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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (S1): 146-152.DOI: 10.3973/j.issn.2096-4498.2026.S1.012

• 研究与探索 • 上一篇    下一篇

容腔式冷冻钢管片作用下冻结壁演化规律和受力分析

崔玉章1,  竺维彬2, 米晋生2   

  1. (1. 广州地铁建设管理有限公司, 广东 广州 510330; 2. 中国岩石力学与工程学会工程实例专委会, 广东 广州 510330)
  • 出版日期:2026-06-30 发布日期:2026-06-30
  • 作者简介:崔玉章(1981—),男,河南汝南人,2004年毕业于西安建筑科技大学,土木工程专业,本科,高级工程师,现从事轨道交通建设管理工作。E-mail: 84578761@qq.com。

Evolution Pattern and Stress Analysis of Frozen Wall Under Cavity-Type Freezing Steel Segment

CUI Yuzhang1, ZHU Weibin2, MI Jinsheng2   

  1. (1. Guangzhou Metro Construction Company, Guangzhou 510330, Guangdong, China; 2. Engineering Case Committee of Chinese Society for Rock Mechanics & Engineering, Guangzhou 510330, Guangdong, China)
  • Online:2026-06-30 Published:2026-06-30

摘要: 为解决盾构洞内更换盾尾刷时地层封闭与安全施工难题,研发容腔式冷冻钢管片技术,采用数值模拟与工程实测相结合的方法,系统研究该技术工况下冻结壁温度场演化特征、扩展规律与受力机制,明确冻结壁力学响应特征与强度弱化规律,并优化施工工艺。结果表明: 1)容腔式冷冻钢管片可快速、高效、均匀地形成冻结壁。2)基于容腔式冷冻钢管片形成的冻结壁,不宜采用井筒半无限体假设进行设计,结合实际工程开展数值模拟分析,容腔式冷冻钢管片的大制冷面可实现早期快速制冷,加速冻结壁发展,其应力分布特征与传统井筒冻结结构存在显著差异。3)针对容腔式冷冻钢管片所形成冻结壁的强度弱化特征,结合施工中外部热量对冻结壁的侵蚀特点与受力机制进行施工方案优化,提出“逐块拆除、逐块安装、及时保温”的盾尾刷更换原则,该原则已在实际工程中得到验证。

关键词: 容腔式冷冻钢管片, 人工冻结, 温度场, 受力机制, 数值模拟

Abstract: Ground sealing poses challenge to shield tunneling when replacing tail brush. To address this challenge and guarantee safe construction, a cavity-type freezing steel segment technology is developed. Numerical simulation and field measurement are utilized to systematically investigate the evolution and propagation patterns of the frozen wall temperature field as well as its stress mechanism, clarifying its mechanical response characteristics and strength weakening patterns, thus providing optimization suggestions for corresponding construction technology. The research results show that: (1) The cavity-type freezing steel segment forms a freezing wall in a faster, more efficient, and more uniform manner. (2) The frozen wall formed by cavity-type freezing steel segments is not applicable to freezing wall design based on the semi-infinite body assumption for shaft structures. Numerical simulation and calculation analysis are carried out combined with practical engineering. The large refrigeration surface of the cavity-type freezing steel segment completes refrigeration rapidly in the early stage and promotes the development of the freezing wall. The stress distribution characteristics in the model calculation results differ significantly from those of shaft structures in traditional freezing design. (3) In view of the strength weakening characteristics of the frozen wall formed by cavity-type freezing steel segments, the construction scheme is optimized based on the erosion characteristics of external heat on the freezing wall and its stress mechanism during construction. The tail brush replacement principle of “demolishing and installing block by block and timely thermal insulating” is proposed and verified in practical engineering.

Key words: cavity-type freezing segment, artificial ground freezing, temperature field, stress mechanism, numerical simulation