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A water retention curve model describing the effect of temperature

机译:描述温度影响的保水曲线模型

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Abstract Properly simulating multiphase flow involving non‐isothermal processes in unsaturated soils requires the development of water retention curve (WRC) models with temperature effects. However, the majority of the existing WRC models are developed for isothermal conditions. This study aims to develop a new WRC model describing the effect of temperature on suction. Based on an assumption of an isotropic and homogeneous porous medium at the macroscopic scale, the formulations of non‐isothermal suction account for the temperature effects on the surface tension of the water–air interface and air bubble shape. The tension of the water–air interface is expressed as a function of temperature, and the air bubble shape becomes a function of temperature and saturation degree. The suction formulations are then used to extend the van Genuchten equation to non‐isothermal conditions. The final equation of the proposed model is a function of suction, and effective degree of saturation and temperature. A laboratory test was also designed to measure the WRCs of a loamy sand at different temperatures. The proposed model was validated against the measured results as well as experimental data of clayey‐silt sand, Boom clay and FEBEX bentonite reported in the literature. The very good agreements show the capability and feasibility of the model to predict the temperature dependence of water retention behaviour with a wide range of soils. Highlights A new WRC model was developed for non‐isothermal conditions. The model considers temperature effects on water surface tension and air bubble shape. We tested the model against measured and literature data, with very good agreements. The model is applicable to predict non‐isothermal water retention behaviour of unsaturated soils.
机译:摘要 正确模拟非饱和土中涉及非等温过程的多相流需要建立具有温度效应的保水曲线(WRC)模型。然而,大多数现有的WRC模型都是为等温条件开发的。本研究旨在开发一种新的WRC模型,描述温度对吸力的影响。基于宏观尺度上各向同性和均匀多孔介质的假设,非等温吸力的公式考虑了温度对水-空气界面表面张力和气泡形状的影响。水-空气界面的张力表示为温度的函数,气泡形状成为温度和饱和度的函数。然后使用抽吸公式将van Genuchten方程扩展到非等温条件。所提出模型的最终方程是吸力、有效饱和度和温度的函数。还设计了一项实验室测试来测量壤土沙在不同温度下的WRC。根据文献报道的粘土粉砂、Boom粘土和FEBEX膨润土的实测结果和实验数据,对所提模型进行了验证。良好的一致性表明,该模型能够预测各种土壤保水行为的温度依赖性。亮点 针对非等温条件开发了一种新的WRC模型。该模型考虑了温度对水表面张力和气泡形状的影响。我们根据测量和文献数据测试了该模型,并取得了很好的一致性。该模型适用于非饱和土非等温保水行为的预测。

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