Research on the Mechanics Performance of the New Tension–Compression Rock Bolt Through Numerical Simulation

被引:0
作者
Shuai Yang
Xunguo Zhu
Guofeng Zhang
Lin Yang
Hongchun Xia
Wei Li
机构
[1] Dalian University,Key Laboratory of Disaster Prediction and Control of Complex Structure System
[2] Dalian University,College of Architectural Engineering
[3] China University of Mining and Technology,Key Laboratory for Geomechanics and Deep Underground Engineering
来源
Geotechnical and Geological Engineering | 2022年 / 40卷
关键词
The mechanics performance; The new tension–compression rock bolt; Numerical simulation; Tunnel engineering;
D O I
暂无
中图分类号
学科分类号
摘要
In order to study the mechanical mechanism of the new tension–compression composite anchor, the finite element software is used to establish the numerical calculation model of the new composite anchor, and the numerical drawing test is carried out. Through numerical experiments, the optimal position range of the bolt bearing plate is obtained, and the axial load and shear stress distribution of the bolt were analyzed. The results show that the ultimate pullout force of the new tension–compression composite bolt increases first and then decreases with the movement of the bearing plate position, and the optimal position is at the position where the length ratio of the tension–compression anchorage section is 3:4. At the same time, the study shows that the optimal position of the bearing plate has an optimal position interval. The ultimate uplift capacity of the new tension–compression composite anchor is 118.6% and 94% higher than that of the traditional tension anchor and pressure anchor, respectively. The shear stress distribution of the new tension–compression composite anchor is more uniform. The peak shear stress first appears at the bearing plate and begins to transfer to both sides of the bearing plate with the increase in the drawing force, which increases first and then decreases. Since the new tension–compression composite anchorage section is in an unbonded state, the axial load of the bolt is always equal to the drawing force. The axial force distribution of the tensile anchorage section is similar to that of the traditional tensile bolt and decreases exponentially along the axial direction of the bolt. Under the action of ultimate drawing force, the plastic zone distribution of the new tension–compression composite anchor is different from that of the traditional tension anchor and the traditional pressure anchor. The plastic zone first appears in the position of the bearing plate and begins to transfer to both sides of the bearing plate with the increase in the drawing force. When the plastic strain exceeds the allowable strain of the interface, the bolt pulls out from the anchor hole and the bolt support structure fails.
引用
收藏
页码:2255 / 2266
页数:11
相关论文
共 42 条
[1]  
Che N(2018)Mechanism investigation of rock bolt failure in anchorage segment under Pullout via DEM Chin J Undergr Space Eng 14 716-724
[2]  
Wang H(2019)Analysis of whole process of bolt pulling based on wavelet function Rock Soil Mech 40 4590-4596
[3]  
Jiang M(2021)Progressive failure process and influencing factors of bolts under the loading of pullout J Beijing Univ Technol 47 346-356
[4]  
Liao Y(2017)Experimental study and mechanism analysis of influence of bolt anchoring on shear properties of jointed rock mass Rock Soil Mech 38 27-35
[5]  
Chen J(2018)Experimental analysis of anchorage performance and interfacial mechanics transfer characteristic of tension-type anchor rods Ind Construct 48 123-127
[6]  
Chen X(2020)Limit distance and the estimating efficiency factor of rock group anchor Chin J Undergr Space Eng 16 194-200
[7]  
Li P(2016)A numerical model of fully grouted bolts considering the tri-linear shear bond-slip model Tunnel Undergr Space Technol 54 73-80
[8]  
Huang J(2018)Analysis of anchorage performance on new tension-compression anchor I: simplified theory Chin J Geotech Eng 40 2289-2295
[9]  
Wang F(2019)Analysis of anchorage performance on new tension-compression anchor II: model test Chin J Geotech Eng 41 475-483
[10]  
Liu Q(2019)Analysis of anchorage performance on new tension-compression anchor III: field test Chin J Geotech Eng 41 846-854