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高分辨率发电模型证明了高海拔漂浮太阳能发电的适用性。

High-resolution electricity generation model demonstrates suitability of high-altitude floating solar power.

作者信息

Eyring Nicholas, Kittner Noah

机构信息

Group for Sustainability and Technology, Department of Management, Technology, and Economics, ETH Zürich, Zürich, Switzerland.

Department of Environmental Sciences and Engineering, Gillings School of Global Public Health, University of North Carolina, Chapel Hill, NC, USA.

出版信息

iScience. 2022 May 13;25(6):104394. doi: 10.1016/j.isci.2022.104394. eCollection 2022 Jun 17.

Abstract

This paper develops a meteorological site selection algorithm to quantify the electricity generation potential of floating solar design configurations on alpine water bodies in Switzerland. Using European power market demand patterns, we estimate the technical and economic potential of 82 prospective high-altitude floating solar sites co-located with existing Swiss hydropower. We demonstrate that the amount of solar energy radiating from high-altitude Swiss water bodies could meet total national electricity demand while significantly reducing carbon emissions and addressing seasonal supply/demand deficits. We construct a global map overlaying sites on each continent where high-altitude floating solar could provide low-carbon, land-sparing electricity. Our results present a compelling motivation to develop alpine floating solar installations. However, significant innovations are still needed to couple floating solar with existing hydropower operations or low-cost energy storage. As the industry matures, high-altitude floating solar technology could become a high-value, low-carbon electricity source.

摘要

本文开发了一种气象选址算法,以量化瑞士高山水体上漂浮式太阳能设计配置的发电潜力。利用欧洲电力市场需求模式,我们估算了82个与瑞士现有水电站共址的潜在高海拔漂浮式太阳能电站的技术和经济潜力。我们证明,瑞士高山水体辐射的太阳能总量可以满足全国的电力总需求,同时显著减少碳排放并解决季节性供需缺口。我们绘制了一幅全球地图,叠加了各大洲可提供低碳、节省土地电力的高海拔漂浮式太阳能电站选址。我们的研究结果为开发高山漂浮式太阳能装置提供了极具说服力的动机。然而,要将漂浮式太阳能与现有的水电运营或低成本储能相结合,仍需要重大创新。随着该行业的成熟,高海拔漂浮式太阳能技术可能会成为一种高价值的低碳电力来源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa06/9157236/698250ec2831/fx1.jpg

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