Multi-phase heat transfer in porous and fractured rock

IF 10.8 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Earth-Science Reviews Pub Date : 2024-03-01 DOI:10.1016/j.earscirev.2024.104730
Thomas Heinze
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Abstract

Various geoscientific processes in the shallow subsurface experience a temperature difference between the solid and the liquid or gaseous phase. Prominent examples include the injection of cold water into a hot host rock, the fast intrusion of supercritical CO2 from the mantle into shallower regions, or the rainwater infiltration into partially frozen soil. In such an absence of local thermal equilibrium between phases, heat transfer needs to be described explicitly by Newton's law of cooling and depends on the heat transfer coefficient and the specific heat transfer area between the involved phases. Despite various works, the quantification and the dissolution of dependencies of the heat transfer coefficient remain ambiguous. The study of heat transfer is separated between porous and fractured materials due to the different geometry, the applied flow rules, and common fields of applications. Identifying scenarios in which heat transfer effects in a local thermal non-equilibrium (LTNE) situation are relevant is already a challenging task but in past years more and more scenarios with persistent differences in phase temperatures were found. In this contribution, the mathematical governing equations for heat transfer between solid rock and moving fluid are given and various approaches of parameterization are discussed. This discussion of heat transfer includes various types of heat transfer mechanisms that can occur in the subsurface. Subsequently, the state of the art for heat transfer in porous and fractured media is presented with a special emphasis on resolving dependencies on geometry (grain size, fracture aperture) and flow velocity. Possible solution strategies addressing heat transfer in heterogeneous fractured porous media are presented, and possible applications with relevant LTNE effects are discussed with an outlook on future challenges in the field of geothermal energy exploitation and storage, shallow multi-phase infiltration scenarios, CO2 sequestration, and underground H2 storage.

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多孔和断裂岩石中的多相传热
浅层地下的各种地球科学过程都会经历固相和液相或气相之间的温差。突出的例子包括将冷水注入热主岩、超临界二氧化碳从地幔快速侵入较浅区域或雨水渗入部分冻结的土壤。在这种相间缺乏局部热平衡的情况下,热量传递需要用牛顿冷却定律来明确描述,并取决于相关相间的传热系数和特定传热面积。尽管有各种研究,但对传热系数的量化和依赖关系的分解仍然模糊不清。由于多孔材料和断裂材料的几何形状、应用的流动规则以及共同的应用领域不同,对传热的研究也不同。确定局部热非均衡(LTNE)情况下的传热效果是一项具有挑战性的任务,但在过去几年中,发现了越来越多的相温差持续存在的情况。本文给出了固体岩石和运动流体之间热传递的数学控制方程,并讨论了各种参数化方法。关于传热的讨论包括地下可能出现的各种传热机制。随后,介绍了多孔介质和裂隙介质传热的最新技术,特别强调了解决与几何形状(晶粒大小、裂隙孔径)和流速相关的问题。介绍了解决异质断裂多孔介质传热问题的可能解决策略,讨论了具有相关 LTNE 效应的可能应用,并展望了地热能开发和储存、浅层多相渗透方案、二氧化碳封存和地下 H2 储存领域的未来挑战。
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来源期刊
Earth-Science Reviews
Earth-Science Reviews 地学-地球科学综合
CiteScore
21.70
自引率
5.80%
发文量
294
审稿时长
15.1 weeks
期刊介绍: Covering a much wider field than the usual specialist journals, Earth Science Reviews publishes review articles dealing with all aspects of Earth Sciences, and is an important vehicle for allowing readers to see their particular interest related to the Earth Sciences as a whole.
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