ISSN 2096-4498

   CN 44-1745/U

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Tunnel Construction ›› 2021, Vol. 41 ›› Issue (1): 52-59.DOI: 10.3973/j.issn.2096-4498.2021.01.006

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Multitube Freezing Temperature Field Considering Range of Influence of Freezing Tubes

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XIANG Liang1, YE Fei2, LIANG Xing2, OUYANG Aohui2, ZHAO Ruliang2, 3   

  1. (1. China Railway First Survey and Design Institute Group Co., Ltd., Xian 710043, Shaanxi, China; 2. School of Highway, Chang′an University, Xi′an 710064, Shaanxi, China; 3. Tianjin Municipal Engineering Design & Research Institute, Tianjin 300450, China)

  • Online:2021-01-20 Published:2021-02-08

Abstract: In ground freezing construction, the spacing of freezing tubes is always larger than the freezing front radius of a single pipe and the influence range of the freezing tubes is limited. To improve the calculation accuracy of freezing temperature field, a formula for the superimposed steadystate temperature field for doubletube freezing is derived based on the superimposition principle of potential function. And it is periodized to obtain a singlerow equidistant multitube steadystate temperature field, which is verified by numerical simulation according to the formation parameters of the engineering project. The results of the study indicate the following: (1) The formula for calculating the doubletube steadystate temperature field, considering the finiteness of the superimposed range of influence of the adjacent frozen tubes, can accurately predict the temperature distribution during freezing. (2) In the temperature superimposition zone of the doubletube, the midpoint of the freezingpipe connection line is the lowest temperature point on the midperpendicular line, and as the spacing of the freezing tubes decreases, the temperature at this point decreases, while the thickness of the frozen wall does not change across the midperpendicular line. (3) As the thickness of the frozen wall increases, the doubletube steadystate temperature field approaches the enhanced singletube steadystate temperature field.

Key words: shield tunnel, artificial freezing method, multitube freezing temperature field, freezing tube, potential function superimposition principle, red sandstone stratum

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