005-03-09 2006-03-17 2005-03-17 Dissertation etd-03092005-002643 http://hdl.handle.net/10919/26399 http://scholar.lib.vt.edu/theses/available/etd-03092005-002643/ Softswitch.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic SiC
ZVT
zero voltage transition
inverter
BJT
PWM
coupled inductor
soft switch
soft switching
base drive
spellingShingle SiC
ZVT
zero voltage transition
inverter
BJT
PWM
coupled inductor
soft switch
soft switching
base drive
Yu, Huijie
Driver Based Soft Switch for Pulse-Width-Modulated Power Converters
description The work in this dissertation presents the first attempt in the literature to propose the concept of â soft switchâ . The goal of â soft switchâ is to develop a standard PWM switch cell with built-in adaptive soft switching capabilities. Just like a regular switch, only one PWM signal is needed to drive the soft switch under soft switching condition. The core technique in soft switch development is a built-in adaptive soft switching circuit with minimized circulation energy. The necessity of minimizing circulation energy is first analyzed. The design and implementation of a universal controller for implementation of variable timing control to minimize circulation energy is presented. The controller has been tested successfully with three different soft switching inverters for electric vehicles application in the Partnership for a New Generation Vehicles (PNGV) project. To simplify the control, several methods to achieve soft switching with fixed timing control are proposed by analyzing a family of zero-voltage switching converters. The driver based soft switch concept was originated from development of a base driver circuit for current driven bipolar junction transistor (BJT). A new insulated-gate-bipolar-transistor (IGBT) and power metal-oxide-semiconductor field-effect-transistor (MOSFET) gated transistor (IMGT) base drive structure was initially proposed for a high power SiC BJT. The proposed base drive method drives SiC BJTs in a way similar to a Darlington transistor. With some modification, a new base driver structure can adaptively achieve zero voltage turn-on for BJT at all load current range with one single gate. The proposed gate driver based soft switching method is verified by experimental test with both Si and SiC BJT. The idea is then broadened for â soft switchâ implementation. The whole soft switched BJT (SSBJT) structure behaves like a voltage-driven soft switch. The new structure has potentially inherent soft transition property with reduced stress and switching loss. The basic concept of the current driven soft switch is then extended to a voltage-driven device such as IGBT and MOSFET. The key feature and requirement of the soft switch is outlined. A new coupled inductor based soft switching cell is proposed. The proposed zero-voltage-transition (ZVT) cell serves as a good candidate for the development of soft switch. The â Equivalent Inductorâ and state plane based analysis method are used to simply the analysis of coupled inductor based zero-voltage switching scheme. With the proposed analysis method, the operational property of the ZVT cell can be identified without solving complicated differential equations. Detailed analysis and design is proposed for a 3kW boost converter example. With the proposed soft switch design, the boost converter can achieve up to 98.9% efficiency over a wide operation range with a single gate drive. A high power inverter with coupled inductor scheme is also designed with simple control compared to the earlier implementation. A family of soft-switching converters using the proposed â soft switchâ cell can be developed by replacing the conventional PWM switch with the proposed soft switch. === Ph. D.
author2 Electrical and Computer Engineering
author_facet Electrical and Computer Engineering
Yu, Huijie
author Yu, Huijie
author_sort Yu, Huijie
title Driver Based Soft Switch for Pulse-Width-Modulated Power Converters
title_short Driver Based Soft Switch for Pulse-Width-Modulated Power Converters
title_full Driver Based Soft Switch for Pulse-Width-Modulated Power Converters
title_fullStr Driver Based Soft Switch for Pulse-Width-Modulated Power Converters
title_full_unstemmed Driver Based Soft Switch for Pulse-Width-Modulated Power Converters
title_sort driver based soft switch for pulse-width-modulated power converters
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/26399
http://scholar.lib.vt.edu/theses/available/etd-03092005-002643/
work_keys_str_mv AT yuhuijie driverbasedsoftswitchforpulsewidthmodulatedpowerconverters
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