Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters

The trend in isolated DC/DC bus converters is to increase the output power in the same brick form factors that have been used in the past. Traditional intermediate bus converters (IBCs) use silicon power metal oxide semiconductor field effect transistors (MOSFETs), which recently have reached the l...

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Main Author: Salvo, Christopher
Other Authors: Electrical Engineering
Format: Others
Published: Virginia Tech 2021
Subjects:
Online Access:http://hdl.handle.net/10919/101938
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-1019382021-01-17T05:31:57Z Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters Salvo, Christopher Electrical Engineering Burgos, Rolando Li, Qiang Boroyevich, Dushan Multiphase Buck Planar Magnetics Average Current Mode Control Intermediate Bus Converter Gallium Nitride Two-Stage Converter The trend in isolated DC/DC bus converters is to increase the output power in the same brick form factors that have been used in the past. Traditional intermediate bus converters (IBCs) use silicon power metal oxide semiconductor field effect transistors (MOSFETs), which recently have reached the limit in terms of turn on resistance (RDSON) and switching frequency. In order to make the IBCs smaller, the switching frequency needs to be pushed higher, which will in turn shrink the magnetics, lowering the converter size, but increase the switching related losses, lowering the overall efficiency of the converter. Wide-bandgap semiconductor devices are becoming more popular in commercial products and gallium nitride (GaN) devices are able to push the switching frequency higher without sacrificing efficiency. GaN devices can shrink the size of the converter and provide better efficiency than its silicon counterpart provides. A survey of current IBCs was conducted in order to find a design point for efficiency and power density. A two-stage converter topology was explored, with a multiphase buck converter as the front end, followed by an LLC resonant converter. The multiphase buck converter provides regulation, while the LLC provides isolation. With the buck converter providing regulation, the switching frequency of the entire converter will be constant. A constant switching frequency allows for better electromagnetic interference (EMI) mitigation. This work includes the details to design and implement a hard-switched multiphase buck converter with planar magnetics using GaN devices. The efficiency includes both the buck efficiency and the overall efficiency of the two-stage converter including the LLC. The buck converter operates with 40V - 60V input, nominally 48V, and outputs 36V at 1 kW, which is the input to the LLC regulating 36V – 12V. Both open and closed loop was measured for the buck and the full converter. EMI performance was not measured or addressed in this work. Master of Science 2021-01-16T07:00:19Z 2021-01-16T07:00:19Z 2019-07-25 Thesis vt_gsexam:21653 http://hdl.handle.net/10919/101938 This item is protected by copyright and/or related rights. Some uses of this item may be deemed fair and permitted by law even without permission from the rights holder(s), or the rights holder(s) may have licensed the work for use under certain conditions. For other uses you need to obtain permission from the rights holder(s). ETD application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic Multiphase Buck
Planar Magnetics
Average Current Mode Control
Intermediate Bus Converter
Gallium Nitride
Two-Stage Converter
spellingShingle Multiphase Buck
Planar Magnetics
Average Current Mode Control
Intermediate Bus Converter
Gallium Nitride
Two-Stage Converter
Salvo, Christopher
Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters
description The trend in isolated DC/DC bus converters is to increase the output power in the same brick form factors that have been used in the past. Traditional intermediate bus converters (IBCs) use silicon power metal oxide semiconductor field effect transistors (MOSFETs), which recently have reached the limit in terms of turn on resistance (RDSON) and switching frequency. In order to make the IBCs smaller, the switching frequency needs to be pushed higher, which will in turn shrink the magnetics, lowering the converter size, but increase the switching related losses, lowering the overall efficiency of the converter. Wide-bandgap semiconductor devices are becoming more popular in commercial products and gallium nitride (GaN) devices are able to push the switching frequency higher without sacrificing efficiency. GaN devices can shrink the size of the converter and provide better efficiency than its silicon counterpart provides. A survey of current IBCs was conducted in order to find a design point for efficiency and power density. A two-stage converter topology was explored, with a multiphase buck converter as the front end, followed by an LLC resonant converter. The multiphase buck converter provides regulation, while the LLC provides isolation. With the buck converter providing regulation, the switching frequency of the entire converter will be constant. A constant switching frequency allows for better electromagnetic interference (EMI) mitigation. This work includes the details to design and implement a hard-switched multiphase buck converter with planar magnetics using GaN devices. The efficiency includes both the buck efficiency and the overall efficiency of the two-stage converter including the LLC. The buck converter operates with 40V - 60V input, nominally 48V, and outputs 36V at 1 kW, which is the input to the LLC regulating 36V – 12V. Both open and closed loop was measured for the buck and the full converter. EMI performance was not measured or addressed in this work. === Master of Science
author2 Electrical Engineering
author_facet Electrical Engineering
Salvo, Christopher
author Salvo, Christopher
author_sort Salvo, Christopher
title Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters
title_short Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters
title_full Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters
title_fullStr Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters
title_full_unstemmed Design and Implementation of a Multiphase Buck Converter for Front End 48V-12V Intermediate Bus Converters
title_sort design and implementation of a multiphase buck converter for front end 48v-12v intermediate bus converters
publisher Virginia Tech
publishDate 2021
url http://hdl.handle.net/10919/101938
work_keys_str_mv AT salvochristopher designandimplementationofamultiphasebuckconverterforfrontend48v12vintermediatebusconverters
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