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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (S1): 495-505.DOI: 10.3973/j.issn.2096-4498.2026.S1.044

• 施工技术 • 上一篇    下一篇

极软岩隧洞大变形时空演化规律与分级控制技术——以引江补汉工程12-1#支洞为例

彭春林1, 于泽刚1, *, 胥德怀2, 刘亮3   

  1. (1. 中国南水北调集团江汉水网建设开发有限公司, 湖北 武汉 430015; 2. 中铁十二局集团有限公司,山西 太原 030024; 3. 华北水利水电大学地球科学与工程学院, 河南 郑州 450046)
  • 出版日期:2026-06-30 发布日期:2026-06-30
  • 作者简介:彭春林(1976—),男,云南禄丰人,2011年毕业于昆明理工大学,水利水电工程专业,本科,高级工程师,主要从事引调水工程输水隧洞施工技术研究工作。 E-mail: 854291259@qq.com。 *通信作者: 于泽刚, E-mail: 380726735@qq.com。

Spatiotemporal Evolution Patterns and Hierarchical Control Technologies for Large Deformations in Extremely Soft Rock Tunnels: A Case Study of Adit #12-1 in Yangtze River-to-Hanjiang River Water Diversion Project

PENG Chunlin1, YU Zegang1, *, XU Dehuai2, LIU Liang3   

  1. (1. China South-to-North Water Diversion Jianghan Water Metwork Construction and Development Co., Ltd., Wuhan 430015, Hubei, China; 2. China Railway 12th Bureau Group Co., Ltd., Taiyuan 030024, Shanxi, China; 3. College of Geosciences and Engineering, North China University of Water Resources and Electric Power, Zhengzhou 450046, Henan, China)
  • Online:2026-06-30 Published:2026-06-30

摘要: 为解决长距离引调水工程中,极软岩隧洞在施工过程中出现的围岩大变形、初期支护衬砌开裂、围岩掉块垮塌、地表边坡沉降变形、施工进度缓慢等工程问题,以南水北调引江补汉工程12-1#施工支洞为例,针对其穿越极软岩(炭质页岩单轴抗压强度<5 MPa)地层时出现的围岩大变形问题,综合采用3DEC离散元数值模拟、现场监测与工程实践总结相结合的方法,系统分析极软岩隧洞开挖过程中围岩大变形的时空演化规律,并提出对应的分级控制措施。研究结果表明: 极软岩隧洞开挖后围岩前期变形大,且主要集中在上台阶开挖后的1~4 d,分台阶开挖配合临时仰拱封闭成环和竖向支撑,能够及时提供向上的拱形支撑作用,减少极软岩围岩变形量,并能将变形收敛时间缩短至12 d。提出3级控制技术: 采用108 mm管棚+42 mm小导管注浆对围岩进行超前加固; 实施“三台阶+竖向支撑+双临时仰拱”工法; 及时跟进钢拱架与喷锚支护措施。经现场实践,该控制技术可有效降低拱顶围岩沉降变形量,初期支护完成后沉降变形趋于稳定,监测后期变形量在20 mm以内。

关键词: 软岩隧洞, 沉降变形, 离散单元法, 分级控制, 超前支护, 台阶法开挖

Abstract: To address the engineering challenges posed by large deformations of surrounding rock, cracking of primary support, rockfall collapse, surface settlement, and slow construction progress in long-distance water diversion tunnels through extremely soft rock formations, a case study is conducted on the Adit #12-1 of the Yangtze River-to-Hanjiang River Water Diversion Project. Focusing on carbonaceous shale strata with uniaxial compressive strength below 5 MPa, an integrated approach combining 3DEC discrete element numerical simulation, field monitoring, and engineering practice are employed to systematically analyze the spatiotemporal evolution of large deformations during tunnel excavation in extremely soft rock. The results reveal that the surrounding rock experiences significant early-stage deformation, primarily concentrated within 1 to 4 days after upper bench excavation. By implementing a three-bench excavation method with temporary invert closure and vertical struts, the deformation convergence time can be reduced to 12 days while minimizing deformation magnitude through enhanced arching effects. Based on these findings, a threestage control strategy is proposed: advance reinforcement using 108 mm pipe roofing combined with 42 mm grouted spiles; implementation of a “three-bench + vertical struts + dual temporary inverts” excavation method; and timely installation of steel ribs and shotcrete support. This approach has demonstrated excellent application results in Adit #12-1. Following the completion of primary support, settlement deformation stabilized, with subsequent monitoring measurements remaining within 20 mm.

Key words: soft rock tunnel, settlement deformation, discrete element method, hierarchical control, advance support, three-bench method