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Geophysical Methods for Monitoring Temperature Changes in Shallow Low Enthalpy Geothermal Systems

机译:监测浅层低焓地热系统温度变化的地球物理方法

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Low enthalpy geothermal systems exploited with ground source heat pumps or groundwater heat pumps present many advantages within the context of sustainable energy use. Designing, monitoring and controlling such systems requires the measurement of spatially distributed temperature fields and the knowledge of the parameters governing groundwater flow (permeability and specific storage) and heat transport (thermal conductivity and volumetric thermal capacity). Such data are often scarce or not available. In recent years, the ability of electrical resistivity tomography (ERT), self-potential method (SP) and distributed temperature sensing (DTS) to monitor spatially and temporally temperature changes in the subsurface has been investigated. We review the recent advances in using these three methods for this type of shallow applications. A special focus is made regarding the petrophysical relationships and on underlying assumptions generally needed for a quantitative interpretation of these geophysical data. We show that those geophysical methods are mature to be used within the context of temperature monitoring and that a combination of them may be the best choice regarding control and validation issues.
机译:与地源热泵或地下水热泵一起开发的低焓地热系统在可持续能源利用的背景下具有许多优势。设计,监视和控制此类系统需要测量空间分布的温度场,并需要掌握控制地下水流量(渗透率和比存储)和热传输(导热率和体积热容)的参数。此类数据通常很少或无法获得。近年来,研究了电阻层析成像(ERT),自电位方法(SP)和分布式温度传感(DTS)监测地下空间和时间温度变化的能力。我们回顾了在这三种浅层应用中使用这三种方法的最新进展。特别关注岩石物理关系以及对这些地球物理数据进行定量解释通常所需的基本假设。我们表明,那些地球物理方法已经成熟,可以在温度监控的背景下使用,并且它们的组合可能是控制和验证问题的最佳选择。

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