首页> 外文学位 >Temperature Effect on Unsaturated Hydraulic Properties of Two Fine-Grained Soils and Its Influence on Moisture Movement Under an Airfield Test Facility.
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Temperature Effect on Unsaturated Hydraulic Properties of Two Fine-Grained Soils and Its Influence on Moisture Movement Under an Airfield Test Facility.

机译:温度对两种细粒土壤非饱和水力特性的影响及其对飞机场试验设施中水分运动的影响。

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摘要

The influence of temperature on soil engineering properties is a major concern in the design of engineering systems such as radioactive waste disposal barriers, ground source heat pump systems and pavement structures. In particular, moisture redistribution under pavement systems might lead to changes in unbound material stiffness that will affect pavement performance. Accurate measurement of thermal effects on unsaturated soil hydraulic properties may lead to reduction in design and construction costs. This thesis presents preliminary results of an experimental study aimed at determining the effect of temperature on the soil water characteristic curve (SWCC) and the unsaturated hydraulic conductivity function (kunsat). Pressure plate devices with volume change control were used to determine the SWCC and the instantaneous profile method was used to obtain the kunsat function. These properties were measured on two fine-grained materials subjected to controlled temperatures of 5°C, 25°C and 40°C. The results were used to perform a sensitivity analysis of the effect of temperature changes on the prediction of moisture movement under a covered area. In addition, two more simulations were performed where changes in hydraulic properties were done in a stepwise fashion. The findings were compared to field measured water content data obtained on the subgrade material of the FAA William Hughes test facility located in Atlantic City. Results indicated that temperature affects the unsaturated hydraulic properties of the two soils used in the study. For the DuPont soil, a soil with high plasticity, it was found that the water retention was higher at low temperatures for suction levels lower than about 10,000 kPa; while the kunsat functions at the three temperatures were not significantly different. For the County soil, a material with medium plasticity, it was found that it holds around 10% more degree of saturation at 5°C than that at 40°C for suction levels higher than about 1,000 kPa; while the hydraulic conductivity at 40°C was at least one order of magnitude higher than that at 5°C, for suction levels higher than 1,000 kPa. These properties were used to perform two types of numerical analyses: a sensitivity analysis and stepwise analysis. Absolute differences between predicted and field measured data were considered to be acceptable, ranging from 4.5% to 9% for all simulations. Overall results show an improvement in predictions when non-isothermal conditions were used over the predictions obtained with isothermal conditions.
机译:温度对土壤工程特性的影响是工程系统设计中的主要问题,例如放射性废物处置屏障,地源热泵系统和路面结构。特别是,路面系统下的水分重新分布可能会导致未结合的材料刚度发生变化,从而影响路面性能。准确测量对不饱和土壤水力特性的热效应可以减少设计和建造成本。本文提出了一项实验研究的初步结果,旨在确定温度对土壤水分特征曲线(SWCC)和非饱和导水率函数(kunsat)的影响。使用具有体积变化控制的压板设备确定SWCC,并使用瞬时轮廓方法获得kunsat函数。这些性能是在两种细粒度的材料上测得的,这些材料在5°C,25°C和40°C的受控温度下工作。结果用于对覆盖区域下温度变化对水分运动预测的影响进行敏感性分析。另外,还进行了另外两个模拟,其中以逐步的方式完成了水力特性的变化。将这些发现与在位于大西洋城的FAA William Hughes测试设施的路基材料上获得的现场测得的含水量数据进行了比较。结果表明温度影响研究中使用的两种土壤的非饱和水力特性。对于具有高可塑性的杜邦土壤,发现在低温下,吸力低于10,000 kPa时,保水性更高。而在这三个温度下的坤沙功能没有显着差异。对于郡县土壤(一种中等可塑性的材料),发现吸力水平大于1,000 kPa时,其在5°C下的饱和度比40°C下高10%。而对于吸力水平大于1,000 kPa的情况,在40°C时的水力传导率比5°C时至少高一个数量级。这些属性用于执行两种类型的数值分析:灵敏度分析和逐步分析。预测数据和现场测量数据之间的绝对差异被认为是可以接受的,所有模拟的范围在4.5%至9%之间。总体结果显示,与使用等温条件获得的预测相比,使用非等温条件时的预测有所改进。

著录项

  • 作者

    Lu, Yutong.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Civil engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:20

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