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首页> 外文期刊>Journal of Cold Regions Engineering >Resilient Behavior of Unbound Granular Materials Subjected to a Closed-System Freeze-Thaw Cycle
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Resilient Behavior of Unbound Granular Materials Subjected to a Closed-System Freeze-Thaw Cycle

机译:封闭系统冻融循环作用下未结合颗粒材料的弹性行为

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04017015.1-04017015.13%The resilient modulus of a base course granular material is an important input parameter for pavement design and analysis. In recent decades, numerous studies have been performed to characterize and model the resilient behavior of base course materials under unfrozen conditions. In cold regions, frost heaving and subsequent thawing significantly affect the resilient behavior of base course materials. Due to the complex nature of the problem, relatively less effort was dedicated to characterize and model the resilient behavior of base course materials after seasonal freeze-thaw cycles. Among the limited studies, very often the soil specimens were prepared in an open system with free water access to simulate the frost heave, which represented the worst-case scenario in terms of stiffness reduction during thawing. Sometimes omnidirectional freeze tests were performed to simplify the testing procedures. In reality, soils in the field often experience one-dimensional freeze and thaw. When the permeability of the soil is very low, the groundwater table is far from the freezing front, or the freezing temperature gradient is high, the freezing process can be considered to be in a closed system (i.e., limited or no water exchange). The closed system represented the best-case scenario in terms of stiffness reduction during thawing, which has rarely been investigated. Hence, an in-depth understanding of the seasonal resilient behavior of base course materials in a closed system is essential for cold region pavement design and analysis. In this study, repeated loading triaxial tests were performed to investigate the effects of nonplastic fines content, moisture content, temperature, thermal gradient, and freeze-thaw cycling on the resilient modulus of unbound granular base course materials under seasonal frost conditions. Soil specimens were prepared in the laboratory using a one-dimensional frost heave chamber with temperature-thermal gradient control. Specimens were subjected to a closed-system freezing (undrained) condition. Test results were analyzed and discussed, and models were developed to predict granular materials' resilient moduli as a function of the state of stress, temperature, moisture, and fines content to complement the previous study. (C) 2017 American Society of Civil Engineers.
机译:04017015.1-04017015.13%基层粒状材料的弹性模量是路面设计和分析的重要输入参数。在最近的几十年中,已经进行了许多研究来表征和模拟未冻结条件下基础材料的弹性行为。在寒冷地区,霜冻起伏和随后的融化会显着影响基层材料的弹性行为。由于问题的复杂性,在季节性冻融循环后,相对较少的精力用于表征和建模基础材料的弹性行为。在有限的研究中,通常在开放的系统中准备土壤标本,该系统可自由通水以模拟霜冻沉沉,这代表了解冻过程中刚度降低的最坏情况。有时进行全向冻结测试以简化测试程序。实际上,田间土壤经常经历一维冻结和融化。当土壤的渗透性非常低,地下水位远离冰冻锋面或冰冻温度梯度高时,可以认为冰冻过程是在密闭系统中进行(即水交换有限或无水交换)。就解冻期间的刚度降低而言,封闭系统代表了最佳情况,很少对此进行研究。因此,对于寒冷地区的路面设计和分析,深入了解基础材料在封闭系统中的季节性弹性行为至关重要。在这项研究中,进行了重复加载三轴试验,以研究非塑料细粉含量,水分含量,温度,热梯度和冻融循环对季节性霜冻条件下未结合的颗粒基层材料的弹性模量的影响。在实验室中使用带温度-温度梯度控制的一维霜冻室制备土壤标本。样品经受密闭系统冻结(不排水)条件。分析和讨论了测试结果,并开发了模型来预测颗粒材料的弹性模量与应力,温度,湿度和细粉含量的关系,以补充先前的研究。 (C)2017年美国土木工程师学会。

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