Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem service

Abstract Exploring optimal operational schemes for synergistic development is crucial for sustainable management in river basins. This study introduces a multi‐objective synergistic optimization framework aimed at analyzing the interplay among flood control, ecological integrity, and desilting objec...

Full description

Saved in:
Bibliographic Details
Main Authors: Xinmiao Cao, Teng Lin, Jiahui Li, Ting Zhou
Format: Article
Language:English
Published: Wiley-VCH 2025-02-01
Series:River
Subjects:
Online Access:https://doi.org/10.1002/rvr2.119
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849709468799991808
author Xinmiao Cao
Teng Lin
Jiahui Li
Ting Zhou
author_facet Xinmiao Cao
Teng Lin
Jiahui Li
Ting Zhou
author_sort Xinmiao Cao
collection DOAJ
description Abstract Exploring optimal operational schemes for synergistic development is crucial for sustainable management in river basins. This study introduces a multi‐objective synergistic optimization framework aimed at analyzing the interplay among flood control, ecological integrity, and desilting objectives under varying water‐sediment conditions. The framework encompasses multi‐objective reservoir optimal operation, scheme decision, and trade‐off analysis among competing objectives. To address the optimization model, an elite mutation‐based multi‐objective particle swarm optimization (MOPSO) algorithm that integrates genetic algorithms (GA) is developed. The coupling coordination degree is employed for optimal scheme decision‐making, allowing for the adjustment of weight ratios to investigate the trade‐offs between objectives. This research focuses on the Sanmenxia and Xiaolangdi cascade reservoirs in the Yellow River, utilizing three representative hydrological years: 1967, 1969, and 2002. The findings reveal that: (1) the proposed model effectively generates Pareto fronts for multi‐objective operations, facilitating the recommendation of optimal schemes based on coupling coordination degrees; (2) as water‐sediment conditions shift from flooding to drought, competition intensifies between the flood control and desilting objectives. While flood control and ecological objectives compete during flood and dry years, they demonstrate synergies in normal years (r = 0.22); conversely, ecological and desilting objectives are consistently competitive across all three typical years, with the strongest competition observed in the normal year (r = −0.95); (3) the advantages conferred to ecological objectives increase as water‐sediment conditions shift from flooding to drought. However, the promotion of the desilting objective requires more complex trade‐offs. This study provides a model and methodological approach for the multi‐objective optimization of flood control, sediment management, and ecological considerations in reservoir clusters. Moreover, the methodologies presented herein can be extended to other water resource systems for multi‐objective optimization and decision‐making.
format Article
id doaj-art-c2d9a3d38ff547a0a559e8c06b5a22fc
institution DOAJ
issn 2750-4867
language English
publishDate 2025-02-01
publisher Wiley-VCH
record_format Article
series River
spelling doaj-art-c2d9a3d38ff547a0a559e8c06b5a22fc2025-08-20T03:15:17ZengWiley-VCHRiver2750-48672025-02-0141556910.1002/rvr2.119Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem serviceXinmiao Cao0Teng Lin1Jiahui Li2Ting Zhou3School of Engineering Anhui Agricultural University Hefei ChinaSchool of Engineering Anhui Agricultural University Hefei ChinaThe National Key Laboratory of Water Disaster Prevention, Nanjing Hydraulic Research Institute Nanjing ChinaSchool of Engineering Anhui Agricultural University Hefei ChinaAbstract Exploring optimal operational schemes for synergistic development is crucial for sustainable management in river basins. This study introduces a multi‐objective synergistic optimization framework aimed at analyzing the interplay among flood control, ecological integrity, and desilting objectives under varying water‐sediment conditions. The framework encompasses multi‐objective reservoir optimal operation, scheme decision, and trade‐off analysis among competing objectives. To address the optimization model, an elite mutation‐based multi‐objective particle swarm optimization (MOPSO) algorithm that integrates genetic algorithms (GA) is developed. The coupling coordination degree is employed for optimal scheme decision‐making, allowing for the adjustment of weight ratios to investigate the trade‐offs between objectives. This research focuses on the Sanmenxia and Xiaolangdi cascade reservoirs in the Yellow River, utilizing three representative hydrological years: 1967, 1969, and 2002. The findings reveal that: (1) the proposed model effectively generates Pareto fronts for multi‐objective operations, facilitating the recommendation of optimal schemes based on coupling coordination degrees; (2) as water‐sediment conditions shift from flooding to drought, competition intensifies between the flood control and desilting objectives. While flood control and ecological objectives compete during flood and dry years, they demonstrate synergies in normal years (r = 0.22); conversely, ecological and desilting objectives are consistently competitive across all three typical years, with the strongest competition observed in the normal year (r = −0.95); (3) the advantages conferred to ecological objectives increase as water‐sediment conditions shift from flooding to drought. However, the promotion of the desilting objective requires more complex trade‐offs. This study provides a model and methodological approach for the multi‐objective optimization of flood control, sediment management, and ecological considerations in reservoir clusters. Moreover, the methodologies presented herein can be extended to other water resource systems for multi‐objective optimization and decision‐making.https://doi.org/10.1002/rvr2.119coupling coordinationflood and sediment transportmulti‐objective reservoir optimizationPareto frontYellow River basin
spellingShingle Xinmiao Cao
Teng Lin
Jiahui Li
Ting Zhou
Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem service
River
coupling coordination
flood and sediment transport
multi‐objective reservoir optimization
Pareto front
Yellow River basin
title Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem service
title_full Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem service
title_fullStr Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem service
title_full_unstemmed Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem service
title_short Integrated optimization and coordination of cascaded reservoir operations: Balancing flood control, sediment transport and ecosystem service
title_sort integrated optimization and coordination of cascaded reservoir operations balancing flood control sediment transport and ecosystem service
topic coupling coordination
flood and sediment transport
multi‐objective reservoir optimization
Pareto front
Yellow River basin
url https://doi.org/10.1002/rvr2.119
work_keys_str_mv AT xinmiaocao integratedoptimizationandcoordinationofcascadedreservoiroperationsbalancingfloodcontrolsedimenttransportandecosystemservice
AT tenglin integratedoptimizationandcoordinationofcascadedreservoiroperationsbalancingfloodcontrolsedimenttransportandecosystemservice
AT jiahuili integratedoptimizationandcoordinationofcascadedreservoiroperationsbalancingfloodcontrolsedimenttransportandecosystemservice
AT tingzhou integratedoptimizationandcoordinationofcascadedreservoiroperationsbalancingfloodcontrolsedimenttransportandecosystemservice