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Compressive pressure dependent anisotropic effective thermal conductivity of granular beds

机译:取决于压力的颗粒床各向异性有效导热系数

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摘要

In situ planetary thermal conductivity measurements are typically made using a long needle-like probe, which measures effective thermal conductivity in the probe's radial (horizontal) direction. The desired effective vertical thermal conductivity for heat flow calculations is assumed to be the same as the measured effective horizontal thermal conductivity. However, it is known that effective thermal conductivity increases with increasing compressive pressure on granular beds and the horizontal stress in a granular bed under gravity is related to the vertical stress through Jaky's at rest earth pressure coefficient. The objectives of this study were to examine the validity of the isotropic property assumption and to develop a fundamental understanding of the effective thermal conductivity of a dry, noncohesive granular bed under uniaxial compression. A model was developed to predict the increase in effective vertical and horizontal thermal conductivity with increasing compressive vertical applied pressure. An experiment was developed to simultaneously measure the effective vertical and horizontal thermal conductivities of particle beds with needle probes. Measurements were made as compressive vertical pressure was increased to show the relationship between increasing pressure and effective vertical and horizontal thermal conductivity. The results of this experiment showed quantitatively the conductivity anisot-ropy for two different materials and validated the developed model. This model can be used to predict the anisotropic effective thermal conductivity of granular materials under uniaxial compressive pressures, and evaluate the uncertainties in lunar heat flow measurements.
机译:通常使用长针状探针进行原位行星热导率测量,该探针测量探针径向(水平)方向的有效热导率。假定用于热流计算的期望有效垂直热导率与测得的有效水平热导率相同。然而,已知有效导热率随着颗粒床上的压缩压力的增加而增加,并且在重力作用下颗粒床上的水平应力与在静土压力系数下通过杰基的垂直应力有关。这项研究的目的是检验各向同性性质假设的有效性,并对单轴压缩下干燥无粘性颗粒床的有效导热系数有一个基本的了解。开发了一个模型来预测有效垂直和水平热导率随压缩垂直施加压力的增加而增加。开发了一个实验,用针探针同时测量颗粒床的有效垂直和水平导热率。在增加垂直压缩压力时进行测量,以显示增加的压力与有效的垂直和水平导热率之间的关系。实验结果定量显示了两种不同材料的电导率各向异性,并验证了开发的模型。该模型可用于预测单轴压缩压力下粒状材料的各向异性有效热导率,并评估月球热流测量中的不确定性。

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