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An advanced complementary scheme of floating photovoltaic and hydropower generation flourishing water-food-energy nexus synergies

机译:一种先进的浮动光伏和水电机生成水 - 食物能源Nexus协同作用的先进互补方案

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摘要

Hybrid hydropower and floating photovoltaic power generation has far-reaching effects on the intertwined water, food and energy (WFE) nexus, but the complementary operation is fundamentally challenging especially under high uncertainties of hydro-meteorological conditions. This study proposed an artificial intelligence-based WFE system-overarching solution driven by hybrid hydro-floating photovoltaic power generation for promoting nexus synergies. A multi-objective optimization model grounded upon the Grasshopper Optimization Algorithm was developed to simultaneously maximize hydro-floating photovoltaic power output, the ratio of water storage to reservoir capacity, and the ratio of water supply to water demand. The Shihmen Reservoir watershed and its WFE system in northern Taiwan constituted the case study. The results demonstrated that the proposed optimization model could significantly improve synergistic benefits of the WFE nexus by reaching 13%, 13.3% and 15.1% in water storage, food production and hydro-floating photovoltaic power output, respectively. The optimal tilt angles of floating photovoltaic installation would vary between -11.9 degrees (Summer) and 44.3 degrees (Winter). This study opens up new perspectives on green energy production expansion while stimulating WFE nexus synergies in support of policy-makers with feasible schemes on floating photovoltaic deployment in the interest of social sustainability. In consequence, new niches are exploited for floating photovoltaic deployment and give rise to impact mitigation concerning hydro-meteorological uncertainties on WFE nexus management.
机译:混合水电和浮动光伏发电对交织的水,食物和能量(WFE)Nexus具有深远的影响,但互补的运作在根本上挑战,特别是在水流气象条件的高不确定性下。该研究提出了由杂交水力浮动光伏发电驱动的基于人工智能的WFE系统总体解决方案,用于促进Nexus协同作用。开发了一种在蚱蜢优化算法上接地的多目标优化模型,以同时最大化水力浮动光伏电力输出,水储存与储存能力的比率,以及供水与水需求的比率。北台湾史门水库流域及其WFE系统构成了案例研究。结果表明,所提出的优化模型可以分别显着提高WFE Nexus的协同效益,分别在储水,食品生产和水力浮动光伏电力输出中达到13%,13.3%和15.1%。浮动光伏安装的最佳倾斜角度在-11.9度(夏季)和44.3度(冬季)之间会有所不同。本研究开辟了绿色能源产量扩张的新观点,同时刺激了WFE Nexus协同效应,以支持具有可行的方案,以浮动光伏部署的可行计划,以社会可持续性的利益。因此,新的利基被利用用于浮动光伏部署,并引起关于WFE Nexus管理的水流性不确定性的影响。

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