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Numerical simulation of artificial-freezing propagation for subsea-tunnel construction: Effect of refrigerant temperature and ground water

机译:海底隧道人工冻结传播的数值模拟:制冷剂温度和地下水的影响

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When subsurface water pressure is highly excessive, generally observed in construction of a subsea tunnel, it is difficult to prevent water inundation even with jet-grouting. The artificial ground freezing technique has been rapidly developed in the past several decades as an alternative to such a highly performed grouting technique. The freezing process involves the circulation of a refrigerated coolant through a series of embedded pipes to convert soil water to ice, creating a strong and watertight zone (wall or ring). The design of a frozen earth barrier is governed by thermal properties of the soils and pore fluids, response to the freezing system, and groundwater flow around the cooling pipes. In this paper, the rate of freezing propagation and the freezing range were numerically simulated with consideration of the refrigerant temperature as a cooling boundary condition and the effect of groundwater flow to the frozen body shape. As a result of the simulation, it is found that the freezing rate and range are considerably influenced by the refrigerant temperature. In addition, the groundwater flow leads to an abnormal shape of frozen soil body and may alert the designer of artificial freezing to underestimating the dimension of cooling pipes.
机译:当通常在海底隧道的构造中观察到的地下水压过高时,即使通过喷射注浆也难以防止水淹没。在过去的几十年中,作为这种高性能灌浆技术的替代方法,人造地面冻结技术得到了迅速发展。冷冻过程涉及冷冻冷却剂通过一系列嵌入式管道的循环,以将土壤水转化为冰,从而形成坚固而水密的区域(壁或环)。冻结的土壤屏障的设计取决于土壤和孔隙流体的热特性,对冻结系统的响应以及冷却管周围的地下水流。在本文中,以制冷剂温度为冷却边界条件,以及地下水流量对冻结体形状的影响,对冻结传播速率和冻结范围进行了数值模拟。作为模拟的结果,发现冷冻速率和范围受制冷剂温度的影响很大。另外,地下水流导致冻结的土壤体形状异常,并可能提醒设计人员进行人工冻结而低估了冷却管的尺寸。

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