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The relative importance of moisture transfer, soil freezing and snow cover on ground temperature predictions

机译:水分传递,土壤冻结和积雪对地面温度预测的相对重要性

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Predicting ground temperature is an important part of the analysis of geothermal resources assessment and use. Thus, we develop and validate one-dimensional numerical model for heat and mass transfer in partially frozen soils. The model is implemented in HVACSIM Plus and used to simulate the thermal regime of soil profile. In addition to modeling heat conduction, model variations also includes moisture transfer, snow accumulation and melting, and soil freezing and thawing. The results are compared against experimental measurements of ground temperature for three locations in Montana, USA. The differences between simulated depth temperature with and without snow cover and freezing and thawing of soil reveal that ground temperatures are predominantly influenced by these two factors. Considering moisture transfer slightly improves temperature predictions, although it increases computational time by one order of magnitude. To balance computational efficiency with prediction accuracy, we propose an equivalent moisture content of 40-60% saturation in predicting ground temperature.
机译:预测地温是地热资源评估和利用分析的重要组成部分。因此,我们开发并验证了部分冻结土壤中传热和传质的一维数值模型。该模型在HVACSIM Plus中实现,用于模拟土壤剖面的热状态。除了对导热进行建模外,模型变化还包括水分转移,积雪和融化以及土壤冻结和解冻。将结果与美国蒙大拿州三个地点的地面温度实验测量值进行了比较。有和没有积雪的情况下模拟的深度温度与土壤的冻结和解冻之间的差异表明,地面温度主要受这两个因素的影响。尽管考虑到水分转移,计算时间会增加一个数量级,但考虑到水分转移会稍微改善温度预测。为了在计算效率和预测精度之间取得平衡,我们提出了在预测地面温度时等效水分含量为40-60%饱和度。

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