Smart assessment, management and optimisation of urban geothermal resources (SmartRes)
Smart assessment, management and optimisation of urban geothermal resources (SmartRes)
批准号:
NE/X005496/1
负责人:
Adam Booth
金额:
$46.17万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --
中文摘要
英国使用约50吉瓦的能源来加热和冷却建筑物,其中只有6%来自可再生能源。建筑物的供暖几乎占英国碳排放量的四分之一,而随着气候变暖和夏季变热,预计对制冷的需求将增加。英国供热和建筑战略明确指出,现在需要采取行动减少排放,以促进遵守具有法律约束力的2050年净零排放目标。此外,当前地缘政治的不确定性凸显了与进口能源相关的风险。然而,由于其极端的季节性,热量对脱碳具有挑战性。每日热量需求约为15至150吉瓦,因此跨季节储存的新绿色技术至关重要。地热资源提供天然热能、大规模的季节性储能、制冷和供暖,以及稳定的低碳能源供应。城市地热资源的广泛开发可以提供英国供暖和制冷需求的重要组成部分-在某些情况下是全部-支持英国的自给自足和能源安全。然而,在利用地热能方面,特别是在城市地区大规模利用地热能方面,仍然存在障碍。地下资源的规模、城市地热部署的长期可持续性以及潜在的环境影响都存在不确定性。需要新的方法和工具来监控和管理设施,以确保资源得到负责任的使用。这些知识差距,沿着加上利益攸关方和决策者缺乏认识和指导,导致风险高于必要水平,从而导致成本上升。在这个项目中,我们将通过减少城市地区大规模储存和产生热量和冷却时地面行为的不确定性来消除吸收障碍。我们将重点关注相对较浅(<400米深)的地热资源和开环系统,其中地下水被泵入和泵出地下多孔,可渗透的含水层岩石,因为这些提供了大的存储容量,可以提供热量和冷却。浅,开环系统也可部署在大多数英国城市地区,并具有较低的投资成本比技术,需要更深的钻探。我们将进行先进的现场实验,以最先进的监测,由实验室实验的支持,以确定含水层的储存和开采热量的反应,并使用结果来了解温度如何变化在一个广泛的区域作为地下水流在含水层内传递热量。我们将比较两种不同的含水层,对比类型的地下水流制度,可以在英国大部分地区利用。我们还将确定温度变化如何影响地下水质量,并对生态环境和敏感受体施加压力,以及了解资源使用引起的地面运动的任何风险。现场数据将用于创建校准的热流模型,我们可以将其用作“数值实验室”来模拟和探索城市地热的容量以及城市内不同设施如何相互作用。研究结果将有助于规划未来的资源使用,并评估地热资源储存工业过程和商业建筑废热的能力,并在需要时将其返回。我们将探索使用基于人工智能的模型,这些模型可以从地热运营商提供的数据中“学习”,以负责任和综合的方式积极管理资源。总之,这项研究将使监管机构能够规划和允许安装,以确保公平和防止环境破坏,以及确保系统设计实际预测可用能源的数量。将对资源评估、安全和可持续的运营和管理提出建议,以促进低碳、地热供暖和制冷城市的广泛发展
英文摘要
The UK uses around 50 GW of energy to heat and cool buildings with only 6% delivered from renewable sources. Heating of buildings represents almost a quarter of UK carbon emissions, while demand for cooling is projected to increase as the climate warms and summers become hotter. The UK Heat and Buildings Strategy is clear that action to reduce emissions is required now to facilitate compliance with legally binding 2050 Net Zero targets. Moreover, the current geopolitical uncertainty has highlighted the risks associated with importing energy. However, heat is challenging to decarbonise due to its extreme seasonality. Daily heat demand ranges from around 15 to 150 GW, so new green technologies for inter-seasonal storage are essential. Geothermal resources offer natural heat energy, very large-scale seasonal energy storage, cooling as well as heating, and steady, low carbon energy supply. Widespread exploitation of urban geothermal resources could deliver a significant component - and in some cases all - of the UK's heating and cooling demand, supporting UK self-sufficiency and energy security. However, barriers remain to uptake of geothermal energy, especially at large-scale in urban areas. There is uncertainty in the size of the underground resource, the long-term sustainability of urban geothermal deployments, and potential environmental impacts. New methods and tools are required to monitor and manage installations to ensure the resource is responsibly used. These knowledge gaps, along with lack of awareness and guidance available for stakeholders and decision makers, result in higher than necessary risks and therefore costs. In this project, we will remove obstacles to uptake by reducing uncertainty about how the ground behaves when used to store and produce heat and cool at a large scale in urban areas. We will focus on relatively shallow (<400m depth) geothermal resources and open-loop systems in which groundwater is pumped into and out of porous, permeable aquifer rocks underground, because these offer large storage capacity and can deliver heat and cool. Shallow, open-loop systems are also deployable in most UK urban areas and have lower investment costs than technologies which require deeper drilling. We will conduct advanced field experiments with state-of-the-art monitoring, supported by laboratory experiments, to determine the response of aquifers to storage and exploitation of heat and use the results to understand how temperature changes over a wide area as groundwater flow transfers heat within the aquifer. We will compare two different aquifers, with contrasting types of underground flow regimes, that can be exploited across much of the UK. We will also determine how temperature changes impact groundwater quality and stress ecological environments and sensitive receptors, as well as understand any risks of ground movement caused by use of the resource. The field data will be used to create calibrated heat flow models, which we can use as a 'numerical laboratory' to simulate and explore the capacity of urban geothermal and how different installations within a city might interact. The results will support planning of future resource use and assess the capacity of geothermal resources to store waste heat from industrial processes and commercial buildings and return it later when needed. We will explore the use of AI-based models that can 'learn' from data provided by geothermal operators to actively manage the resource in a responsible and integrated way. Together, this research will permit regulators to plan and permit installations to ensure fairness and prevent environmental damage, as well as ensuring system designs realistically predict the amount of energy available. Recommendations will be made for resource assessment, safe and sustainable operation and management, to stimulate the widespread development of low carbon, geothermally heated and cooled cities
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
Geophysical surveys to inform heat-flow experiments in a fractured chalk aquifer, Berkshire, UK
地球物理调查为英国伯克郡裂隙白垩含水层热流实验提供信息
DOI:
10.5194/egusphere-egu24-12616
发表时间:
2024
期刊:
影响因子:
--
作者:
[Kyrkou K]
通讯作者:
Kyrkou K
Collaborative Research: Tying deep-seated landslides to base level, earthquakes, and a changing climate in the Pacific Northwest
-
批准号:2000188
-
项目类别:Standard Grant
-
资助金额:$22.99万
-
财政年份:2020
-
负责人:Adam Booth
-
依托单位:
Thwaites Interdisciplinary Margin Evolution (TIME)
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批准号:NE/S00677X/1
-
项目类别:Research Grant
-
资助金额:$70.14万
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财政年份:2018
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负责人:Adam Booth
-
依托单位:
Collaborative research: Linking landslide and windstorm exposure to regional carbon stocks and fluxes in the largest US forest carbon reservoir, southeast Alaska
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批准号:1711986
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项目类别:Standard Grant
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资助金额:$27.67万
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财政年份:2017
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负责人:Adam Booth
-
依托单位:
Ice shelf stress response to large iceberg calving
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批准号:NE/R012334/1
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项目类别:Research Grant
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资助金额:$6.66万
-
财政年份:2017
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负责人:Adam Booth
-
依托单位:
国内基金
海外基金
基于重要农地保护LESA(Land Evaluation and Site Assessment)体系思想的高标准基本农田建设研究
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批准号:41340011
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项目类别:专项基金项目
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资助金额:20.0万元
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批准年份:2013
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负责人:钱凤魁
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依托单位:
城镇居民亚健康状态的评价方法学及健康管理模式研究
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批准号:81172775
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项目类别:面上项目
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资助金额:14.0万元
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批准年份:2011
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负责人:许军
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依托单位: