低温条件下盐碱土的电阻率特性

Rui Liu, Cheng Zhu, J. Schmalzel, Benjamin Barrowes, Danney Glaser, Michele Maxson, Wade Lein
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摘要

众所周知,冻土的冻融循环是造成寒冷地区基础设施各种工程故障的原因。研究人员发现,在冰冻土壤中,电阻率法比传统的地面测量方法更方便、更经济。然而,仍需对土壤电阻率与各种土壤特性之间的关系进行详细研究。本研究采用温纳法进行了一系列实验室实验,以确定冻融条件下土壤电阻率与土壤岩土特性(如初始含水量和孔隙流体浓度)之间的关系。圆柱形土壤样本经过人工冻融循环,温度低至 -70°C,同时记录电阻率和温度值。对测量结果进行了曲线拟合总结,并给出了冻融过程中电阻率与温度之间关系的统计模型。在冰点以上,电阻率对数与温度呈线性关系。在冰点以下和-15°C 以上,电阻率对数与温度呈平方根关系。此外,还讨论了极低温区域(-15°C 至 -70°C)电阻率变化的不同趋势。在极低温区域,冻土的电阻率并没有随着温度的降低而单调增加,这可能是由于未冻水相中的盐浓度增加所致。本研究的结果有望为冻土结构带来更多启示,并有助于寒冷地区的地球物理勘测和利用地面冻结的施工方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrical Resistivity Behavior of Saline Soil under Low-Temperature Conditions
Freeze-thaw cycling of frozen soils is known to be the cause of various engineering failures of infrastructure in cold regions. Researchers found that electrical resistivity methods outperform traditional ground surveying methods in frozen soils for their greater convenience and cost-effectiveness. However, detailed investigation into the relationship between the electrical resistivity of soil and a variety of soil properties is still needed. In this study, a series of laboratory experiments using the Wenner method were conducted to determine the relationship between soil electrical resistivity and soil geotechnical properties such as initial water content and pore fluid concentration under freeze-thaw conditions. Cylindrical soil samples undergo artificial freeze-thaw cycles to a temperature as low as −70°C, and electrical resistivity and temperature values are recorded simultaneously. Measurement results are summarized for curve fitting, and a statistical model showing relationship between electrical resistivity and temperature during freezing and thawing was given. Above freezing point, the log of electrical resistivity had a linear relationship with temperature. Below freezing point and above −15°C, the log of electrical resistivity had a square root relationship with temperature. Different trends in electrical resistivity change in extremely low-temperature regions (from −15°C to −70°C) are also discussed. In extremely low-temperature regions, the electrical resistivity of frozen soils did not monotonously increase with lower temperature, which may be because of increasing salt concentration in the unfrozen water phase. The findings of this study are expected to bring more insights to frozen soil structure, and assist in geophysical surveying in cold regions and construction methods utilizing ground freezing.
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