岩土力学 ›› 2022, Vol. 43 ›› Issue (7): 1933-1941.doi: 10.16285/j.rsm.2021.1634

• 岩土工程研究 • 上一篇    下一篇

大断面管幕法隧道群管顶进的地表位移规律研究

唐正1,王洪新2,孙德安1,张骁2   

  1. 1. 上海大学 力学与工程科学学院,上海 200444;2. 上海城建市政工程(集团)有限公司,上海 200065
  • 收稿日期:2021-09-24 修回日期:2022-04-27 出版日期:2022-07-26 发布日期:2022-08-04
  • 作者简介:唐正,男,1994年生,硕士研究生,主要从事管幕−箱涵工法研究。

Surface displacement during pipe roof construction of pipe-jacking group with large section

TANG Zheng1, WANG Hong-xin2, SUN De-an1, ZHANG Xiao2   

  1. 1. School of Mechanics and Engineering Science, Shanghai University, Shanghai 200444, China; 2. Shanghai Urban Construction Municipal Engineering (Group) Co. Ltd., Shanghai 200065, China
  • Received:2021-09-24 Revised:2022-04-27 Online:2022-07-26 Published:2022-08-04

摘要:

为研究管幕法群管顶进施工过程中地表位移变化规律,依托上海田林路下穿中环隧道工程,对地表位移实测数据进行了详细分析。通过数据处理发现,管幕施工期间变形发展可细分为7个阶段,其中包括4个推进阶段、3个暂停推进阶段。管幕推进阶段的地表位移由地层损失沉降和注浆引起的地表隆起叠加而成;暂停推进阶段的地表沉降主要是固结沉降。运用Peck公式对地表位移进行描述,通过现场数据反分析出各根钢管推进时的沉降槽宽度系数和地层损失率η。基于分析结果,提出了适用于上海软黏土的η 计算公式,其中的公式只与钢管半径R、钢管埋深和土体内摩擦角φ 有关,而η 的公式表达成随时间的双曲线函数。注浆导致的地表隆起可分解成各根钢管顶进伴随注浆造成的负地层损失。运用上述方法对地表位移进行预测,并与实测结果对比,验证了文中方法的正确性,成果可对类似管幕法工程施工引起的地表位移预测提供科学参考。

关键词: 管幕法, 群顶管, 地表位移, 注浆隆起, Peck公式

Abstract: To study the law of surface displacement during pipe roof construction of pipe-jacking group, this paper analyses surface displacement data based on the Tianlin Road passing under Middle Ring Road Tunnel Project in Shanghai. Measured data shows that deformation development during the pipe roof construction can be divided into seven stages: 4 construction stages and 3 suspending construction stages. The surface displacement during the pipe roof construction comprises ground loss settlement and ground heave caused by grouting. In the suspension stages, the surface displacement is consolidation settlement. In this paper, the surface displacement is described by the Peck equation. The width coefficient i of surface settlement trough and the ground loss ratio η were back analyzed from the field measured data. Based on the analysis results, the calculation formulas of i and η were proposed for Shanghai soft clay. i is related with the pipe radius R, pipe buried depth h and internal friction angle of soil φ, and the formula of η is described by a hyperbolic function of time after jacking. The surface heave caused by the grouting can be separated to the negative ground loss caused by each pipe jacking with grouting. The above method was used to predict the surface displacement and the predicted results were compared with measured data to verify the correctness of the method in this paper, which can provide scientific reference for the prediction of surface displacement caused by similar pipe roof method construction.  

Key words: pipe roof method, pipe-Jacking group, surface displacement, grouting heave, Peck equation

中图分类号: 

  • TU 354
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