Design and Control of Series Resonant Converters for DC Current Power Distribution Applications

With the growth of renewable energy usage and energy storage adoption in recent decades, people have started to reevaluate the possible roles of dc systems in current and future electrical systems. The dc voltage distribution has been applied in various applications, such as data centers and aircraf...

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Main Author: Wang, Hongjie
Format: Others
Published: DigitalCommons@USU 2018
Subjects:
Online Access:https://digitalcommons.usu.edu/etd/7160
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=8271&context=etd
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spelling ndltd-UTAHS-oai-digitalcommons.usu.edu-etd-82712019-10-13T05:37:23Z Design and Control of Series Resonant Converters for DC Current Power Distribution Applications Wang, Hongjie With the growth of renewable energy usage and energy storage adoption in recent decades, people have started to reevaluate the possible roles of dc systems in current and future electrical systems. The dc voltage distribution has been applied in various applications, such as data centers and aircraft industry, for high efficiency and power density. However, for some applications such as subsea gas and oil fields, and ocean observatory systems, the dc current distribution is preferred over dc voltage distribution for its low cost and robustness against cable faults. Design and control of dc power distribution systems for different applications is an emerging research area with complex technical challenges. This dissertation solves the technical challenges in analysis, design, modeling, control and protection of series resonant converters (SRCs) for dc current distribution applications. An optimum design that has high efficiency, high reliability, and minimum required control efforts for the SRC with constant input current has been achieved and demonstrated by applying the analysis and design procedures developed in this dissertation. The modeling and analysis presented in this dissertation represents an operating condition that has not been studied in the literature and could be easily extended to other resonant converter topologies. Explicit analytical expressions have been provided for all key transfer functions, including input impedance and control-to-output, offering valuable resources to design feed-back regulation and to evaluate system stability. Based on the control strategies and control design presented in this dissertation, stable and reliable operation of dc current distribution systems with long distance cable has been achieved and demonstrated. The proposed analysis, design procedure, stability evaluation, control strategy and protection techniques in this dissertation can be applied to a wide range of similar scenarios as well, which greatly increases their value. 2018-08-01T07:00:00Z text application/pdf https://digitalcommons.usu.edu/etd/7160 https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=8271&context=etd Copyright for this work is held by the author. Transmission or reproduction of materials protected by copyright beyond that allowed by fair use requires the written permission of the copyright owners. Works not in the public domain cannot be commercially exploited without permission of the copyright owner. Responsibility for any use rests exclusively with the user. For more information contact digitalcommons@usu.edu. All Graduate Theses and Dissertations DigitalCommons@USU Series resonant converter dc current distribution stability analysis control design small signal modeling Electrical and Computer Engineering Power and Energy
collection NDLTD
format Others
sources NDLTD
topic Series resonant converter
dc current distribution
stability analysis
control design
small signal modeling
Electrical and Computer Engineering
Power and Energy
spellingShingle Series resonant converter
dc current distribution
stability analysis
control design
small signal modeling
Electrical and Computer Engineering
Power and Energy
Wang, Hongjie
Design and Control of Series Resonant Converters for DC Current Power Distribution Applications
description With the growth of renewable energy usage and energy storage adoption in recent decades, people have started to reevaluate the possible roles of dc systems in current and future electrical systems. The dc voltage distribution has been applied in various applications, such as data centers and aircraft industry, for high efficiency and power density. However, for some applications such as subsea gas and oil fields, and ocean observatory systems, the dc current distribution is preferred over dc voltage distribution for its low cost and robustness against cable faults. Design and control of dc power distribution systems for different applications is an emerging research area with complex technical challenges. This dissertation solves the technical challenges in analysis, design, modeling, control and protection of series resonant converters (SRCs) for dc current distribution applications. An optimum design that has high efficiency, high reliability, and minimum required control efforts for the SRC with constant input current has been achieved and demonstrated by applying the analysis and design procedures developed in this dissertation. The modeling and analysis presented in this dissertation represents an operating condition that has not been studied in the literature and could be easily extended to other resonant converter topologies. Explicit analytical expressions have been provided for all key transfer functions, including input impedance and control-to-output, offering valuable resources to design feed-back regulation and to evaluate system stability. Based on the control strategies and control design presented in this dissertation, stable and reliable operation of dc current distribution systems with long distance cable has been achieved and demonstrated. The proposed analysis, design procedure, stability evaluation, control strategy and protection techniques in this dissertation can be applied to a wide range of similar scenarios as well, which greatly increases their value.
author Wang, Hongjie
author_facet Wang, Hongjie
author_sort Wang, Hongjie
title Design and Control of Series Resonant Converters for DC Current Power Distribution Applications
title_short Design and Control of Series Resonant Converters for DC Current Power Distribution Applications
title_full Design and Control of Series Resonant Converters for DC Current Power Distribution Applications
title_fullStr Design and Control of Series Resonant Converters for DC Current Power Distribution Applications
title_full_unstemmed Design and Control of Series Resonant Converters for DC Current Power Distribution Applications
title_sort design and control of series resonant converters for dc current power distribution applications
publisher DigitalCommons@USU
publishDate 2018
url https://digitalcommons.usu.edu/etd/7160
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=8271&context=etd
work_keys_str_mv AT wanghongjie designandcontrolofseriesresonantconvertersfordccurrentpowerdistributionapplications
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