Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power System

To address the problems of wind and solar generation volatility and lose of wind and photovoltaic resources, on the basis of the complementary property of wind-solar-water, the topology structure of the wind-solar-water synergy power generation system is constructed. Taking the minimum grid fluctuat...

Full description

Saved in:
Bibliographic Details
Main Authors: Guo Zhao, Chenxi Wan, Wanqing Zuo, Kefei Zhang, Xinyi Shu
Format: Article
Language:English
Published: Wiley 2022-01-01
Series:International Journal of Photoenergy
Online Access:http://dx.doi.org/10.1155/2022/5209208
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1832548620246712320
author Guo Zhao
Chenxi Wan
Wanqing Zuo
Kefei Zhang
Xinyi Shu
author_facet Guo Zhao
Chenxi Wan
Wanqing Zuo
Kefei Zhang
Xinyi Shu
author_sort Guo Zhao
collection DOAJ
description To address the problems of wind and solar generation volatility and lose of wind and photovoltaic resources, on the basis of the complementary property of wind-solar-water, the topology structure of the wind-solar-water synergy power generation system is constructed. Taking the minimum grid fluctuation index, the minimum wind-photovoltaic-hydro discard rate and the greatest economic effectiveness of the power station as the goal functions and considering various constraints of the wind, photovoltaic, and hydrostation units, a triobjective optimization running model of the wind-photovoltaic-water synergy system is established. Meanwhile, this essay suggests an IMOSSA on the basis of tent chaotic sequence and random wandering strategy to settle the described triobjective optimization issue. Taking Hubei Pankou as an example for simulation analysis, after choosing the best scheme, IMOSSA compared with MOSSA, MOGWO, and NSGA-II, the volatility of sunny days is reduced by 12.39%, 19.5%, and 36.71%, respectively; the wind-photovoltaic abandonment rate is reduced by 11.17%, 22.5%, and 38.03%, respectively, while in the rainy days the volatility is reduced by 8.09%, 18.34%, and 47.03%, respectively; the wind-photovoltaic abandonment rate is reduced by 14.84%, 16.86%, and 40%, respectively. Therefore, it is possible to demonstrate the validity of the proposed three-objective model and the efficiency of the IMOSSA in solving the issue. The efficiency of the optimization operation approach suggested in this research is confirmed by the case study, providing a new idea for the large-scale consumption of new energy in high-proportion hydropower grids.
format Article
id doaj-art-8edd13cf1b1746fe8b96f37823505f62
institution Kabale University
issn 1687-529X
language English
publishDate 2022-01-01
publisher Wiley
record_format Article
series International Journal of Photoenergy
spelling doaj-art-8edd13cf1b1746fe8b96f37823505f622025-02-03T06:13:33ZengWileyInternational Journal of Photoenergy1687-529X2022-01-01202210.1155/2022/5209208Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power SystemGuo Zhao0Chenxi Wan1Wanqing Zuo2Kefei Zhang3Xinyi Shu4School of Electrical and Electronic EngineeringSchool of Electrical and Electronic EngineeringSchool of Electrical and Electronic EngineeringSchool of Electrical and Electronic EngineeringWuhan Britain-China SchoolTo address the problems of wind and solar generation volatility and lose of wind and photovoltaic resources, on the basis of the complementary property of wind-solar-water, the topology structure of the wind-solar-water synergy power generation system is constructed. Taking the minimum grid fluctuation index, the minimum wind-photovoltaic-hydro discard rate and the greatest economic effectiveness of the power station as the goal functions and considering various constraints of the wind, photovoltaic, and hydrostation units, a triobjective optimization running model of the wind-photovoltaic-water synergy system is established. Meanwhile, this essay suggests an IMOSSA on the basis of tent chaotic sequence and random wandering strategy to settle the described triobjective optimization issue. Taking Hubei Pankou as an example for simulation analysis, after choosing the best scheme, IMOSSA compared with MOSSA, MOGWO, and NSGA-II, the volatility of sunny days is reduced by 12.39%, 19.5%, and 36.71%, respectively; the wind-photovoltaic abandonment rate is reduced by 11.17%, 22.5%, and 38.03%, respectively, while in the rainy days the volatility is reduced by 8.09%, 18.34%, and 47.03%, respectively; the wind-photovoltaic abandonment rate is reduced by 14.84%, 16.86%, and 40%, respectively. Therefore, it is possible to demonstrate the validity of the proposed three-objective model and the efficiency of the IMOSSA in solving the issue. The efficiency of the optimization operation approach suggested in this research is confirmed by the case study, providing a new idea for the large-scale consumption of new energy in high-proportion hydropower grids.http://dx.doi.org/10.1155/2022/5209208
spellingShingle Guo Zhao
Chenxi Wan
Wanqing Zuo
Kefei Zhang
Xinyi Shu
Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power System
International Journal of Photoenergy
title Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power System
title_full Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power System
title_fullStr Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power System
title_full_unstemmed Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power System
title_short Research on Multiobjective Optimal Operation Strategy for Wind-Photovoltaic-Hydro Complementary Power System
title_sort research on multiobjective optimal operation strategy for wind photovoltaic hydro complementary power system
url http://dx.doi.org/10.1155/2022/5209208
work_keys_str_mv AT guozhao researchonmultiobjectiveoptimaloperationstrategyforwindphotovoltaichydrocomplementarypowersystem
AT chenxiwan researchonmultiobjectiveoptimaloperationstrategyforwindphotovoltaichydrocomplementarypowersystem
AT wanqingzuo researchonmultiobjectiveoptimaloperationstrategyforwindphotovoltaichydrocomplementarypowersystem
AT kefeizhang researchonmultiobjectiveoptimaloperationstrategyforwindphotovoltaichydrocomplementarypowersystem
AT xinyishu researchonmultiobjectiveoptimaloperationstrategyforwindphotovoltaichydrocomplementarypowersystem