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隧道建设(中英文) ›› 2023, Vol. 43 ›› Issue (S1): 154-162.DOI: 10.3973/j.issn.2096-4498.2023.S1.018

• 研究与探索 • 上一篇    下一篇

土岩复合地层不同锚固长度预应力锚索锚固机制及现场测试

刘学1, 郭廷科1, 沈龙1, 王鑫1, 徐东明2, *, 翟兆玺2   

  1. 1. 中铁四局集团有限公司, 安徽 合肥 230023;  2. 中国矿业大学(北京) 深部岩土力学与地下工程国家重点实验室, 北京 100083
  • 出版日期:2023-07-31 发布日期:2023-08-28
  • 作者简介:刘学(1986—),男,辽宁营口人,2008年毕业于西南交通大学,结构力学专业,本科,工程师,现从事城市轨道交通施工和技术研究工作。Email: 1369652296@qq.com。*通信作者: 徐东明, Email: xdm0816@163.com。

Anchorage Mechanism and Field Tests of Prestressed Anchor Cables with Different Anchorage Lengths in SoilRock Composite Strata

LIU Xue1, GUO Tingke1, SHEN Long1, WANG Xin1, XU Dongming2, *, ZHAI Zhaoxi2   

  1. (1. China Railway No.4 Bureau Group Co., Ltd., Hefei 230023, Anhui, China; 2. State Key Laboratory for Geomechanics and Deep Underground Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China)
  • Online:2023-07-31 Published:2023-08-28

摘要: 为获取土岩复合地层最优锚固长度,采用室内试验、数值模拟、工程测试等方法,围绕是否穿过黏性土砾砂岩层,针对2类锚固长度(12 m8 m)工况进行研究。结果表明: 1)在张拉载荷作用下,剪应力峰值由锚固段起始点向尾部转移,而锚固在含黏性土砾砂岩层中的剪应力峰值低,轴力衰减速率高。2)随张拉载荷的增大,锚固在黏性土砾砂岩层中的锚固段由拉应力区逐渐转化为压应力区,应力向深处的传递速率低,锚固体具有抵抗外载荷能力差、变形量大的特点。3)锚索轴力可分为预应力损失、上升、波动3个演化阶段,而锚固段穿过黏性土砾砂岩层时,预应力在波动阶段出现损失,且在不同方向上的预应力呈现非均匀分布特征。4)在锚索穿过土岩复合地层时,应避免锚固在含土砾砂地层中。

关键词: 土岩复合地层, 锚固长度, 锚固机制, 拉拔试验, 数值模拟, 现场试验

Abstract: To obtain the optimal anchorage length for soilrock composite strata, indoor tests, numerical simulations, and engineering tests are conducted to investigate the working conditions for two types of anchorage lengths (12 m and 8 m). The results show the following: (1) The peak shear stress transfers from the beginning to the end of the anchorage section under the tension load, while the peak shear stress is low and the axial force decay rate is high in the anchorage in clayey soil gravel sandstone layer. (2) With the increase of tension load, the anchorage section in clayey soil gravel sandstone layer gradually transforms from tensile stress zone to compressive stress zone, the transfer rate of stress to the depth is low, and the anchorage solid has the characteristics of poor resistance to external load and high deformation. (3) The anchor cable axial force can be divided into three evolutionary stages: loss of prestress, rise, and fluctuation, and when the anchorage section passes through the clayey soilgravel sandstone layer, the prestress is lost in the fluctuation stage, and the prestress is nonuniformly distributed in different directions. (4) It is recommended to avoid anchoring in the soilgravel sandstone layer when the anchor cable passes through the soilrock composite strata.

Key words: soilrock composite strata, anchorage length, anchorage mechanism, pullout test, numerical simulation, field test