Time Zero for Net Zero: A Coal Mine Baseline for Decarbonising Heat

A. Monaghan, L. Bateson, A. Boyce, N. Burnside, Rebecca M. Chambers, J. R. de Rezende, Eilidh Dunnet, P. Everett, S. Gilfillan, M. S. Jibrin, G. Johnson, R. Luckett, D. J. MacAllister, A. MacDonald, J. Moreau, L. Newsome, A. Novellino, B. Palumbo-Roe, R. Pereira, Douglas R Smith, M. J. Spence, V. Starcher, H. Taylor-Curran, C. Vane, T. Wagner, D. B. Walls
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引用次数: 3

Abstract

Mine water geothermal energy could provide sustainable heating, cooling and storage to assist in the decarbonisation of heat and achieving Net Zero carbon emissions. However, mined environments are highly complex and we currently lack the understanding to confidently enable a widespread, cost-effective deployment of the technology. Extensive and repeated use of the mined subsurface as a thermal source/store and the optimisation of operational infrastructure encompasses a range of scientific and technical challenges that require broad partnerships to address. We present emerging results of a pioneering multidisciplinary collaboration formed around an at-scale mine water geothermal research infrastructure in Glasgow, United Kingdom. Focused on a mined, urban environment, a range of approaches have been applied to both characterise the environmental change before geothermal activities to generate “time zero” datasets, and to develop novel monitoring tools for cost-effective and environmentally-sound geothermal operations. Time zero soil chemistry, ground gas, surface water and groundwater characterisation, together with ground motion and seismic monitoring, document ongoing seasonal and temporal variability that can be considered typical of a post-industrial, urban environment underlain by abandoned, flooded coal mine workings. In addition, over 550 water, rock and gas samples collected during borehole drilling and testing underwent diverse geochemical, isotopic and microbiological analysis. Initial results indicate a connected subsurface with modern groundwater, and resolve distinctive chemical, organic carbon and stable isotope signatures from different horizons that offer promise as a basis for monitoring methods. Biogeochemical interactions of sulphur, carbon and iron, plus indications of microbially-mediated mineral oxidation/reduction reactions require further investigation for long term operation. Integration of the wide array of time zero observations and understanding of coupled subsurface processes has significant potential to inform development of efficient and resilient geothermal infrastructure and to inform the design of fit-for-purpose monitoring approaches in the quest towards meeting Net Zero targets.
零净时间:煤矿脱碳热基线
矿井水地热能可以提供可持续的加热、冷却和储存,以协助热量的脱碳和实现净零碳排放。然而,采矿环境非常复杂,我们目前缺乏对该技术广泛、经济高效部署的理解。广泛和重复使用地下开采作为热源/储存和优化运营基础设施,涉及一系列科学和技术挑战,需要广泛的合作伙伴关系来解决。我们提出了一项开创性的多学科合作的新成果,该合作围绕着英国格拉斯哥的一个大规模矿井水地热研究基础设施形成。针对采矿和城市环境,已经应用了一系列方法来描述地热活动之前的环境变化特征,以产生“零时间”数据集,并开发新的监测工具,以实现成本效益和无害环境的地热作业。零时间土壤化学、地下气体、地表水和地下水特征,以及地面运动和地震监测,记录了持续的季节性和时间变化,这些变化可以被认为是典型的后工业时代城市环境,其基础是废弃的、被淹没的煤矿工作。此外,在钻孔和测试过程中收集的550多个水、岩石和气体样本进行了不同的地球化学、同位素和微生物分析。初步结果表明,地下与现代地下水相连,并从不同的层位分析出独特的化学、有机碳和稳定同位素特征,为监测方法提供了基础。硫、碳和铁的生物地球化学相互作用,以及微生物介导的矿物氧化/还原反应的迹象,需要进一步研究以进行长期操作。广泛的零时间观测和对耦合地下过程的理解的整合具有重要的潜力,可以为开发高效和有弹性的地热基础设施提供信息,并为设计适合目的的监测方法提供信息,以实现净零目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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