[an error occurred while processing this directive]
 
       首 页  |  期刊介绍  |  编委会  |  投稿指南  |  期刊订阅  |  广告合作  |  留言板  |  联系我们 |  English
现代隧道技术 2019, Vol. 56 Issue (5) :1-12    DOI:
特约稿 最新目录 | 下期目录 | 过刊浏览 | 高级检索 << [an error occurred while processing this directive] | [an error occurred while processing this directive] >>
超特长隧洞集群TBM试掘进阶段存在的问题与施工技术发展方向
(1新疆额尔齐斯河流域开发工程建设管理局,乌鲁木齐 830000;2北京交通大学土木建筑工程学院,北京100044)
Some Issues during TBM Trial Advance of Super-long Tunnel Group and Development Direction of Construction Technology
(1 Xinjiang Erqis River Basin Development and Construction Administration Bureau, Urumqi 830000;2 School of Civil Engineering,Beijing Jiaotong University, Beijing 100044)
Download: PDF (5208KB)   HTML (1KB)   Export: BibTeX or EndNote (RIS)      Supporting Info
摘要 北疆供水二期工程总长540 km,其中隧洞段长度516 km。隧洞采用以TBM为主并结合钻爆法进行施工,其中支洞施工采用 2 台 TBM,正洞施工采用 18 台 TBM 和 3 台盾构。单台掘进长度均超过 15 km,最长掘进 26km。TBM施工面临着集群掘进、不良地质及极硬岩穿越、超长距离施工等风险和难题,对隧洞的设计与施工技术提出了新的挑战。通过试掘进阶段的工作总结与分析,为进一步提高TBM的安全高效掘进技术水平,文章提出了超特长隧洞TBM施工今后发展的几个研究方向:1)适应TBM快速掘进的实时超前地质预报技术;2)地质适应性更强的TBM装备;3)智能化掘进技术;4)设备状态实时监测技术;5)围岩分级方法及相应的支护体系;6)辅助破岩技术;7)超长距离隧洞独头高压通风技术;8)超长距离皮带运输技术。通过改进TBM设备性能、优化隧洞设计和施工技术,从而提高设备对各种地质的适应能力,实现超长隧洞TBM的安全高效掘进。
Service
把本文推荐给朋友
加入我的书架
加入引用管理器
Email Alert
RSS
作者相关文章
邓铭江 1 谭忠盛 2
关键词:   
Abstract: The total length of the water transfer project phase Ⅱ is 540 km in the northern area of Xinjiang Uygur Autonomous Region of China, of which the total length of tunnels is about 516 km. The tunnel boring machine (TBM) and drilling & blasting method were adopted for the tunnel construction, the main tunnels include 18 TBM tunnelling sections and 3 shield tunnelling sections, and the branch tunnels include 2 TBM tunnelling sections. The tunnelling length of single TBM is more than 15 km, and the maximum tunnelling distance is up to 26 km. It poses unprecedented challenges on the tunnel design and construction technique due to the group driving, adverse geology and extreme hard rock, long tunnelling distance by TBM and other construction risks and difficulties. Based on the summary and analysis of the TBM performance in the trial tunnelling, several aspects on the development directions of TBM construction of super-long tunnels were put forward to improve the technical level of safe and efficient TBM tunnelling. Namely, real-time advance geological prediction technique for rapid TBM excavation should be studied;developing of the TBM equipment with better geologic adaptability should be conducted; the intelligent TBM tunnelling technique should be studied; the real-time monitoring technique for TBM equipment state should be studied;the surrounding rock classification and corresponding supporting system should be studied; the auxiliary rock breaking technique should be developed; the one-end high-pressure ventilation technique for the super-long tunnel should be studied; the belt conveyor transportation technique should be developed for the super-long tunnel. By improving performance of TBM equipment and optimizing tunnel design and construction method, the adaptability of TBM equipment to various geological conditions is increased and safe and efficient TBM tunnelling for super-long tunnels is realized.
KeywordsSuper-long tunnel,   TBM advance,   Real-time geological prediction,   Intelligent driving,   Rock mass clas? sification for the TBM tunnel,   Auxiliary rock breaking,   High-pressure ventilation     
作者简介: 作者简介:邓铭江(1960-),男,博士,教授级高级工程师,中国工程院院士,主要从事水利工程建设和水资源研究工作,E-mail: xjdmj@163.com. 通讯作者:谭忠盛(1963-),男,博士,教授,博士生导师,主要从事隧道及地下工程方面的研究工作,E-mail:zstan@vip.sina.com.
引用本文:   
邓铭江 1 谭忠盛 2 .超特长隧洞集群TBM试掘进阶段存在的问题与施工技术发展方向[J]  现代隧道技术, 2019,V56(5): 1-12
DENG Mingjiang1 TAN Zhongsheng2 .Some Issues during TBM Trial Advance of Super-long Tunnel Group and Development Direction of Construction Technology[J]  MODERN TUNNELLING TECHNOLOGY, 2019,V56(5): 1-12
链接本文:  
http://www.xdsdjs.com/CN/      或     http://www.xdsdjs.com/CN/Y2019/V56/I5/1
 
没有本文参考文献
[1] 李瑞俊1 宋宗莹2 李 琛1 王文斌2 任育珍3,4 蔡建华3,4 张家旭3,4.重载铁路梁家山隧道病害多源融合诊断与处置对策[J]. 现代隧道技术, 2025,62(4): 301-308
[2] 张小龙.桩基荷载作用下地铁盾构隧道结构力学响应分析[J]. 现代隧道技术, 2025,62(4): 82-89
[3] 李克玺1,2 党建东3 张 见3 叶光祥4 王晓军1,2 陈青林1,2 曹世荣2 张 河1,2.基于声发射特征参数的不同类型砂岩破裂特征研究[J]. 现代隧道技术, 2025,62(4): 26-36
[4] 周彩荣1 易黎明1 马山青2 周 蠡3 于金弘4,5.三点加载下高性能纤维混凝土顶管承载特性及配筋方案研究[J]. 现代隧道技术, 2025,62(4): 50-60
[5] 郭永军1 李 超2 郑建国3 于永堂4 朱才辉5.地面堆载对西安黄土地层中既有盾构管片影响研究[J]. 现代隧道技术, 2025,62(4): 61-72
[6] 王永刚1 崔翌堃1 吴九七2,3 黄 俊4 沈 翔2,3 杨 奎4 苏 栋2,3.考虑不同磨损形式下的滚刀受力与磨损对比分析[J]. 现代隧道技术, 2025,62(4): 73-81
[7] 冯冀蒙1,2 宋佳黛1,2 王圣涛3 李艺飞1,2 张俊儒1,2 王好明4 汪 波1,2.填海地层特大断面隧道超长管棚变形控制 效能研究[J]. 现代隧道技术, 2025,62(4): 155-162
[8] 徐才坚1 陈星宇1 雷明林1 张兴龙2 孙怀远2 李晓军2.隧道施工掌子面前方围岩富水性数字孪生与风险决策[J]. 现代隧道技术, 2025,62(4): 90-99
[9] 杨 颖1 倪 凯1 葛 林2 张明飞3 王晓睿4.弱光条件下基于改进Unet模型的隧道渗水病害图像分割[J]. 现代隧道技术, 2025,62(4): 100-110
[10] 苏开春1 付 锐2,3 曾弘锐2,3 冷希乔4 郭 春2,3.基于DBO-A-LSTM的公路隧道短时多步交通量预测[J]. 现代隧道技术, 2025,62(4): 111-121
[11] 熊 颖1,2 张俊儒1,2 范子焱1,2 陈佳豪1,2 马荐驰1,2 陈鹏涛1,2 谭瑞锋3,4.层状软岩中爆破应力波传播与振动衰减特性研究[J]. 现代隧道技术, 2025,62(4): 122-131
[12] 刘 杨1 邵泽楷2 田浩帆2 张汝溪1 郑 波3 王峥峥2.高速公路隧道下穿房柱式煤矿采空区爆破施工煤柱 损伤规律研究[J]. 现代隧道技术, 2025,62(4): 132-144
[13] 罗志洋1 张春瑜2,3 王立川1,2,4,5 徐 烁1 李利平4 王倩倩5 刘志强6.TBM裂隙岩体隧洞涌水机制及注浆堵水研究[J]. 现代隧道技术, 2025,62(4): 145-154
[14] 周弋力1 封 坤1 郭文琦1 张亮亮2 李春林3.超大直径盾构隧道管片纵缝抗弯力学行为与损伤过程研究[J]. 现代隧道技术, 2025,62(4): 163-173
[15] 易 丹1 薛皓匀2 杨绍毅2 喻 波1 封 坤2 林 刚1.盾构隧道管片结构螺栓失效对横向地震响应的影响分析[J]. 现代隧道技术, 2025,62(4): 174-181
Copyright 2010 by 现代隧道技术