隧道底部双标题法引起的隧道周围土体应力和应变分布研究

IF 1.8 4区 工程技术 Q3 ENGINEERING, CIVIL
HuaiZheng Wang, ZhanPing Song, XiaoXu Tian, Bo Wen, YuWei Zhang
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引用次数: 0

摘要

在富含水的淤泥质细砂地层中进行隧道掘进时,经常会遇到因初期支护拱脚不稳定而导致塌拱等难题。本研究以桃树坪 3# 斜井段为研究对象,修改了双侧掘进法(THM),引入了底部双掘进法(DBM)。通过现场监测和数值模拟,利用松动带和应力分布特征研究了地层压力、变形演变以及施工方案的优势。结果表明,DBM 在拱开挖过程中表现出最大沉降,约占总沉降的 36%,总值为 222.21 毫米。此外,DBM 诱导的塑性区范围为隧道直径的 1.23 到 2 倍,垂直和水平周围土壤压力分别为 140.72 千帕和 46.25 千帕。DBM 明显优于 THM。这种方法减少了在 THM 开挖过程中因侧壁应力过大而形成的楔形剪切体。通过使用普罗托迪亚科诺夫科理论和特尔扎吉理论进行计算验证,即使在隧道开挖支护的情况下,周围土壤仍能保持拱形效应,从而验证了支护结构设计的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigation of the Stress and Strain Distribution in the Surrounding Soil of a Tunnel Induced by the Double-Heading at Bottom Method

Investigation of the Stress and Strain Distribution in the Surrounding Soil of a Tunnel Induced by the Double-Heading at Bottom Method

The tunneling process in water-rich silty fine sand stratum often faces challenges such as arch collapse due to the instability of the initial support arch foot. The present study focuses on the Taoshuping 3# inclined shaft section, modifies the two-side heading method (THM), and introduces the double-heading at bottom method (DBM). Field monitoring and numerical simulations are employed to investigate the formation pressure, deformation evolution, and the advantages of the construction scheme using the loosened zone and stress distribution features. The obtained results show that DBM exhibits a maximu m settlement during arch excavation, constituting approximately 36% of the total settlement, with a total value of 222.21 mm. Furthermore, the plastic zone induced by DBM ranges from 1.23 to 2 times the tunnel diameter, with vertical and horizontal surrounding soil pressures of 140.72 kPa and 46.25 kPa, respectively. DBM is markedly superior to THM. This approach reduces the formation of wedge-shaped shear bodies caused by excessive stress at the sidewalls in THM excavation. Even with tunnel excavation support, the surrounding soil maintains an arch effect, validated through calculations using Protodyakonovco theory and Terzaghi theory, verifying the efficiency of the support structure design.

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来源期刊
CiteScore
3.90
自引率
5.90%
发文量
83
审稿时长
15 months
期刊介绍: International Journal of Civil Engineering, The official publication of Iranian Society of Civil Engineering and Iran University of Science and Technology is devoted to original and interdisciplinary, peer-reviewed papers on research related to the broad spectrum of civil engineering with similar emphasis on all topics.The journal provides a forum for the International Civil Engineering Community to present and discuss matters of major interest e.g. new developments in civil regulations, The topics are included but are not necessarily restricted to :- Structures- Geotechnics- Transportation- Environment- Earthquakes- Water Resources- Construction Engineering and Management, and New Materials.
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