[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 2025, Vol. 62 Issue (4) :37-49    DOI:
理论研究与探讨 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] >>
富水岩溶垂直分带渗透特征对隧洞外水压力的影响研究
(1.中水珠江规划勘测设计有限公司,广州 510610;2.广东粤海粤西供水有限公司,湛江 524000)
Influence of Permeability Characteristics of Vertical Zonation in Water-rich Karst on External Water Pressure of Tunnels
(1.China Water Resources Pearl River Planning, Surveying & Designing Co. , Ltd., Guangzhou 510610; 2. Guangdong Yuehai Yuexi Water Supply Co., Ltd., Zhanjiang 524000)
Download: PDF (6808KB)   HTML (1KB)   Export: BibTeX or EndNote (RIS)      Supporting Info
摘要 为研究富水岩溶垂直分带渗透特征对深埋长输水隧洞外水压力的影响,选取环北部湾广东水资源配 置工程云开山隧洞分界河谷洞段为研究对象,采用研制的一种新型钻孔压水试验装置,开展分层水力联系的钻孔压 水测量试验,查明隧洞上覆岩体上、下层之间的渗透特性,对隧洞上覆岩体进行垂直分带划分。研究结果表明:分界 河谷洞段上覆岩体自上而下可分为现代岩溶层、中层强化岩溶层和深层孤立洞隙层,其中现代岩溶层的下限埋深约 为100 m,中层强化岩溶层的下限埋深约为160 m,隧洞位于深层孤立洞隙层,距中层强化岩溶层底板约30 m。基于 此,通过数值模拟对比分析垂直分带渗透特征与均质渗透特征对隧洞外水压力的影响,发现相较于均质渗流模型, 考虑岩溶垂直分带的渗流模型中,岩层内渗透系数的变化导致漏斗状孔压等值线分布特征逐渐消失,且外水压力在 拱顶处最大(为7.13×105 Pa),在拱底处最小(为7.07×105 Pa);考虑垂直分带的隧洞最大外水压力为均质渗流模型计 算结果的231.5%。
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
李振嵩1 郭清华2 张 宁1 何荣坚2 张小平1 张浩然1
关键词富水岩溶   垂直分带   渗透特征   外水压力   引水隧洞   分层水力联系     
Abstract: To investigate the influence of vertical zonation permeability characteristics of water-rich karst on external water pressure in deep-buried long-distance water conveyance tunnels, the Fenjie river valley section of the Yunkai Mountain Tunnel in the Beibu Gulf Guangdong Water Resources Allocation Project was selected as the study site. A novel borehole water pressure testing device was developed to conduct stratified hydraulic connection measurements, revealing the permeability characteristics between upper and lower rock layers above the tunnel and enabling vertical zoning of the overlying rock mass. Results indicate that the overlying rock mass of the valley section can be vertically divided into a modern karst layer, a middle enhanced karst layer, and a deep isolated karst void layer. The lower boundary of the modern karst layer is approximately 100 m, the middle enhanced karst layer extends down to about 160 m, and the tunnel is located within the deep isolated karst void layer, approximately 30 m away from the bottom of the middle enhanced karst layer. Based on this, numerical simulations were conducted to compare the effects of vertical zonation permeability and homogeneous permeability on external water pressure.Compared with the homogeneous seepage model, the seepage modele considering karst vertical zonging eliminates the funnel-shaped pore pressure contour distribution due to variations in permeability within rock layers. The maximum and minimum external water pressures occur at the tunnel crown (7.13 × 10? Pa) and invert arch(7.07 × 10?Pa), respectively. The maximum external water pressure in the vertically zoned seepage model reaches 231.5% of that predicted by the homogeneous seepage model.
KeywordsWater-rich karst,   Vertical zonation,   Permeability characteristics,   External water pressure,   Water conveyance tunnel,   Stratified hydraulic connection     
基金资助:国家自然科学基金项目(41927806).
作者简介: 李振嵩(1982-),男,硕士,高级工程师,主要从事工程地质水文地质勘察与研究工作,E-mail: lizhensong@prpsdc.com. 通讯作者:张 宁(1991-),男,博士,工程师,主要从事隧洞灾害风险与预测研究工作,E-mail: zhangn@prpsdc.com.
引用本文:   
李振嵩1 郭清华2 张 宁1 何荣坚2 张小平1 张浩然1 .富水岩溶垂直分带渗透特征对隧洞外水压力的影响研究[J]  现代隧道技术, 2025,V62(4): 37-49
LI Zhensong1 GUO Qinghua2 ZHANG Ning1 HE rongjian2 ZHANG Xiaoping1 ZHANG Haoran1 .Influence of Permeability Characteristics of Vertical Zonation in Water-rich Karst on External Water Pressure of Tunnels[J]  MODERN TUNNELLING TECHNOLOGY, 2025,V62(4): 37-49
链接本文:  
http://www.xdsdjs.com/CN/      或     http://www.xdsdjs.com/CN/Y2025/V62/I4/37
 
没有本文参考文献
[1] 张翌娜1 陈 磊2,3 侯 鸽2 职保平1 刘 贺2.基于层次分析-物元可拓-变权理论模型的TBM引水隧洞结构健康评价[J]. 现代隧道技术, 2024,61(6): 240-250
[2] 杨 帆1 何复生1 晏启祥3 李卫东2 陈 健2 赵泽昌3.高水位砂化白云岩地层突涌水注浆技术研究[J]. 现代隧道技术, 2024,61(4): 255-265
[3] 张学军 1 聂启强 2 龚元江 3.滇中红层隧洞软岩大变形规律研究[J]. 现代隧道技术, 2023,60(3): 156-163
[4] 朱才辉 1,2 尹 力 2 杨奇强 2 李玉波 3.饱和Q2黄土地层引水隧洞衬砌外水压力折减系数研究[J]. 现代隧道技术, 2023,60(2): 94-102
[5] 孙克国 1 甄映州 1 魏 勇 1 肖支飞 2 杨 朋 3 方纯彬 4 蔡定淮 4 刘广明 5.富水岩溶区基坑稳定性影响规律与分析[J]. 现代隧道技术, 2023,60(1): 149-158
[6] 安永林 1 郭晋东 1 周 进 1 胡 伟 1 董晨阳 2 向 晖 2 戴 岭 2.局部超挖汇水下隧道支护结构受力特性[J]. 现代隧道技术, 2022,59(5): 91-98
[7] 黄世光 1 杨艳娜 2 范全忠 2 黄靖宇 2 余 磊 2.隧道堵水限排设计参数变化规律试验研究[J]. 现代隧道技术, 2022,59(3): 201-210
[8] 李凌子1,2, 肖明1,2.引水隧洞破碎带超前固结灌浆效果分析[J]. 现代隧道技术, 2015,52(2): 97-104
[9] 周泽林, 陈寿根, 李岩松.深埋引水隧洞软弱围岩支护结构受力特征研究[J]. 现代隧道技术, 2015,52(2): 36-43
[10] 李文富.硬岩隧洞小导洞法超前爆破开挖施工技术[J]. 现代隧道技术, 2013,50(6): 169-173
[11] 路耀邦1, 刘洪震1, 游永锋2, 徐朝辉2.海底盾构隧道孤石爆破预处理关键技术[J]. 现代隧道技术, 2012,49(5): 117-122
Copyright 2010 by 现代隧道技术