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Investigation on Artificial Ground Freezing in cross passage construction by multiphysics coupling

机译:多物理场耦合研究交叉通道施工中的人工冻土

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In cross passage construction in soft soils with high water content, Artificial Ground Freezing has been widely adopted to generate frozen walls to act as temporary support for excavation. Freezing of soil is a complicated process that involves multiphysics of temperature, water flow, stress and the coupling thereof, and which brings on significant alteration in thermophysical properties. Work of this paper is based on laboratory efforts and field observation of cross passage #1 in Shanghai Yangtze River Tunnel. Variation of soil properties with temperature including specific heat, thermal conductivity, and modulus of elasticity were obtained and adopted in the coupling analysis, which studied the growth of temperature field and frost heaving during the period of 40-day active freezing. Enclosure of ice columns occurred on the 14th day. Temperature and thickness of frozen soil wall developed quickly in the first 20 days and later the inner surface expanded more quickly while the outer surface very slow. Final thickness of the frozen wall could reach 5.14m. because of the frose heaving effect, the center of cross passage had a displacement of 2.35cm upward. Compressive stress within the frozen wall was remarkably concentrated, counting 2 times that of the adjacent unfrozen soil.
机译:在具有高含水量的软土中的交叉通道施工中,人造冻结已被广泛采用冻结冻结,以充当临时挖掘的临时支持。冻结土是一种复杂的过程,涉及温度,水流,应力和偶联的多体验,并带来了热物理性质的显着改变。本文的工作是基于上海长江隧道交叉通道#1的实验室努力和现场观察。在偶联分析中获得并采用温度的土壤性质的变化,包括比热,导热性和弹性模量,其研究了温度场的生长和40天的活性冷冻期间的霜冻。冰柱的封闭在第14天发生。冷冻土墙的温度和厚度在前20天内快速发展,后来内表面在外表面速度较快地膨胀。冷冻墙的最终厚度可达到5.14米。由于摩擦起伏效果,交叉通道的中心具有2.35厘米向上的位移。冷冻壁内的压缩应力显着浓缩,计数相邻的未分解土壤的2倍。

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