The theory and design of switched-mode power transformers for minimum conductor loss

A comprehensive and general analysis of the electromagnetic fields, power dissipation, and energy storage within transformer windings is presented. Emphasis is placed on applications in switched-mode power conversion. One-dimensional radial variation of the field quantities is assumed. The fir...

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Bibliographic Details
Main Author: Goad, Stephen D.
Other Authors: Electrical Engineering
Format: Others
Language:en_US
Published: Virginia Polytechnic Institute and State University 2015
Subjects:
Online Access:http://hdl.handle.net/10919/52290
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-522902020-09-29T05:33:50Z The theory and design of switched-mode power transformers for minimum conductor loss Goad, Stephen D. Electrical Engineering Stutzman, Warren L. Besieris, Ioannis M. deWolf, David A. Korhler, Werner E. Lee, Fred C. Hodge, Daniel B. LD5655.V856 1985.G572 Electric transformers -- Windings Electric conductivity A comprehensive and general analysis of the electromagnetic fields, power dissipation, and energy storage within transformer windings is presented. Emphasis is placed on applications in switched-mode power conversion. One-dimensional radial variation of the field quantities is assumed. The first phase of the investigation is for sinusoidal excitation; solutions for the current density and magnetic field intensity are derived and studied in order to develop a fundamental understanding of the basic phenomena. Expressions for the power dissipation and energy storage in both single- and multi-layer windings are then derived which, upon investigation, yield a technique for minimizing the power dissipation by choosing an optimum conductor thickness. Several levels of accuracy, ranging from exact solutions to very simple and physically meaningful series approximations, are defined and examined to determine their usefulness and range of validity. The time-harmonic treatment is generalized to arbitrary periodic exoitation by means of Fourier analysis, resulting in a powerful extension of its applicability to any possible converter topology. Results for several representative waveshapes are presented from which a fundamental dependence cn the waveform bandwidth is discovered. Practical application of the theoretical analysis is considered by developing models for several couon winding types: single and multi-filar round wire, litz wire, and sheet conductors. Experimental results are presented and compared with the theoretical results for each of these cases. Finally, a design procedure is outlined for switched—mode pour transformers which is based on this work. Ph. D. 2015-05-14T16:36:06Z 2015-05-14T16:36:06Z 1985 Dissertation Text http://hdl.handle.net/10919/52290 en_US OCLC# 13748624 In Copyright http://rightsstatements.org/vocab/InC/1.0/ x, 357 leaves application/pdf application/pdf Virginia Polytechnic Institute and State University
collection NDLTD
language en_US
format Others
sources NDLTD
topic LD5655.V856 1985.G572
Electric transformers -- Windings
Electric conductivity
spellingShingle LD5655.V856 1985.G572
Electric transformers -- Windings
Electric conductivity
Goad, Stephen D.
The theory and design of switched-mode power transformers for minimum conductor loss
description A comprehensive and general analysis of the electromagnetic fields, power dissipation, and energy storage within transformer windings is presented. Emphasis is placed on applications in switched-mode power conversion. One-dimensional radial variation of the field quantities is assumed. The first phase of the investigation is for sinusoidal excitation; solutions for the current density and magnetic field intensity are derived and studied in order to develop a fundamental understanding of the basic phenomena. Expressions for the power dissipation and energy storage in both single- and multi-layer windings are then derived which, upon investigation, yield a technique for minimizing the power dissipation by choosing an optimum conductor thickness. Several levels of accuracy, ranging from exact solutions to very simple and physically meaningful series approximations, are defined and examined to determine their usefulness and range of validity. The time-harmonic treatment is generalized to arbitrary periodic exoitation by means of Fourier analysis, resulting in a powerful extension of its applicability to any possible converter topology. Results for several representative waveshapes are presented from which a fundamental dependence cn the waveform bandwidth is discovered. Practical application of the theoretical analysis is considered by developing models for several couon winding types: single and multi-filar round wire, litz wire, and sheet conductors. Experimental results are presented and compared with the theoretical results for each of these cases. Finally, a design procedure is outlined for switched—mode pour transformers which is based on this work. === Ph. D.
author2 Electrical Engineering
author_facet Electrical Engineering
Goad, Stephen D.
author Goad, Stephen D.
author_sort Goad, Stephen D.
title The theory and design of switched-mode power transformers for minimum conductor loss
title_short The theory and design of switched-mode power transformers for minimum conductor loss
title_full The theory and design of switched-mode power transformers for minimum conductor loss
title_fullStr The theory and design of switched-mode power transformers for minimum conductor loss
title_full_unstemmed The theory and design of switched-mode power transformers for minimum conductor loss
title_sort theory and design of switched-mode power transformers for minimum conductor loss
publisher Virginia Polytechnic Institute and State University
publishDate 2015
url http://hdl.handle.net/10919/52290
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