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Determination of Vertical Borehole and Geological Formation Properties using the Crossed Contour Method

机译:交叉轮廓法确定垂直井眼和地质构造性质

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摘要

This paper presents a new method called the Crossed Contour Method for determining the effective properties (borehole radius and ground thermal conductivity) of a vertical ground-coupled heat exchanger. The borehole radius is used as a proxy for the overall borehole thermal resistance. The method has been applied to both simulated and experimental borehole Thermal Response Test (TRT) data using the Duct Storage vertical ground heat exchanger model implemented in the TRansient SYstems Simulation software (TRNSYS). The Crossed Contour Method generates a parametric grid of simulated TRT data for different combinations of borehole radius and ground thermal conductivity in a series of time windows. The error between the average of the simulated and experimental bore field inlet and outlet temperatures is calculated for each set of borehole properties within each time window. Using these data, contours of the minimum error are constructed in the parameter space of borehole radius and ground thermal conductivity. When all of the minimum error contours for each time window are superimposed, the point where the contours cross (intersect) identifies the effective borehole properties for the model that most closely represents the experimental data in every time window and thus over the entire length of the experimental data set. The computed borehole properties are compared with results from existing model inversion methods including the Ground Property Measurement (GPM) software developed by Oak Ridge National Laboratory, and the Line Source Model.
机译:本文提出了一种称为交叉轮廓法的新方法,用于确定立式地面耦合换热器的有效特性(井眼半径和地面导热率)。钻孔半径用作整个钻孔热阻的替代。该方法已使用在瞬态系统模拟软件(TRNSYS)中实现的风管存储垂直地面换热器模型应用于模拟和实验井筒热响应测试(TRT)数据。 Crossed Contour方法可以在一系列时间窗口中为钻孔半径和地面导热率的不同组合生成模拟TRT数据的参数网格。针对每个时间窗口内的每组钻孔属性,计算出模拟和实验孔场入口和出口温度的平均值之间的误差。利用这些数据,在井眼半径和地面导热率的参数空间中构造出最小误差的轮廓。当每个时间窗的所有最小误差等高线叠加时,等高线相交(相交)的点确定了模型的有效井眼特性,该特性最紧密地代表了每个时间窗中的实验数据,因此在整个时间范围实验数据集。将计算出的井眼特性与现有模型反演方法的结果进行比较,这些方法包括橡树岭国家实验室开发的地面特性测量(GPM)软件和线源模型。

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