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浅埋地层超大断面地铁车站拱盖法施工优化OA

Construction optimization of the arch cover method for super-large-section subway stations in shallow-buried strata

中文摘要英文摘要

针对上软下硬岩层浅埋超大断面地铁车站施工难题,以重庆轨道交通 9 号线红岩村站为工程背景,优化拱盖法施工工序和流程.该工法按"先上后下,先边后中"的原则,将车站超大断面开挖优化为 11 部分,利用大拱脚承载车站上部荷载,形成"拱盖"受力体系,解决了传统大断面车站初期支护未落底前存在应力集中的问题;优化后,工法分部开挖、闭合成环,大大减少临时支护工程量,为中、下台阶施工提供机械化作业空间,确保超大断面隧道安全、快速施工;工法充分利用围岩的自承能力,使初期支护的受力较小,提出了隧道拱部左、右导坑一次性开挖方法;监测结果表明,车站在落底开挖时,中部拉槽与边墙侧围岩开挖的先后顺序对地表沉降量、车站围岩的变形、受力和初期支护的安全性影响较小.本工法的优化成果,可在类似工程中推广应用.

[Objective]Hongyancun Station on Chongqing Rail Transit Line 9 has a maximum burial depth of 106.37 m.It is a two-story underground mined station,with the concourse level on the first underground floor and the platform level on the second underground floor.The station has a total length of 262.3 m and a total width of 21.8 m.Adopting a single-arch double-layer structure,the tunnel features composite lining,with a net excavation width of 24.34 m,an excavation height of 21.23 m,and a cross-sectional area of 436 m2.The tunnel crown consists of strongly weathered silty mudstone classified as Grade IV surrounding rock,with rock mass integrity coefficients ranging from 0.70 to 0.78 and a saturated compressive strength of 10.5 MPa that exhibits obvious strength variability.The tunnel body is composed of moderately weathered silty mudstone classified as basic Grade III surrounding rock,with rock mass integrity coefficients ranging between 0.76 and 0.81 and a saturated compressive strength of 31.5 MPa.The arch cover method was adopted to overcome construction difficulties and ensure safety for the shallow-buried,super-large-section metro station in upper-soft and lower-hard rock strata.[Methods]Field monitoring was carried out by installing measuring points on the ground surface,tunnel vault,and both side walls to measure ground subsidence and tunnel deformation.The stress and deformation characteristics of the optimized arch cover construction method were then analyzed.[Results]The research results show that the arch cover construction method was optimized.Following the principle of"upper part prior to lower part,side parts prior to central part",the super-large-section excavation was divided into 11 parts.Large arch feet were utilized to bear upper loads and form an arch cover stress system,thereby eliminating stress concentration that occurred before the primary support of conventional large-section stations reached the base.The optimized sequential excavation and timely closure into a ring structure considerably reduced the temporary support workload,created space for mechanized operations during middle and lower bench construction,and enabled safe and rapid construction of super-large-section tunnels.This construction method fully mobilized the self-bearing capacity of the surrounding rock and lowered stress on the primary support.A single-pass excavation technology for the left and right pilot tunnels at the tunnel arch was also proposed.[Conclusions]Monitoring data indicate that during bench base excavation,the excavation sequence of central grooving and side wall surrounding rock exerts minor influences on ground subsidence,surrounding rock deformation,rock stress,and primary support safety.The innovative construction method has potential for wider application to similar engineering projects.

陈章林;印建文;李桂;姜永东;涂艾林;张洪涛

中国建筑第五工程局有限公司,湖南 长沙 410004成兰铁路有限责任公司,四川 成都 610037中国建筑第五工程局有限公司,湖南 长沙 410004重庆大学 煤矿灾害动力学与控制全国重点实验室,重庆 400044重庆大学 煤矿灾害动力学与控制全国重点实验室,重庆 400044重庆大学 煤矿灾害动力学与控制全国重点实验室,重庆 400044

交通工程

地铁车站超大断面拱盖法快速施工

subway stationlarge sectionarch cover methodrapid construction

《实验技术与管理》 2026 (7)

81-87,7

国家自然科学基金项目(52104077)

10.16791/j.cnki.sjg.2026.07.009

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