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Analytical solution and numerical simulation of the liquid nitrogen freezing-temperature field of a single pipe

机译:单管液氮冻结温度场的解析解和数值模拟

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Artificial liquid nitrogen freezing technology is widely used in urban underground engineering due to its technical advantages, such as simple freezing system, high freezing speed, low freezing temperature, high strength of frozen soil, and absence of pollution. However, technical difficulties such as undefined range of liquid nitrogen freezing and thickness of frozen wall gradually emerge during the application process. Thus, the analytical solution of the freezing-temperature field of a single pipe is established considering the freezing temperature of soil and the constant temperature of freezing pipe wall. This solution is then applied in a liquid nitrogen freezing project. Calculation results show that the radius of freezing front of liquid nitrogen is proportional to the square root of freezing time. The radius of the freezing front also decreases with decreased the freezing temperature, and the temperature gradient of soil decreases with increased distance from the freezing pipe. The radius of cooling zone in the unfrozen area is approximately four times the radius of the freezing front. Meanwhile, the numerical simulation of the liquid nitrogen freezing-temperature field of a single pipe is conducted using the Abaqus finite-element program. Results show that the numerical simulation of soil temperature distribution law well agrees with the analytical solution, further verifies the reliability of the established analytical solution of the liquid nitrogen freezing-temperature field of a single pipe.
机译:人工液氮冷冻技术由于其冷冻系统简单,冷冻速度快,冷冻温度低,冷冻土强度高,无污染等技术优点而被广泛应用于城市地下工程。但是,在应用过程中,逐渐出现诸如液氮冻结范围不确定和冻结壁厚度等技术难题。因此,考虑到土壤的冻结温度和冻结管壁的恒定温度,建立了单管冻结温度场的解析解。然后将该溶液应用于液氮冷冻项目。计算结果表明,液氮冻结前沿的半径与冻结时间的平方根成正比。冻结前沿的半径也随着冻结温度的降低而减小,土壤的温度梯度随着距冻结管距离的增加而减小。未冻结区域中冷却区的半径大约是冻结前沿半径的四倍。同时,使用Abaqus有限元程序对单个管道的液氮冻结温度场进行了数值模拟。结果表明,土壤温度分布规律的数值模拟与解析解吻合得很好,进一步验证了所建立的单管液氮冻结温度场解析解的可靠性。

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