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Modular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm Balancing

This paper discusses the control of a modular multilevel converter (MMC) used as a grid interface for the klystron modulators in the compact linear collider (CLIC). The converter has a DC side load which takes short-duration power pulses, causing high DC side power fluctuations that are not tolerabl...

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Autores principales: Jankovic, Marija, Costabeber, Alessandro, Watson, Alan, Clare, Jon C, Aguglia, Davide
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TPS.2018.2837619
http://cds.cern.ch/record/2643956
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author Jankovic, Marija
Costabeber, Alessandro
Watson, Alan
Clare, Jon C
Aguglia, Davide
author_facet Jankovic, Marija
Costabeber, Alessandro
Watson, Alan
Clare, Jon C
Aguglia, Davide
author_sort Jankovic, Marija
collection CERN
description This paper discusses the control of a modular multilevel converter (MMC) used as a grid interface for the klystron modulators in the compact linear collider (CLIC). The converter has a DC side load which takes short-duration power pulses, causing high DC side power fluctuations that are not tolerable if seen by the AC grid. The DC–AC power decoupling capability of the MMC enables mitigation of the power ripple on the AC side, guaranteeing compliance with power quality requirements. However, the pulse repetition rate of the CLIC modulators is synchronized the 50-Hz AC grid and this induces permanent power imbalance in the arms of the MMC, causing voltage deviation and overmodulation unless appropriate balancing strategies are implemented. Unlike existing arm balancing methods that control 50-Hz circulating currents to balance the arm powers, the method proposed in this paper introduces an augmented modulation strategy where modulation signals are redistributed among arms based on the demand from a balancing controller. The resulting controller has lower complexity and its simple structure enables an easier design of the balancing loop, which guarantees predictable dynamics in operation. The effectiveness of the method has been demonstrated in simulation for the full-scale CLIC converter ratings and experimentally on a 7-kW MMC prototype operating with a 3.3-kA pulsed DC load.
id oai-inspirehep.net-1698377
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
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spelling oai-inspirehep.net-16983772022-06-30T22:23:26Zdoi:10.1109/TPS.2018.2837619http://cds.cern.ch/record/2643956engJankovic, MarijaCostabeber, AlessandroWatson, AlanClare, Jon CAguglia, DavideModular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm BalancingAccelerators and Storage RingsThis paper discusses the control of a modular multilevel converter (MMC) used as a grid interface for the klystron modulators in the compact linear collider (CLIC). The converter has a DC side load which takes short-duration power pulses, causing high DC side power fluctuations that are not tolerable if seen by the AC grid. The DC–AC power decoupling capability of the MMC enables mitigation of the power ripple on the AC side, guaranteeing compliance with power quality requirements. However, the pulse repetition rate of the CLIC modulators is synchronized the 50-Hz AC grid and this induces permanent power imbalance in the arms of the MMC, causing voltage deviation and overmodulation unless appropriate balancing strategies are implemented. Unlike existing arm balancing methods that control 50-Hz circulating currents to balance the arm powers, the method proposed in this paper introduces an augmented modulation strategy where modulation signals are redistributed among arms based on the demand from a balancing controller. The resulting controller has lower complexity and its simple structure enables an easier design of the balancing loop, which guarantees predictable dynamics in operation. The effectiveness of the method has been demonstrated in simulation for the full-scale CLIC converter ratings and experimentally on a 7-kW MMC prototype operating with a 3.3-kA pulsed DC load.oai:inspirehep.net:16983772018
spellingShingle Accelerators and Storage Rings
Jankovic, Marija
Costabeber, Alessandro
Watson, Alan
Clare, Jon C
Aguglia, Davide
Modular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm Balancing
title Modular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm Balancing
title_full Modular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm Balancing
title_fullStr Modular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm Balancing
title_full_unstemmed Modular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm Balancing
title_short Modular Multilevel Converter Grid Interface for Klystron Modulators: An Augmented Modulation Scheme for Arm Balancing
title_sort modular multilevel converter grid interface for klystron modulators: an augmented modulation scheme for arm balancing
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1109/TPS.2018.2837619
http://cds.cern.ch/record/2643956
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AT watsonalan modularmultilevelconvertergridinterfaceforklystronmodulatorsanaugmentedmodulationschemeforarmbalancing
AT clarejonc modularmultilevelconvertergridinterfaceforklystronmodulatorsanaugmentedmodulationschemeforarmbalancing
AT agugliadavide modularmultilevelconvertergridinterfaceforklystronmodulatorsanaugmentedmodulationschemeforarmbalancing