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Floating photovoltaic plants: Ecological impacts versus hydropower operation flexibility

机译:浮动式光伏电站:生态影响与水电运营灵活性

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摘要

Floating photovoltaic power plants are a quickly growing technology in which the solar modules float on water bodies instead of being mounted on the ground. This provides an advantage, especially in regions with limited space. Floating modules have other benefits when compared to conventional solar power plants, such as reducing the evaporation losses of the water body and operating at a higher efficiency because the water reduces the temperature (of the modules). So far, the literature has focused on these aspects as well as the optimal design of such solar power plants. This study contributes to the body of knowledge by i) assessing the impact of floating solar photovoltaic modules on the water quality of a hydropower reservoir, more specifically on the development of algal blooms, and by ii) studying the impact that these modules have on the hydropower production. For the first part, a three-dimensional numerical-hydrodynamic water-quality model is used. The current case (without solar modules) is compared to scenarios in which the solar modules increasingly cover the lake, thus reducing the incident sunlight from 0% to finally 100%. The focus is on microalgal growth by monitoring total chlorophyll-a as a proxy for biomass. For the second part, as the massive installation of solar modules on a reservoir may constrain the minimum water level (to avoid the stranding of the structures), the impact on hydropower revenues is examined. Here, a tool for optimal hydropower scheduling is employed, considering both different water and power price scenarios. The Rapel reservoir in central Chile serves as a case study. The response of the system strongly depends on the percentage that the modules cover the lake: for fractions below 40%, the modules have little or no effect on both microalgal growth and hydropower revenue. For moderate covers (40-60%), algal blooms are avoided because of the reduction of light in the reservoir (which controls algal growth), without major economic hydropower losses. Finally, a large solar module cover can eradicate algal blooms entirely (which might have other impacts on the ecosystem health) and results in severe economic hydropower losses. Altogether, an optimum range of solar module covers is identified, presenting a convenient trade-off between ecology health and costs. However, a massive deployment of these floating modules may affect the development of touristic activities in the reservoir, which should be examined more closely. In general, the findings herein are relevant for decision-makers from both the energy sector and water management.
机译:浮动式光伏电站是一项快速发展的技术,其中太阳能组件漂浮在水体上,而不是安装在地面上。这提供了一个优势,特别是在空间有限的区域。与常规太阳能发电厂相比,浮动模块还具有其他优势,例如,减少水体的蒸发损失并以更高的效率运行,因为水降低了模块的温度。迄今为止,文献集中在这些方面以及此类太阳能发电厂的最佳设计。这项研究通过以下方式为知识体系做出了贡献:i)评估漂浮式太阳能光伏组件对水电站水质的影响,更具体而言,对藻华的发展,以及ii)研究这些组件对水库的影响。水力发电。在第一部分中,使用了三维数值流体动力水质模型。将当前情况(没有太阳能电池组件)与太阳能电池组件越来越多地覆盖湖泊,从而将入射阳光从0%减少到最终100%的场景进行了比较。重点是通过监测总叶绿素a作为生物质的替代物来促进微藻生长。对于第二部分,由于在水库上大量安装太阳能模块可能会限制最低水位(以避免结构搁浅),因此将考察对水电收益的影响。在这里,考虑到不同的水价和电价情况,采用了一种用于优化水电调度的工具。智利中部的Rapel水库为案例研究。系统的响应在很大程度上取决于模块覆盖湖泊的百分比:对于低于40%的馏分,模块对微藻类生长和水电收入几乎没有影响。对于中等覆盖率(40-60%),由于水库中的光减少(控制藻类的生长)而避免了藻类大量繁殖,而不会造成重大的经济水电损失。最后,大型的太阳能模块覆盖物可以完全消除藻华(这可能对生态系统健康产生其他影响),并导致严重的经济水电损失。总而言之,确定了最佳的太阳能电池组件覆盖范围,从而在生态健康和成本之间提供了一个方便的折衷方案。但是,这些浮动模块的大量部署可能会影响水库中旅游活动的发展,应对此进行更仔细的检查。通常,此处的发现与能源部门和水管理部门的决策者都相关。

著录项

  • 来源
    《Energy Conversion & Management》 |2020年第2期|112414.1-112414.8|共8页
  • 作者

  • 作者单位

    Univ Stuttgart Stochast Simulat & Safety Res Hydrosyst IWS SC Si Stuttgart Germany|German Aerosp Ctr DLR Inst Networked Energy Syst Dept Energy Syst Anal Stuttgart Germany;

    Univ Stuttgart Stochast Simulat & Safety Res Hydrosyst IWS SC Si Stuttgart Germany;

    Univ Chile Dept Civil Engn Santiago Chile;

    Univ Stuttgart Hydraul Engn & Water Resources Management IWS Stuttgart Germany;

    Univ Stuttgart Stochast Simulat & Safety Res Hydrosyst IWS SC Si Stuttgart Germany|Univ Waterloo Dept Mechatron Engn Waterloo ON Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Solar energy; Paris Agreement; Eutrophication and algae reduction; Water and ecology management; Numerical modeling; Energy and water nexus;

    机译:太阳能;巴黎协定;富营养化和藻类减少;水与生态管理;数值建模;能源与水的联系;

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