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Novel instruments and methods to estimate depth-specific thermal properties in borehole heat exchangers

机译:钻孔换热器中估计深度特异性热性能的新型仪器和方法

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摘要

Standard thermal response tests (TRT) are typically carried out to evaluate subsurface thermal parameters for the design and performance evaluation of borehole heat exchangers (BHE). Typical interpretation methods apply analytical or numerical solutions, which assume that the ground is homogeneous, isotropic and infinite. However in reality, the underground is commonly stratified and heterogeneous, and therefore thermal properties might significantly vary with depth. Thus, novel instruments and methods are necessary to characterize thermophysical properties along the BHE. In this study, two novel in-borehole temperature measurement instruments, Geoball and Geowire, are assessed during the performance of a distributed TRT (DTRT). The latter is evaluated in comparison to the widely used fiber optical thermometers. Our results suggest that both novel instruments have several advantages. For instance, both devices are able to instantaneously measure temperature with a higher spatial resolution. In addition, our study evaluates two methods to estimate depth-specific thermal conductivities: (1) a computer program based on infinite line source (ILS) approach and (2) a recently suggested inverse numerical procedure. For the latter less data is required, while demonstrating an accurate resolution to even detect thin conductive geological layers. Moreover, the average value of the depth-specific local effective estimates for both methods is significantly close to the effective subsurface conductivity of 3.20 W/m-K calculated based on standard TRT: 1.27 % below for the computer program and 0.28 % below for the numerical procedure.
机译:通常进行标准热响应试验(TRT)以评估钻孔热交换器(BHE)的设计和性能评估的地下热参数。典型的解释方法适用分析或数值解决方案,该方法假设地面是均匀的,各向同性和无限的。然而,实际上,地下通常是分层和异质的,因此热性能可能会随着深度而显着变化。因此,新颖的仪器和方法是沿BHE沿BHE的热神经性质表征。在这项研究中,在分布式TRT(DTRT)的性能期间评估了两种新型钻孔温度测量仪器,Geoball和地球针。与广泛使用的光纤光学温度计相比,后者评估。我们的结果表明,两种新颖的仪器都有几个优点。例如,两种设备能够以较高的空间分辨率瞬时测量温度。此外,我们的研究评估了两种方法来估计精密的热导流性:(1)基于无限线路源(ILS)方法的计算机程序和(2)最近建议的逆数程过程。对于后一种数据,需要更少的数据,同时展示甚至检测薄导电地质层的准确分辨率。此外,两种方法的深度特异性局部有效估计的平均值明显接近基于标准TRT计算的3.20 W / MK的有效地下电导率:1.27%,对于计算机程序,0.28%以下用于数值手术。

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