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Experimental investigation on the variation of thermal conductivity of soils with effective stress, porosity, and water saturation

机译:有效应力,孔隙率和水分饱和度下土壤热导率变化的实验研究

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The thermal conductivity of soils is an important property in energy-related geotechnical structures, such as underground heat pumps and underground electric power cable tunnels. This study explores the effects of geotechnical engineering properties on the thermal conductivity of soils. The thermal conductivities of quartz sands and Korean weathered silty sands were documented via a series of laboratory experiments, and its variations with effective stress, porosity, and water saturation were examined. While thermal conductivity was found to increase with an increase in the effective stress and water saturation and with a decrease in porosity, replacing air by water in pores the most predominantly enhanced the thermal conductivity by almost one order of magnitude. In addition, we have suggested an improved model for thermal conductivity prediction, based on water saturation, dry thermal conductivity, saturated thermal conductivity, and a fitting parameter that represents the curvature of the thermal conductivity-water saturation relation.
机译:土壤的导热性是与能源有关的岩土结构的重要属性,例如地下热泵和地下电力电缆隧道。这项研究探讨了岩土工程性质对土壤热导率的影响。通过一系列实验室实验记录了石英砂和韩国风化粉质砂的热导率,并研究了其随有效应力,孔隙率和水饱和度的变化。虽然发现导热系数随着有效应力和水饱和度的增加以及孔隙率的降低而增加,但用孔隙中的水代替空气最主要地将导热系数提高了近一个数量级。另外,我们提出了一种改进的导热系数预测模型,该模型基于水饱和度,干导热系数,饱和导热系数以及代表导热系数-水饱和关系曲率的拟合参数。

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