Please wait a minute...
 
隧道与地下工程灾害防治  2023, Vol. 5 Issue (1): 64-73    DOI: 10.19952/j.cnki.2096-5052.2023.01.07
  研究论文 本期目录 | 过刊浏览 | 高级检索 |
海相地层浅埋暗挖隧道水平旋喷桩超前支护地层变形规律分析
高搏1,龙建平2,吴恺2,骆建军3*
(1. 河南理工大学土木工程学院, 河南 焦作 454000;2. 中国水利水电第七工程局有限公司, 四川 成都 611730;3. 北京交通大学土木建筑工程学院, 北京 100044
Analysis of strata deformation law of pre-support of horizontal jet grouting pile for shallow-depth-excavation tunnel in marine stratum
GAO Bo1, LONG Jianping2, WU Kai2, LUO Jianjun3*
(1. School of Civil Engineering, Henan Polytechnic University, Jiaozuo 454000, Henan, China;2. Sinohydro Seventh Engineering Bureau Co., Ltd., Chengdu 611730, Sichuan, China;3. School of Civil Engineering, Beijing Jiaotong University, Beijing 100044, China
下载:  PDF (7280KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 以深圳地铁12号线二期工程松岗站与既有6号线风亭改造段为研究背景,采用三维有限差分软件FLAC3D对海相地层条件下水平旋喷桩超前支护参数进行分析。对该地层条件下隧道开挖地表沉降位移结果进行分析比较,得出不同长度、截面尺寸、外插角度的水平旋喷桩对海相淤泥质地层隧道开挖围岩稳定性的影响。研究结果表明:与无水平旋喷桩加固相比,有水平旋喷桩加固地表沉降量最终减少了64.8%;随着水平旋喷桩截面尺寸的增加,地表沉降逐渐减小;随着水平旋喷桩长度和外插角度的增加,地表沉降逐渐增大。为找到水平旋喷桩的最优施工方法,对比研究125种水平旋喷桩在不同支护工况下的地表沉降变化,并结合经济成本及施工安全综合考虑,最终得出,水平旋喷桩长度10 m,桩径600 mm,外插角度1°,对海相淤泥质地层地表沉降变形控制效果最佳。采用IBM SPSS软件对水平旋喷桩的桩长、桩径和外插角度对地表沉降的影响进行Pearson相关性分析,表明桩径对地表沉降的影响大于桩长,桩长的影响大于外插角度。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
高搏
龙建平
吴恺
骆建军
关键词:  海相地层  浅埋暗挖  淤泥质地层  水平旋喷桩  超前支护    
Abstract: Songgang Station of Shenzhen Metro Line 12 Phase II Project and the existing wind pavilion section of Line 6 were taken as the research background. The parameters of the advanced support of horizontal jet grouting pile under the condition of marine strata were analyzed by three-dimensional finite difference software FLAC3D. Based on the analysis and comparison of the surface settlement and displacement results of tunnel excavation under this stratum condition, it was concluded that the stability of surrounding rock during tunnel excavation of marine silt layer was affected by horizontal jet grouting piles with different lengths, section sizes and insertion angles. The results showed that compared with the reinforcement without horizontal jet grouting pile, the surface settlement with horizontal jet grouting pile was reduced by 64.8%. With the increase of the section size of horizontal jet grouting pile, the surface settlement decreased gradually. With the increase of the length and insert angle of horizontal jet grouting pile, the surface settlement increased gradually. In order to find the optimal construction method of horizontal jet grouting pile, the settlement changes of 125 kinds of horizontal jet grouting pile under different supporting conditions were compared and studied, and the economic cost and construction safety were considered comprehensively. It was concluded that the length of horizontal jet grouting pile was 10 m, the pile diameter was 600 mm, and the intercalation angle was 1°, which had the best control effect on the surface settlement deformation of marine silt texture layer. At the same time, Pearson correlation analysis was conducted on the influence of pile length, pile diameter and extrapolation angle of horizontal jet grouting pile on the surface settlement by using IBM SPSS software, and the conclusion was drawn that the influence of pile diameter on surface settlement was greater than that of pile length and greater than that of extrapolation angle.
Key words:  marine strata    shallow-depth-excavation    silt texture layer    horizontal jet grouting pile    pre-support
收稿日期:  2022-12-05      修回日期:  2023-01-13      发布日期:  2023-03-20     
中图分类号:  U455.49  
通讯作者:  骆建军(1971— ),男,湖南汨罗人,博士,教授,博士生导师,主要研究方向为隧道与地下工程.    E-mail:  jjluo@bjtu.edu.cn
作者简介:  高搏(1997— ),男,河南项城人,硕士研究生,主要研究方向为岩土与地下工程. E-mail:3116858075@qq.com
引用本文:    
高搏, 龙建平, 吴恺, 骆建军. 海相地层浅埋暗挖隧道水平旋喷桩超前支护地层变形规律分析[J]. 隧道与地下工程灾害防治, 2023, 5(1): 64-73.
GAO Bo, LONG Jianping, WU Kai, LUO Jianjun. Analysis of strata deformation law of pre-support of horizontal jet grouting pile for shallow-depth-excavation tunnel in marine stratum. Hazard Control in Tunnelling and Underground Engineering, 2023, 5(1): 64-73.
链接本文:  
http://tunnel.sdujournals.com/CN/Y2023/V5/I1/64
[1] 杨利柯, 汪益敏. 广州南沙区软土分布特征及处理对策研究[J]. 路基工程, 2016(2): 9-13. YANG Like, WANG Yimin. Research on distributional characteristics and treatment measures of soft soil in Nansha District,Guangzhou[J]. Subgrade Engineering, 2016(2): 9-13.
[2] 刘勇健,刘湘秋, 刘雅恒, 等. 珠江三角洲软土物理力学性质对比分析[J]. 广东工业大学学报, 2013, 30(3): 30-36. LIU Yongjian, LIU Xiangqiu, LIU Yaheng, et al. A contrastive analysis of the physico-mechanical properties of soft soils in the Pearl River Delta[J]. Journal of Guangdong University of Technology, 2013, 30(3): 30-36.
[3] 刘大伟. 岩土勘察工作中工程地质条件及地层特性研究[J]. 工程建设与设计, 2022(12): 53-55. LIU Dawei. Study on engineering geological conditions and formation characteristics in geotechnical investigation[J]. Engineering Construction and Design, 2022(12): 53-55.
[4] 孟令福,徐小明,王德水,等. 珠海地区淤泥和淤泥质软土的工程地质特性[J]. 港工技术, 2013, 50(1): 68-70. MENG Lingfu, XU Xiaoming, WANG Deshui. Engineering geologic characteristics of silt and muddy soil in Zhuhai Area[J]. Port Engineering Technology, 2013, 50(1): 68-70.
[5] 王发明. 沿海地区淤泥质土层深基坑支护优化设计[J]. 铁道建筑技术, 2022(9): 101-104. WANG Faming. Optimization design of deep foundation pit support of silty soil layer in coastal area[J]. Railway Construction Technology, 2022(9): 101-104.
[6] 林奕禧,艾康洪,黄良机. 珠海地区软土的工程特性及工程建设问题[J]. 岩石力学与工程学报, 2006, 25(增刊2): 3372-3376. LIN Yixi, AI Kanghong, HUANG Liangji.Issues of engineering characteristics and engineering construction of soft clay in Zhuhai Region[J]. Chinese Journal of Rock Mechanics and Engineering, 2006, 25(Suppl.2): 3372-3376.
[7] 朱呈彪. 40 m超前水平旋喷桩加固黄土溜塌、错落体隧道进出洞技术[J]. 施工技术, 2018(5): 113-118. ZHU Chengbiao. Technology of reinforce the loess collapse and the strewn body in and out of tunnel by the 40 m advance horizontal jet grouting piles[J].Construction Technology, 2018(5): 113-118.
[8] 仝学让,薛模美. 水平旋喷桩在地铁暗挖隧道施工中的应用[J].现代隧道技术, 2003, 40(3): 51-54. TONG Xuerang, XUE Momei. Application of horizontal rotary jet grouting piles in metro built by mining method[J]. Modern Tunnelling Technology, 2003, 40(3): 51-54.
[9] 张海生. 水平旋喷桩加固技术在铁路隧道工程中的应用分析[J]. 铁路工程技术与经济, 2018, 33(4): 25-27. ZHANG Haisheng.Application analysis of horizontal rotating-jet grout pile reinforcement technology in railway tunnel engineering[J]. Railway Engineering Technology and Economy, 2018, 33(4): 25-27.
[10] 孙星亮,刘勇,王朝建. 国内外水平旋喷注浆加固技术的应用发展[J]. 钻探工程, 2001(1): 8-11. SUN Xingliang, LIU Yong, WANG Chaojian. Advances in the horizontal jet grouting stabilization technique at home and abroad[J]. Drilling Engineering, 2001(1): 8-11.
[11] TSUBOI H, FUKADA H, OOTSUKA M, et al. Quality characteristics of improved soil columns by new type jet grout mixing method[C] //Proceedings of the International Offshore and Polar Engineering Conference(ISOPE 2007). Lisbon, Portugal: [s.n.] , 2007: 1276-1281.
[12] HAIDER Tarek F, BYLE Michael J. Verification of jet grouting for structure rehabilitation[C] //Proceedings of Specialty Conference on Performance Confirmation of Constructed Geotechnical Facilities. Amherst, USA: American Society of Civil Engineers, 2000: 441-445.
[13] YOSHIDA K, KATAOKA I, YOSHIDA H, et al. Analyses of hydrodynamic structure of water jet and its application to jet grouting[C] //Proceedings of ASME/JSME 2003 4th Joint Fluids Summer Engineering Conference.Honolulu, USA:[s.n.] , 2003:741-746.
[14] MUSSGER K, KOINIG J, REISCHL S T. Jet grouting in combination with NATM[C] //Proceedings of the Rapid Excavation and Tunneling Conference.New Orleans, USA: ASCE, 1987:292-308.
[15] HIROHIKO Mitsuaka, HARUYUKI Matsuda, TOSHIYUKI Maori, et al. Oblique foundation improvement by high pressure jet construction method directly below JR Tuzan Line[C] //Proceedings of the 39th Conference on Site Engineering Research. Niigata, Japan: [s.n.] , 2004(7):1029-1030.
[16] 洪成泼,杨若望.浅谈MJS工法在我国发展及应用情况[J].建筑学研究前沿,2017(28):46-48. HONG Chengpo, YANG Ruowang. Brief discussion on the development and application of MJS construction method in China[J]. Frontiers in Architectural Research, 2017(28):46-48.
[17] 王中华. 水平旋喷桩在地铁暗挖风道超前预加固中的应用[J].工程建设,2011, 43(5): 23-29. WANG Zhonghua. Application of horizontal rotating jet grouting pile in advanced pre-reinforcementof underground air duct of subway[J]. Engineering Construction, 2011, 43(5): 23-29.
[18] 李遵豪,彭元栋,曹雄. 横琴杧洲隧道深厚海相软土地层预加固方案研究[J]. 广东土木与建筑, 2022, 29(6): 5-12. LI Zunhao, PENG Yuandong, CAO Xiong. Research on pre-reinforcement scheme of marine deep soft soil ground in Hengqin Mangzhou Tunnel[J]. Guangdong Architecture Civil Engineering, 2022, 29(6): 5-12.
[19] 汪珂,赖金星,邱军领,等. 强风化花岗岩隧道水平旋喷桩预加固效果分析[J]. 现代隧道技术, 2016, 53(5): 168-175. WANG Ke,LAI Jinxing,QIU Junling,et al.On the effects of horizontal jet grouting pile pre-reinforcement of tunnels in a strong weathered granite stratum[J]. Modern Tunnelling Technology, 2016, 53(5): 168-175.
[20] 中华人民共和国住房和城乡建设部. 城市轨道交通工程监测技术规范: GB50911—2013[S].北京: 中国建筑工业出版社, 2014.
[1] 李兆平, 史磊磊. 北京地区暗挖地铁车站结构设计方法研究进展综述[J]. 隧道与地下工程灾害防治, 2019, 1(3): 14-21.
[2] 谭忠盛. 隧道与地下工程建设理念及关键技术——记王梦恕院士的主要学术思想和科研成就[J]. 隧道与地下工程灾害防治, 2019, 1(2): 1-6.
[1] QIAN Qihu. Scientific use of the urban underground space to construction the harmonious livable and beautiful city[J]. Hazard Control in Tunnelling and Underground Engineering, 2019, 1(1): 1 -7 .
[2] ZHOU Caigui, LI Jing, LIANG Qingguo, CHEN Kelin. Comparison of water inflow prediction methods of hydraulic diversion tunnels during construction[J]. Hazard Control in Tunnelling and Underground Engineering, 2023, 5(1): 32 -44 .
[3] LIN Ying, WANG Guobo, SHI Longfei, WANG Jianning. Seismic Response Study of Close Space Curve Tunnel Cluster[J]. Hazard Control in Tunnelling and Underground Engineering, 0, (): 1 -0 .
[4] DONG Longjun, WANG Junhui, MA Ju. Response and support suggestions of surrounding rock of underground cavern under different microseismic source mechanism[J]. Hazard Control in Tunnelling and Underground Engineering, 2019, 1(3): 68 -76 .
[5] YU Haisui, ZHUANG Peizhi. Cavity contraction theory and its application to tunnelling[J]. Hazard Control in Tunnelling and Underground Engineering, 2019, 1(4): 13 -32 .
[6] LIU Run, HUANG Xuanzhi, YUAN Yu, MA Pengcheng. Study of soil degradation effects on offshore wind turbine with large-diameter pile foundation[J]. Hazard Control in Tunnelling and Underground Engineering, 2019, 1(4): 56 -63 .
[7] HAN Guiwu, GUO Shutai, ZHOU Rou. Research and application of coal mine roadway oil storage technology system[J]. Hazard Control in Tunnelling and Underground Engineering, 0, (): 1 .
[8] ZONG Junliang, RAO Qian, WANG Qi, YU Haitao. Numerical simulation of the dynamic response of ground penetrating ultra shallow-buried shield tunnel[J]. Hazard Control in Tunnelling and Underground Engineering, 0, (): 1 .
[9] SONG Zhenqi. Development status of mining engineering discipline in China and discussion on issues of its further development[J]. Hazard Control in Tunnelling and Underground Engineering, 2019, 1(2): 7 -12 .
[10] JIAO Yuyong, ZHANG Weishe, OU Guangzhao, ZOU Junpeng, CHEN Guanghui. Review of the evolution and mitigation of the water-inrush disaster in drilling-and-blasting excavated deep-buried tunnels[J]. Hazard Control in Tunnelling and Underground Engineering, 2019, 1(1): 36 -46 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
网站版权 © 《隧道与地下工程灾害防治》编辑部
地址:山东省济南市山大南路27号山东大学中心校区明德楼B733《隧道与地下工程灾害防治》编辑部, 邮编:250100, 电话:0531-88366735, E-mail:tunnel@sdu.edu.cn
本系统由北京玛格泰克科技发展有限公司设计开发 技术支持:support@magtech.com.cn