Analytical Approach for Fast Frequency Response Control of VSC HVDC

The importance of the auxiliary control of power electronic devices such as HVDC and FACTs is growing owing to the increase in the generation capacity of renewable energy sources. This paper presents a temporary frequency support strategy using the electrostatic energy in voltage-sourced converter-t...

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Main Authors: Junghun Lee, Soseul Jeong, Hyunmin Kim, Yeuntae Yoo, Seungmin Jung, Minhan Yoon, Gilsoo Jang
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9462915/
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spelling doaj-08ab096d379a4921a161e229a4cf35542021-07-21T23:00:37ZengIEEEIEEE Access2169-35362021-01-019913039131310.1109/ACCESS.2021.30918169462915Analytical Approach for Fast Frequency Response Control of VSC HVDCJunghun Lee0Soseul Jeong1Hyunmin Kim2Yeuntae Yoo3Seungmin Jung4https://orcid.org/0000-0002-9806-9545Minhan Yoon5https://orcid.org/0000-0002-4309-0072Gilsoo Jang6https://orcid.org/0000-0001-7590-8345Department of Electrical Engineering, Korea University, Seoul, South KoreaDepartment of Electrical Engineering, Korea University, Seoul, South KoreaPower Transmission Laboratory, Korea Electric Power Research Institute (KEPRI), Daejeon, South KoreaQualcomm Institute, University of California San Diego, La Jolla, CA, USADepartment of Electrical Engineering, Hanbat National University, Daejeon, South KoreaDepartment of Electrical Engineering, Kwangwoon University, Seoul, South KoreaDepartment of Electrical Engineering, Korea University, Seoul, South KoreaThe importance of the auxiliary control of power electronic devices such as HVDC and FACTs is growing owing to the increase in the generation capacity of renewable energy sources. This paper presents a temporary frequency support strategy using the electrostatic energy in voltage-sourced converter-type high-voltage direct current systems. An analytical derivation for selecting the optimal droop constant to improve the frequency nadir was established. The optimal droop constant was derived via system frequency response analysis by using the support termination time. Furthermore, the optimality of the support was computed using numerical equations. Modified outer control loops were implemented in the master controller to utilize the proposed method in voltage-sourced converter control. The effect of the fast frequency support control strategy was verified via a time-domain electromagnetic transient program simulation based on case studies. To examine the practical applicability of the proposed strategy, the parameter robustness was investigated by performing deviated system parameter simulations. The results validated the proposed strategy.https://ieeexplore.ieee.org/document/9462915/Droop constantfast frequency support control (FFSC)frequency nadirprimary frequency responsesystem frequency responseVSC HVDC
collection DOAJ
language English
format Article
sources DOAJ
author Junghun Lee
Soseul Jeong
Hyunmin Kim
Yeuntae Yoo
Seungmin Jung
Minhan Yoon
Gilsoo Jang
spellingShingle Junghun Lee
Soseul Jeong
Hyunmin Kim
Yeuntae Yoo
Seungmin Jung
Minhan Yoon
Gilsoo Jang
Analytical Approach for Fast Frequency Response Control of VSC HVDC
IEEE Access
Droop constant
fast frequency support control (FFSC)
frequency nadir
primary frequency response
system frequency response
VSC HVDC
author_facet Junghun Lee
Soseul Jeong
Hyunmin Kim
Yeuntae Yoo
Seungmin Jung
Minhan Yoon
Gilsoo Jang
author_sort Junghun Lee
title Analytical Approach for Fast Frequency Response Control of VSC HVDC
title_short Analytical Approach for Fast Frequency Response Control of VSC HVDC
title_full Analytical Approach for Fast Frequency Response Control of VSC HVDC
title_fullStr Analytical Approach for Fast Frequency Response Control of VSC HVDC
title_full_unstemmed Analytical Approach for Fast Frequency Response Control of VSC HVDC
title_sort analytical approach for fast frequency response control of vsc hvdc
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description The importance of the auxiliary control of power electronic devices such as HVDC and FACTs is growing owing to the increase in the generation capacity of renewable energy sources. This paper presents a temporary frequency support strategy using the electrostatic energy in voltage-sourced converter-type high-voltage direct current systems. An analytical derivation for selecting the optimal droop constant to improve the frequency nadir was established. The optimal droop constant was derived via system frequency response analysis by using the support termination time. Furthermore, the optimality of the support was computed using numerical equations. Modified outer control loops were implemented in the master controller to utilize the proposed method in voltage-sourced converter control. The effect of the fast frequency support control strategy was verified via a time-domain electromagnetic transient program simulation based on case studies. To examine the practical applicability of the proposed strategy, the parameter robustness was investigated by performing deviated system parameter simulations. The results validated the proposed strategy.
topic Droop constant
fast frequency support control (FFSC)
frequency nadir
primary frequency response
system frequency response
VSC HVDC
url https://ieeexplore.ieee.org/document/9462915/
work_keys_str_mv AT junghunlee analyticalapproachforfastfrequencyresponsecontrolofvschvdc
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AT yeuntaeyoo analyticalapproachforfastfrequencyresponsecontrolofvschvdc
AT seungminjung analyticalapproachforfastfrequencyresponsecontrolofvschvdc
AT minhanyoon analyticalapproachforfastfrequencyresponsecontrolofvschvdc
AT gilsoojang analyticalapproachforfastfrequencyresponsecontrolofvschvdc
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