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隧道与地下工程灾害防治  2020, Vol. 2 Issue (4): 29-36    
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上软下硬地层盾构工作井开挖受力与变形监测分析
魏纲1,黄时雨2,蒋丞武1,虞兴福3,王新泉1
1. 浙大城市学院土木工程系, 浙江 杭州 310015;2. 浙江大学建筑工程学院, 浙江 杭州 310058;3. 宁波冶金勘察设计研究股份有限公司, 浙江 宁波 315041
Monitoring and analysis of stress and deformation of shield working well excavation in upper soft and lower hard soil layer
WEI Gang1, HUANG Shiyu2, JIANG Chengwu1, YU Xingfu3, WANG Xinquan1
1. Department of Civil Engineering, Zhejiang University City College, Hangzhou 310015, Zhejiang, China;
2. College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, Zhejiang, China;
3. Ningbo Metallurgical Investigation &
Design Research Co., Ltd., Ningbo 315041, Zhejiang, China
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摘要 依托杭州某典型上软下硬地层盾构工作井开挖工程,对其开挖过程中的墙体水平位移、地表沉降、周边建筑物沉降和支撑轴力进行监测分析。研究结果表明:随着上软下硬地层基坑的开挖,墙体水平位移沿基坑深度方向的分布会有单峰值和双峰值两种形式,墙体最大水平位移为工作井开挖深度的0.56‰~0.59‰;墙体最大水平位移的位置在土岩分界面上方5 m左右的位置,地表沉降曲线主要呈倒三角和勺形分布,沉降敏感区主要分布在距离基坑边缘0.36~0.73工作井开挖深度,最大沉降为工作井开挖深度的1.36‰~2.61‰;各道支撑轴力的主要增长期发生在下部土体开挖阶段,其中混凝土支撑的轴力受到养护时间的影响,开挖时要保证其达到28 d强度。
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魏纲
黄时雨
蒋丞武
虞兴福
王新泉
关键词:  工作井开挖  上软下硬地层  监测分析  位移  沉降  轴力    
Abstract: Based on one typical excavation project of shield working well in Hangzhou where the soft soil was over the hard soil, this paper monitored and analyzed the horizontal displacement of the wall, ground settlement, surrounding building settlement, and strut force during its excavation. The results showed that: with the excavation of the foundation pit in upper soft and lower hard soil layer, the distribution of the horizontal displacement of the wall along the depth of the foundation pit had two forms: single peak and double peak, the maximum horizontal displacement of the wall was between 0.56‰-0.59‰ H(H is the excavation depth of the working well); The maximum horizontal displacement of the wall was about 5 m above the soil-rock interface. The ground settlement curves were mainly in the form of “inverted triangle-shaped” and “spoon-shaped”, the sensitive area of the settlement was mainly distributed in the range of about 0.36-0.73 H from the edge of the foundation pit and the maximum settlement was about 1.36‰-2.61‰ H; The excavation phase of the soil below each support was the main growth period of the corresponding strut force. Thereinto, the strut force value of the concrete support was affected by the curing time, and it must be guaranteed to reach 28-day strength before excavation.
Key words:  excavation of working well    upper soft and lower hard soil layer    monitoring and analysis    displacement    settlement    strut force
                    发布日期:  2021-02-25      期的出版日期:  2020-12-20
中图分类号:  U43  
作者简介:  魏纲(1977— ),男,浙江杭州人,博士,教授,硕士生导师,主要研究方向为地下隧道与周边环境相互影响及风险评估与控制. E-mail:weig@zucc.edu.cn
引用本文:    
魏纲,黄时雨,蒋丞武,虞兴福,王新泉. 上软下硬地层盾构工作井开挖受力与变形监测分析[J]. 隧道与地下工程灾害防治, 2020, 2(4): 29-36.
WEI Gang, HUANG Shiyu, JIANG Chengwu, YU Xingfu, WANG Xinquan. Monitoring and analysis of stress and deformation of shield working well excavation in upper soft and lower hard soil layer. Hazard Control in Tunnelling and Underground Engineering, 2020, 2(4): 29-36.
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http://tunnel.sdujournals.com/CN/Y2020/V2/I4/29
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