Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency Regulation

Recent advances in data sensing and processing technologies enable data-driven control of high-voltage direct-current (HVDC) systems for improving the operational stability of interfacing power grids. This paper proposes an optimal data-driven control strategy for an HVDC system with line-commutated...

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Main Authors: Do-Hoon Kwon, Young-Jin Kim
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9040588/
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spelling doaj-14ecd60e58eb45828a122aec79acf42a2021-03-30T02:56:11ZengIEEEIEEE Access2169-35362020-01-018584705848210.1109/ACCESS.2020.29815989040588Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency RegulationDo-Hoon Kwon0https://orcid.org/0000-0002-6315-9882Young-Jin Kim1https://orcid.org/0000-0001-5350-7735Korea Electrotechnology Research Institute (KERI), Uiwang-si, South KoreaDepartment of Electrical Engineering, Pohang University of Science and Technology, Pohang, South KoreaRecent advances in data sensing and processing technologies enable data-driven control of high-voltage direct-current (HVDC) systems for improving the operational stability of interfacing power grids. This paper proposes an optimal data-driven control strategy for an HVDC system with line-commutated converters (LCCs), wherein the dc-link voltage and current are optimally regulated at distinct HVDC terminals to improve frequency regulation (FR) in both rectifier- and inverter-side grids. Each HVDC converter is integrated with feedback loops for regulation of grid frequency and dc-link voltage in a localized manner. For optimal FR in both-side grids, a data-driven model of the HVDC-linked grids is then developed to design a data-driven linear quadratic Gaussian (LQG) regulator, which is incorporated with the converter feedback loops. Case studies on two different LCC HVDC systems are performed using the data-driven models, which are validated via comparisons with physics-based models and comprehensive Matlab/Simulink models. The results of the case studies confirm that the optimal data-driven control strategy successfully exploits the fast dynamics of HVDC converters; moreover, cooperation of the HVDC system and synchronous generators in both-side grids is achieved, improving real-time FR under various HVDC system specifications, LQG parameters, and inertia emulation and droop control conditions.https://ieeexplore.ieee.org/document/9040588/Data-driven controldc-link voltage and currenthigh-voltage direct-current systemsline-commutated converterslinear quadratic Gaussianreal-time frequency regulation
collection DOAJ
language English
format Article
sources DOAJ
author Do-Hoon Kwon
Young-Jin Kim
spellingShingle Do-Hoon Kwon
Young-Jin Kim
Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency Regulation
IEEE Access
Data-driven control
dc-link voltage and current
high-voltage direct-current systems
line-commutated converters
linear quadratic Gaussian
real-time frequency regulation
author_facet Do-Hoon Kwon
Young-Jin Kim
author_sort Do-Hoon Kwon
title Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency Regulation
title_short Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency Regulation
title_full Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency Regulation
title_fullStr Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency Regulation
title_full_unstemmed Optimal Data-Driven Control of an LCC HVDC System for Real-Time Grid Frequency Regulation
title_sort optimal data-driven control of an lcc hvdc system for real-time grid frequency regulation
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description Recent advances in data sensing and processing technologies enable data-driven control of high-voltage direct-current (HVDC) systems for improving the operational stability of interfacing power grids. This paper proposes an optimal data-driven control strategy for an HVDC system with line-commutated converters (LCCs), wherein the dc-link voltage and current are optimally regulated at distinct HVDC terminals to improve frequency regulation (FR) in both rectifier- and inverter-side grids. Each HVDC converter is integrated with feedback loops for regulation of grid frequency and dc-link voltage in a localized manner. For optimal FR in both-side grids, a data-driven model of the HVDC-linked grids is then developed to design a data-driven linear quadratic Gaussian (LQG) regulator, which is incorporated with the converter feedback loops. Case studies on two different LCC HVDC systems are performed using the data-driven models, which are validated via comparisons with physics-based models and comprehensive Matlab/Simulink models. The results of the case studies confirm that the optimal data-driven control strategy successfully exploits the fast dynamics of HVDC converters; moreover, cooperation of the HVDC system and synchronous generators in both-side grids is achieved, improving real-time FR under various HVDC system specifications, LQG parameters, and inertia emulation and droop control conditions.
topic Data-driven control
dc-link voltage and current
high-voltage direct-current systems
line-commutated converters
linear quadratic Gaussian
real-time frequency regulation
url https://ieeexplore.ieee.org/document/9040588/
work_keys_str_mv AT dohoonkwon optimaldatadrivencontrolofanlcchvdcsystemforrealtimegridfrequencyregulation
AT youngjinkim optimaldatadrivencontrolofanlcchvdcsystemforrealtimegridfrequencyregulation
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