Potential of low-temperature aquifer thermal energy storage (LT-ATES) in Germany

IF 2.9 2区 地球科学 Q3 ENERGY & FUELS Geothermal Energy Pub Date : 2022-10-17 DOI:10.1186/s40517-022-00234-2
Ruben Stemmle, Vanessa Hammer, Philipp Blum, Kathrin Menberg
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引用次数: 3

Abstract

More than 30% of Germany’s final energy consumption currently results from thermal energy for heating and cooling in the building sector. One possibility to achieve significant greenhouse gas emission savings in space heating and cooling is the application of aquifer thermal energy storage (ATES) systems. Hence, this study maps the spatial technical potential of shallow low-temperature ATES systems in Germany. Important criteria for efficient ATES operation considered in this assessment encompass suitable hydrogeological conditions, such as aquifer productivity and groundwater flow velocity, and balanced space heating and cooling demands. The latter is approximated by the ratio of heating and cooling degree days, which is incorporated as a time-dependent criterion to also evaluate the impact of climate change on the ATES potential. The hydrogeological and climatic criteria are combined within a spatial analysis revealing that, regarding the upcoming decades, about 54% of the investigated German area are very well or well suitable for ATES applications, largely concentrating on three regions: the North German Basin, the Upper Rhine Graben and the South German Molasse Basin. Considering time-dependent climatic conditions, the very well or well suitable areas will increase by 13% for the time period 2071–2100. This is mostly caused by a large relative area increase of the very well suitable regions due to an increasing cooling demand in the future. The sensitivity of the very well and well suitable regions to the criteria weightings is relatively low. Accounting for existing water protection zones shows a reduction of the country-wide share of very well or well suitable areas by around 11%. Nevertheless, the newly created potential map reveals a huge potential for shallow low-temperature ATES systems in Germany.

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德国低温含水层储热潜力研究
目前,德国超过30%的最终能源消耗来自建筑部门的供暖和制冷热能。在空间供暖和制冷中实现显著温室气体减排的一种可能性是应用含水层热能储存(ATES)系统。因此,本研究绘制了德国浅层低温ATES系统的空间技术潜力。本次评估中考虑的有效ATES运行的重要标准包括合适的水文地质条件,如含水层生产力和地下水流速,以及平衡的空间加热和冷却需求。后者由加热和冷却度日数的比值近似估算,该比值也被纳入一个与时间有关的标准,以评估气候变化对ATES潜力的影响。水文地质和气候标准与空间分析相结合,揭示了在未来几十年里,大约54%的被调查德国地区非常适合或非常适合ATES应用,主要集中在三个地区:北德国盆地、上莱茵地堑和南德国Molasse盆地。考虑到与时间相关的气候条件,在2071-2100年期间,非常好或非常适合的地区将增加13%。这主要是由于未来冷却需求的增加,非常适合的区域相对面积增加了很多。非常井区和井适宜区对标准权重的敏感性相对较低。考虑到现有的水保护区,全国范围内非常好或适合井的地区的份额减少了约11%。尽管如此,新创建的潜在地图显示了德国浅层低温ATES系统的巨大潜力。
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来源期刊
Geothermal Energy
Geothermal Energy Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
5.90
自引率
7.10%
发文量
25
审稿时长
8 weeks
期刊介绍: Geothermal Energy is a peer-reviewed fully open access journal published under the SpringerOpen brand. It focuses on fundamental and applied research needed to deploy technologies for developing and integrating geothermal energy as one key element in the future energy portfolio. Contributions include geological, geophysical, and geochemical studies; exploration of geothermal fields; reservoir characterization and modeling; development of productivity-enhancing methods; and approaches to achieve robust and economic plant operation. Geothermal Energy serves to examine the interaction of individual system components while taking the whole process into account, from the development of the reservoir to the economic provision of geothermal energy.
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