Transboundary cooperation potential under climate change and hydropower development in the Dulong-Irrawaddy river basin: A perspective on the water-energy-food-ecosystem nexus

IF 10 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Journal of Cleaner Production Pub Date : 2025-02-10 Epub Date: 2025-01-30 DOI:10.1016/j.jclepro.2025.144915
Ziyue Xu , Kai Ma , Jiwei Leng , Kaiwen Zhang , Rui Luo , Daming He
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Abstract

Water crises are exacerbated by accelerating climate change and increasing water demand and thus have emerged as critical risks to countries worldwide. This issue is particularly pressing in Asia's transboundary river basins, where inadequate collaborative mechanisms and uncertain future cooperation prospects heighten the risk of these crises occurring. For example, the Dulong-Irrawaddy River Basin (DIRB) is challenged by both climate change and potential large-scale hydropower development, yet lacks a comprehensive, basin-wide study on transboundary water cooperation. This study represents the initial application of an integrated Water-Energy-Food-Ecosystem (WEFE) nexus modeling framework to the DIRB, quantitatively assessing changes in economic benefits (hydropower and irrigation) and ecological responses (Ecological Flow (EF), Sediment Transport (ST), and Navigation (NG)) under future climate scenarios and hydropower development. The results show that the operation of large hydropower reservoirs will substantially increase economic benefits, with a noticeable trend of growth from the near (2030–2049) to the far future (2075–2099), fueled by climate change-induced increases in runoff. Among the three water allocation strategies, the two cooperative scenarios, the Combinatorial Benefit Optimization (CBO) scenario and the Irrigation Benefit Priority (IBP) scenario, offer significant economic advantages over the noncooperative scenario, the Hydropower Benefit Priority (HBP) scenario. Specifically, the annual economic benefits increase by 0.68 and 0.43 billion USD under SSP2-4.5, and by 0.94 and 0.66 billion USD under SSP5-8.5. To balance hydropower and irrigation benefits, the CBO scenario is preferable, as it sacrifices less hydropower than does the IBP scenario. This preference mitigates annual economic losses by approximately 0.56 billion USD under SSP2-4.5 and 0.42 billion USD under SSP5-8.5. Evaluations for various typical years also reveal that the cooperative scenarios generate nearly twice the additional irrigation benefits compared with noncooperative ones, with cooperation proving more advantageous under drier conditions. The ecological response analysis under future water benefit trade-offs indicates that operating upstream cascade reservoirs can increase downstream dry season EF and NG guarantee rates while resulting in limited sediment losses, which remain below 3%. The findings of this study indicate that potential hydropower development in the DIRB can offer substantial basin-wide comprehensive benefits, which are greatly enhanced through cooperative efforts. Additionally, the integrated methodology proposed in this study can be applied to similar challenges in other basins, helping decision-makers identify potential pathways for more cooperative and efficient cross-border water resource management in line with global Sustainable Development Goals.

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气候变化与伊洛瓦底江流域水电开发的跨境合作潜力:基于水-能源-粮食-生态系统关系的视角
气候变化的加速和水需求的增加加剧了水危机,因此已成为世界各国面临的重大风险。这一问题在亚洲跨界河流流域尤为紧迫,在这些地区,合作机制不足和未来合作前景不确定增加了发生这些危机的风险。例如,独龙-伊洛瓦底江流域(DIRB)面临着气候变化和潜在的大规模水电开发的挑战,但缺乏对跨界水合作的全面的、全流域的研究。本研究首次将水-能量-食物-生态系统(WEFE)一体化关联模型框架应用于DIRB,定量评估未来气候情景和水电开发下经济效益(水电和灌溉)和生态响应(生态流量(EF)、输沙(ST)和导航(NG))的变化。结果表明:在气候变化引起的径流增加的推动下,大型水电水库的运行将大幅提高经济效益,从近期(2030-2049年)到远期(2075-2099年),经济效益有明显的增长趋势;在3种水资源分配策略中,组合效益优化(CBO)和灌溉效益优先(IBP)两种合作方案比水电效益优先(HBP)方案具有显著的经济优势。其中,在ssp2 - 45下,年经济效益分别增加0.68和4.3亿美元,在SSP5-8.5下,年经济效益分别增加0.94和6.6亿美元。为了平衡水电和灌溉效益,CBO方案更可取,因为它比IBP方案牺牲更少的水电。这种偏好在ssp2 - 45和SSP5-8.5下分别减轻了约5.6亿美元和4.2亿美元的年度经济损失。对不同典型年份的评价还表明,合作方案产生的额外灌溉效益几乎是非合作方案的两倍,在干旱条件下,合作方案更有利。未来水效益权衡下的生态响应分析表明,上游梯级水库的运行可以提高下游旱季EF和NG的保证率,同时导致有限的泥沙损失,保持在3%以下。本研究结果表明,DIRB的潜在水电开发可以提供大量的全流域综合效益,通过合作的努力,这种效益大大增强。此外,本研究提出的综合方法可以应用于其他流域的类似挑战,帮助决策者找到符合全球可持续发展目标的更合作、更有效的跨境水资源管理的潜在途径。
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来源期刊
Journal of Cleaner Production
Journal of Cleaner Production 环境科学-工程:环境
CiteScore
20.40
自引率
9.00%
发文量
4720
审稿时长
111 days
期刊介绍: The Journal of Cleaner Production is an international, transdisciplinary journal that addresses and discusses theoretical and practical Cleaner Production, Environmental, and Sustainability issues. It aims to help societies become more sustainable by focusing on the concept of 'Cleaner Production', which aims at preventing waste production and increasing efficiencies in energy, water, resources, and human capital use. The journal serves as a platform for corporations, governments, education institutions, regions, and societies to engage in discussions and research related to Cleaner Production, environmental, and sustainability practices.
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