|本期目录/Table of Contents|

[1]李大军,何鹏飞,宋克志,等.复杂硐室交叉口转向挑顶施工力学行为研究[J].建筑科学与工程学报,2023,40(02):172-182.[doi:10.19815/j.jace.2022.11120]
 LI Dajun,HE Pengfei,SONG Kezhi,et al.Research on construction mechanical behavior of turning overhanging at intersection of complex chamber[J].Journal of Architecture and Civil Engineering,2023,40(02):172-182.[doi:10.19815/j.jace.2022.11120]
点击复制

复杂硐室交叉口转向挑顶施工力学行为研究(PDF)
分享到:

《建筑科学与工程学报》[ISSN:1673-2049/CN:61-1442/TU]

卷:
40卷
期数:
2023年02期
页码:
172-182
栏目:
岩土工程
出版日期:
2023-03-30

文章信息/Info

Title:
Research on construction mechanical behavior of turning overhanging at intersection of complex chamber
文章编号:
1673-2049(2023)02-0172-11
作者:
李大军1,何鹏飞2,宋克志3,王森巍4
(1. 山东大学 岩土与结构工程研究中心,山东 济南 264038; 2. 中交一公局第八工程有限公司,天津 300171; 3. 鲁东大学 土木工程学院,山东 烟台 264025; 4. 烟台市政府投资工程建设服务中心,山东 烟台 264030)
Author(s):
LI Dajun1, HE Pengfei2, SONG Kezhi3, WANG Senwei4
(1. Geotechnical and Structural Engineering Research Center, Shandong University, Jinan 264038, Shandong, China; 2.The Eighth Engineering Co., Ltd. of CCCC First Highway Engineering Co., Ltd., Tianjin 300171, China; 3. School of Civil Engineering, Ludong University, Yantai 264025, Shandong, China; 4.Investment Project Construction Service Center of Yantai Government, Yantai 264030, Shandong, China )
关键词:
隧道工程 交叉口 转向挑顶 施工力学行为 三维空间效应
Keywords:
tunnel engineering intersection section turning overhanging construction mechanical behavior three-dimensional space effect
分类号:
U455
DOI:
10.19815/j.jace.2022.11120
文献标志码:
A
摘要:
长大隧道的辅助坑道与正洞交叉段施工工序繁多,围岩易受到开挖扰动,进而产生失稳破坏。以伏牛山隧道为工程背景,借助有限元软件PLAXIS3D构建三维数值模型,模拟了辅助坑道进入正洞的施工过程,研究了小导洞转向挑顶施工及正洞反向台阶法开挖的施工力学行为与三维空间效应,分析了施工过程中围岩应力、拱顶沉降、洞周横向收敛位移及围岩塑性区演化规律。结果表明:横向通道交叉口段施工会导致交叉口附近风机房正洞围岩产生应力重分布,在正洞拱顶及右拱腰处形成拉应力,沿风机房纵向影响范围约为1倍洞径; 风机房拱顶最终沉降量为3.7~3.9 mm,在交叉口及其附近,以小导洞爬坡挑顶阶段和风机房正洞反向开挖通过时引起的拱顶沉降量最大,小导洞转向挑顶施工引起的拱顶总沉降量相对较小; 联络通道左侧进洞使得正洞左侧横向位移增加,进而导致正洞左右两侧横向位移呈现不对称分布; 交叉口处联络通道与风机房产生了连续的塑性区,塑性点主要在开挖侧壁,拱腰处最为集中,向上延伸至拱肩,拱脚处向下发展至一定深度; 针对小导洞扩挖施工过程中交叉口、上台阶侧壁、底面出现的少量受拉破坏点,施工中应对这些部位予以重点关注,及时施作初期支护,防止局部掉块。
Abstract:
The construction processes of the intersection parts of the auxiliary tunnel and the main tunnel are complex, easily causing damage to the surrounding rock mass. On the background of the Funiushan Tunnel, a three-dimensional numerical model was built, and the construction processes of the auxiliary tunnel into the main tunnel was simulated using the finite element software PLAXIS3D. The construction mechanical behavior and three-dimensional space effect of the excavation of the intersection parts of the auxiliary tunnel and the main tunnel were studied. The evolution laws surrounding rock mass status, roof settlement, displacement around the tunnel and rock plastic zone were investigated in the construction process. The results show that the construction of the intersection section of the transverse channel will affect the stress distribution of the surrounding rock mass and generate tensile stress near the intersection section. Moreover, the main influence range is about twice the diameter of the tunnel. The final settlement of the vault of the fan room is 3.7-3.9 mm. In the vicinity of the intersection section, the settlements caused by the construction stage of the small guide hole climbing and the reverse excavation of the main hole of the fan room are greater than that caused by the construction of small guide hole. The construction of the contact channel in the left side causes large lateral displacement on the left side of the main hole, resulting in asymmetrically distribution of the displacement. Continuous plastic zones are formed in the fan room and contact channel at the intersection. The plastic points are concentrated in the neighboured of the arch waist and arch foot on both sides of the main tunnel. In view of a small number of tensile failure points at the intersection, the side wall of the upper step and the bottom surface during the expansion of the small pilot tunnel, these parts should be paid attention to in the construction, and the initial support should be applied in time to prevent local falling blocks.

参考文献/References:

[1] 徐 飞,张同晓,石少帅,等.铁路隧道横洞进主洞关键技术及施工方案优化[J].科学技术与工程,2016,16(32):288-295.
XU Fei,ZHANG Tongxiao,SHI Shaoshuai,et al.Key technique and construction scheme optimization for the intersection of the horizontal adit and main tunnel of railway tunnels[J].Science Technology and Engineering,2016,16(32):288-295.
[2]邵珠山,赵 鑫.基于隧道施工诱发地表沉降随机介质理论预测模型的拓展[J].长安大学学报(自然科学版),2021,41(6):73-81.
SHAO Zhushan,ZHAO Xin.Based on extension of stochastic medium theory prediction model for surface subsidence induced by tunnel construction[J].Journal of Chang'an University(Natural Science Edition),2021,41(6):73-81.
[3]杨晓华,赵滨京,吴 昊,等.千枚岩深埋隧道支护参数对结构受力与变形的影响[J].建筑科学与工程学报,2020,37(3):108-117.
YANG Xiaohua,ZHAO Binjing,WU Hao,et al.Influence of supporting parameters of phyllite deep tunnel on structural stress and deformation[J].Journal of Architecture and Civil Engineering,2020,37(3):108-117.
[4]罗彦斌,陈建勋.黏弹性条件下大跨度公路黄土隧道二次衬砌施作时机[J].长安大学学报(自然科学版),2021,41(5):86-95.
LUO Yanbin,CHEN Jianxun.Construction time of secondary lining of large span loess tunnel under viscoelasticity condition[J].Journal of Chang'an University(Natural Science Edition),2021,41(5):86-95.
[5]JONEIDI M,GOLSHANI A,NAEIMIFAR I.Progressive deformation and mechanical behaviour of intersecting tunnels in soft ground[J].Proceedings of the Institution of Civil Engineers:Ground Improvement,2019,172(4):285-296.
[6]BIAN K,LIU J,XIAO M,et al.Cause investigation and verification of lining cracking of bifurcation tunnel at Huizhou pumped storage power station[J].Tunnelling and Underground Space Technology,2016,54:123-134.
[7]邓 碧,张俊伟,诸葛绪松,等.软土地层并行曲线隧道施工顺序对既有隧道的影响[J].建筑科学与工程学报,2021,38(6):170-176.
DENG Bi,ZHANG Junwei,ZHUGE Xusong,et al.Influence of construction sequence of parallel curved tunnels on existing tunnels in soft soil stratum[J].Journal of Architecture and Civil Engineering,2021,38(6):170-176.
[8]张立鑫,陈丽俊,陈建勋,等.单斜构造软硬互层围岩隧道变形特征及控制对策[J].建筑科学与工程学报,2021,38(6):186-196.
ZHANG Lixin,CHEN Lijun,CHEN Jianxun,et al.Deformation characteristics and treatment measures of tunnels in soft and hard interbedded surrounding rock with tilted stratum[J].Journal of Architecture and Civil Engineering,2021,38(6):186-196.
[9]薛 平,王长帅.某输水隧洞斜井进入主洞挑顶施工关键技术[J].现代隧道技术,2019,56(增2):688-692.
XUE Ping,WANG Changshuai.Key roof ripping construction technology for the transition section from the inclined shaft to main tunnel:case study of a water conveyance tunnel[J].Modern Tunnelling Technology,2019,56(S2):688-692.
[10]薛模美,胡恒福.客运专线隧道斜井转正洞施工技术研究[J].铁道标准设计,2008,52(4):90-93.
XUE Momei,HU Hengfu.Study on construction technology of inclined shaft turning into positive tunnel in passenger dedicated line tunnel[J].Railway Standard Design,2008,52(4):90-93.
[11]于家武,龙文华,郭新新,等.预应力锚索支护技术在高地应力大跨径隧道挑顶施工中的应用——以渭武高速公路木寨岭隧道为例[J].隧道建设(中英文),2021,41(8):1392-1398.
YU Jiawu,LONG Wenhua,GUO Xinxin,et al.Application of prestressed anchor cable supporting technology in roof ripping construction of long-span tunnel with high geostress:a case study of Muzhailing tunnel of Weiyuan-Wudu expressway[J].Tunnel Construction,2021,41(8):1392-1398.
[12]刘 毅,张 勇,彭 振,等.大跨地铁隧道斜井进洞垂直挑顶施工关键技术[J].现代隧道技术,2020,57(4):201-207.
LIU Yi,ZHANG Yong,PENG Zhen,et al.Vertical roof ripping construction techniques for excavation of main tunnel from inclined shaft:a case study of the large-span metro tunnel in soft surrounding rock[J].Modern Tunnelling Technology,2020,57(4):201-207.
[13]闫自海,章立峰,路军富,等.城市地下立交隧道交叉口施工方法研究[J].现代隧道技术,2019,56(1):176-184.
YAN Zihai,ZHANG Lifeng,LU Junfu,et al.Study on construction method of the intersection of the urban underground interchange tunnel[J].Modern Tunnelling Technology,2019,56(1):176-184.
[14]宋金贵.横洞进正洞交叉口设计优化方案研究[J].隧道建设,2017,37(增1):168-173.
SONG Jingui.Study of optimization scheme of design of connection section between horizontal gallery and main tunnel[J].Tunnel Construction,2017,37(S1):168-173.
[15]安永林,欧阳鹏博,彭立敏,等.深大竖井及转隧道正洞施工技术与安全分析[J].现代隧道技术,2018,55(2):164-173.
AN Yonglin,OUYANG Pengbo,PENG Limin,et al.Construction techniques and safety analysis for a deep vertical shaft and vertical shaft shifting to main tunnel[J].Modern Tunnelling Technology,2018,55(2):164-173.
[16]焦华喆,董腾飞,陈新明,等.大断面隧道三岔口段施工技术及围岩变形规律[J].公路交通科技,2019,36(8):100-107.
JIAO Huazhe,DONG Tengfei,CHEN Xinming,et al.Construction technology for fork road of large section tunnel and deformation rule of surrounding rock[J].Journal of Highway and Transportation Research and Development,2019,36(8):100-107.
[17]张洪达.软弱地层辅助坑道进隧道正洞上联洞+门架法挑顶施工技术[J].隧道建设(中英文),2021,41(12):2150-2156.
ZHANG Hongda.Construction technology of roof lifting using portal frame method of auxiliary tunnel entering main tunnel in soft stratum[J].Tunnel Construction,2021,41(12):2150-2156.
[18]刘 毅,贺祖浩,王志敏,等.破碎围岩条件下隧道挑顶施工技术研究[J].现代隧道技术,2020,57(6):200-206.
LIU Yi,HE Zuhao,WANG Zhimin,et al.Research on roof-ripping construction technology for tunnels under fractured surrounding rock conditions[J].Modern Tunnelling Technology,2020,57(6):200-206.
[19]杨晓华,曹扬帆,肖 靖,等.开挖方式对跨基覆界面浅埋偏压隧道变形的影响分析[J/OL].建筑科学与工程学报:1-14[2023-03-10].http://kns.cnki.net/kcms/detail/61.1442.tu.20211230.1338.024.html.
YANG Xiaohua,CAO Yangfan,XIAO Qing,et al.Analysis of the influence of excavation methods on the deformation of shallow-buried unsymmetrical loaded tunnels across the base and cover interface[J/OL].Journal of Architecture and Civil Engineering:1-14[2023-03-10].http://kns.cnki.net/kcms/detail/61.1442.tu.20211230.1338.024.html.
[20]章 剑,高 波,周佳媚,等.软弱围岩斜井转正洞工法动态施工力学行为分析[J].现代隧道技术,2013,50(2):46-51.
ZHANG Jian,GAO Bo,ZHOU Jiamei,et al.Analysis of dynamic mechanical behavior during construction from an inclined shaft to the main tunnel in soft surrounding rock[J].Modern Tunnelling Technology,2013,50(2):46-51.
[21]王景春,张天陆,王炳华,等.施工通道与站台隧道三岔口段施工方法及力学行为研究[J].铁道科学与工程学报,2021,18(10):2694-2702.
WANG Jingchun,ZHANG Tianlu,WANG Binghua,et al.Research on construction method and dynamic mechanical behavior of three-fork section of construction passage and station tunnel[J].Journal of Railway Science and Engineering,2021,18(10):2694-2702.
[22]陈佳玮,李元海,刘 毅.地铁大跨度隧道垂直挑顶施工中的围岩力学分析[J].城市轨道交通研究,2022,25(7):192-196,202.
CHEN Jiawei,LI Yuanhai,LIU Yi.Analysis of surrounding rock mechanical behavior of metro large-span tunnel vertical propping construction[J].Urban Mass Transit,2022,25(7):192-196,202.
[23]罗彦斌,陈建勋,王梦恕.隧道斜交横通道施工对主隧道衬砌结构的影响研究[J].岩石力学与工程学报,2010,29(增2):3792-3798.
LUO Yanbin,CHEN Jianxun,WANG Mengshu.Study of influence of skew horizontal adit tunnel construction on main tunnel lining structure[J].Chinese Journal of Rock Mechanics and Engineering,2010,29(S2):3792-3798.
[24]饶军应,谢财进,赵 霞,等.深埋隧洞三岔口围岩稳定性计算理论[J].中南大学学报(自然科学版),2019,50(8):1949-1959.
RAO Junying,XIE Caijin,ZHAO Xia,et al.Theoretical stability calculation of surrounding rocks in divergence of deep tunnel[J].Journal of Central South University(Science and Technology),2019,50(8):1949-1959.
[25]李连祥,张永磊,扈学波.基于PLAXIS 3D有限元软件的某坑中坑开挖影响分析[J].地下空间与工程学报,2016,12(增1):254-261,266.
LI Lianxiang,ZHANG Yonglei,HU Xuebo.Finite element analysis of a pit-in-pit excavation based on PLAXIS 3D[J].Chinese Journal of Underground Space and Engineering,2016,12(S1):254-261,266.
[26]牛方义.钢纤维喷射混凝土的数值建模及其在隧洞支护衬砌中的应用[D].北京:北京交通大学,2020.
NIU Fangyi.Numerical simulation for steel fiber reinforced shotcrete and its application to tunnel lining[D].Beijing:Beijing Jiaotong University,2020.

相似文献/References:

[1]石 刚,富志鹏,谢永利,等.公路隧道穿越采空区的探测与处理技术研究[J].建筑科学与工程学报,2014,31(03):64.
 SHI Gang,FU Zhi-peng,XIE Yong-li,et al.Research on Detection and Treatment Technology of Exhausted Areas in Highway Tunnel Construction[J].Journal of Architecture and Civil Engineering,2014,31(02):64.
[2]赵 颖,赵亚哥白,郭恩栋,等.通过活断层区地铁隧道损伤分析[J].建筑科学与工程学报,2015,32(06):82.
 ZHAO Ying,ZHAO Ya-gebai,GUO En-dong,et al.Damage Analysis of Metro Tunnel Across Active Fault[J].Journal of Architecture and Civil Engineering,2015,32(02):82.
[3]孙铁军,王 伟,罗明睿,等.不同衬砌结构缺陷对隧道结构整体安全性的影响[J].建筑科学与工程学报,2017,34(03):82.
 SUN Tie-jun,WANG Wei,LUO Ming-rui,et al.Influences of Different Lining Structure Defects on Overall Safety of Tunnel Structure[J].Journal of Architecture and Civil Engineering,2017,34(02):82.
[4]朱彦鹏,何江飞,李军.黄土公路隧道浅埋段管棚注浆支护机理及监测分析[J].建筑科学与工程学报,2011,28(01):11.
 ZHU Yan-peng,HE Jiang-fei,LI Jun.Support Mechanism and Monitoring Analysis of Pipe Roof Grouting for Loess Highway Tunnel in Shallow-buried Section[J].Journal of Architecture and Civil Engineering,2011,28(02):11.
[5]陈建勋,乔雄.黄土隧道浅埋偏压洞口段套拱结构受力监测与分析[J].建筑科学与工程学报,2011,28(01):100.
 CHEN Jian-xun,QIAO Xiong.Mechanical Monitoring and Analysis of Umbrella Arch Structure in Shallow-buried Bias Loess Tunnel Entrance[J].Journal of Architecture and Civil Engineering,2011,28(02):100.
[6]王梦恕.台湾海峡越海通道方案前期研究[J].建筑科学与工程学报,2012,29(03):4.
 WANG Meng-shu.Preliminary Research on Taiwan Strait Cross-sea Channel Schemes[J].Journal of Architecture and Civil Engineering,2012,29(02):4.
[7]张立鑫,陈丽俊,陈建勋,等.单斜构造软硬互层围岩隧道变形特征及控制对策[J].建筑科学与工程学报,2021,38(06):186.[doi:10.19815/j.jace.2021.04102]
 ZHANG Li-xin,CHEN Li-jun,CHEN Jian-xun,et al.Deformation Characteristics and Treatment Measures of Tunnels in Soft and Hard Interbedded Surrounding Rock with Tilted Stratum[J].Journal of Architecture and Civil Engineering,2021,38(02):186.[doi:10.19815/j.jace.2021.04102]
[8]杨晓华,曹扬帆,肖 靖,等.开挖方式对跨基覆界面浅埋偏压隧道变形的影响分析[J].建筑科学与工程学报,2023,40(03):111.[doi:10.19815/j.jace.2021.11023]
 YANG Xiaohua,CAO Yangfan,XIAO Jing,et al.Analysis of influence of excavation methods on deformation of shallow-buried bias tunnels across base and cover interface[J].Journal of Architecture and Civil Engineering,2023,40(02):111.[doi:10.19815/j.jace.2021.11023]
[9]王永刚,尉 敏,王 江,等.涨壳式预应力中空锚杆支护效果及注浆工艺改进研究[J].建筑科学与工程学报,2023,40(03):142.[doi:10.19815/j.jace.2022.12055]
 WANG Yonggang,YU Min,WANG Jiang,et al.Study on supporting effect of expansion-shell pre-stressed hollow anchor and improvement of grouting technology[J].Journal of Architecture and Civil Engineering,2023,40(02):142.[doi:10.19815/j.jace.2022.12055]
[10]赵鹏宇,黄解放,陈建勋,等.寒冷地区隧道防冻保温层等效厚度计算方法误差分析[J].建筑科学与工程学报,2023,40(04):135.[doi:10.19815/j.jace.2022.04109]
 ZHAO Pengyu,HUANG Jiefang,CHEN Jianxun,et al.Error analysis of equivalent thickness calculation method of tunnel thermal insulation layer in cold area[J].Journal of Architecture and Civil Engineering,2023,40(02):135.[doi:10.19815/j.jace.2022.04109]

备注/Memo

备注/Memo:
收稿日期:2022-11-30
基金项目:国家自然科学基金项目(51978322)
作者简介:李大军(1979-),男,高级工程师,E-mail:ytytskz2007@163.com。
通信作者:宋克志(1970-),男,工学博士,教授,E-mail:ytytskz@126.com。
更新日期/Last Update: 2023-03-20