Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near Zone

Affected by different steady-state reactive power output ratios among generators, capacitors and other reactive devices in the end-to-end power grid, voltage collapse may occur due to the failure of the receiving-end AC system, and the problem of voltage stabilization in multi-DC feed systems is par...

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Main Authors: Yue Zongzu, Shen Xuhui, Yan Feng
Format: Article
Language:English
Published: EDP Sciences 2020-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/25/e3sconf_caes2020_06021.pdf
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spelling doaj-4f7c928d867040e795b45f2ac6b92e872021-04-02T15:37:40ZengEDP SciencesE3S Web of Conferences2267-12422020-01-011650602110.1051/e3sconf/202016506021e3sconf_caes2020_06021Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near ZoneYue Zongzu0Shen Xuhui1Yan Feng2North China Electric Power UniversityChina Electric Power Research InstituteNorth China Electric Power UniversityAffected by different steady-state reactive power output ratios among generators, capacitors and other reactive devices in the end-to-end power grid, voltage collapse may occur due to the failure of the receiving-end AC system, and the problem of voltage stabilization in multi-DC feed systems is particularly common. For suppressing voltage collapse, sufficient dynamic reactive power support is an effective measure, and there are some differences in the dynamic support effect of different reactive power sources. The dynamic reactive power response of the generator and its reactive power margin are two important factors affecting the coordination and optimization of the reactive power of the generator. The comprehensive evaluation index is adopted to optimize the sequencing of the reactive power output of the generator near the DC drop point. A coordinated control method of dynamic and static reactive power for DC near-point systems at different voltage levels is proposed. By controlling the steady-state reactive power output ratio between multiple reactive devices, the node voltage is maintained near the target value, and reactive power control schemes at different voltage levels can be given to meet load changes. Finally, taking the actual situation of Central China Power Grid as an example, the results of different reactive voltage control strategies are compared and analyzed, which proves that the coordinated control strategy of multiple reactive power devices can significantly improve the stability of the receiving grid voltage.https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/25/e3sconf_caes2020_06021.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Yue Zongzu
Shen Xuhui
Yan Feng
spellingShingle Yue Zongzu
Shen Xuhui
Yan Feng
Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near Zone
E3S Web of Conferences
author_facet Yue Zongzu
Shen Xuhui
Yan Feng
author_sort Yue Zongzu
title Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near Zone
title_short Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near Zone
title_full Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near Zone
title_fullStr Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near Zone
title_full_unstemmed Coordinated Optimal Control of Multiple Reactive Power Devices at Different Voltage Levels in UHVDC Near Zone
title_sort coordinated optimal control of multiple reactive power devices at different voltage levels in uhvdc near zone
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2020-01-01
description Affected by different steady-state reactive power output ratios among generators, capacitors and other reactive devices in the end-to-end power grid, voltage collapse may occur due to the failure of the receiving-end AC system, and the problem of voltage stabilization in multi-DC feed systems is particularly common. For suppressing voltage collapse, sufficient dynamic reactive power support is an effective measure, and there are some differences in the dynamic support effect of different reactive power sources. The dynamic reactive power response of the generator and its reactive power margin are two important factors affecting the coordination and optimization of the reactive power of the generator. The comprehensive evaluation index is adopted to optimize the sequencing of the reactive power output of the generator near the DC drop point. A coordinated control method of dynamic and static reactive power for DC near-point systems at different voltage levels is proposed. By controlling the steady-state reactive power output ratio between multiple reactive devices, the node voltage is maintained near the target value, and reactive power control schemes at different voltage levels can be given to meet load changes. Finally, taking the actual situation of Central China Power Grid as an example, the results of different reactive voltage control strategies are compared and analyzed, which proves that the coordinated control strategy of multiple reactive power devices can significantly improve the stability of the receiving grid voltage.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/25/e3sconf_caes2020_06021.pdf
work_keys_str_mv AT yuezongzu coordinatedoptimalcontrolofmultiplereactivepowerdevicesatdifferentvoltagelevelsinuhvdcnearzone
AT shenxuhui coordinatedoptimalcontrolofmultiplereactivepowerdevicesatdifferentvoltagelevelsinuhvdcnearzone
AT yanfeng coordinatedoptimalcontrolofmultiplereactivepowerdevicesatdifferentvoltagelevelsinuhvdcnearzone
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