Prediction of Large Deformation Behavior in Tunnels Based on AHP–FUZZY Method and Numerical Simulation Method

被引:11
|
作者
Xu J.-B. [1 ]
Chen J.-P. [1 ]
Wu S.-L. [2 ]
Pan Y.-H. [1 ]
Wang W. [1 ]
Luo Q.-Q. [1 ]
机构
[1] Faculty of Engineering, China University of Geosciences, Wuhan
[2] Faculty of Engineering, Kyoto University, Kyoto
关键词
AHP–FUZZY method; Influence factors; Large deformation; Numerical simulation method;
D O I
10.1007/s10706-017-0312-y
中图分类号
学科分类号
摘要
In this paper, two different research methods are applied to predict large deformation behavior in tunnels and take Tianjiashan tunnel as the case study which is located in Xindianping town, Zhejiang city, Hunan province. The paper introduces the basic principle of the analytic hierarchy process and the fuzzy mathematics method, and classifies the influence factors of the large deformation in tunnels into eight kinds (C1–C8). Basing on the AHP–FUZZY method, this paper applies the results into the large deformation prediction analysis of Tianjiashan tunnel. In order to verify the accuracy of the evaluation results of AHP–FUZZY method, a numerical simulation model of DK394 + 625–DK394 + 650 section of Tianjiashan tunnel is established. The results show that the tunnel deformation is very large, and the tunnel excavation is sure to cause large deformation. The numerical simulation result is in accordance with the AHP–FUZZY method. Finally, we track record of occurrence of large deformation during the actual construction in tunnel, and the actual results are coincide with AHP–FUZZY method and numerical simulation results, which reflects the effectiveness of AHP–FUZZY method and numerical simulation method in predicting the large deformation behavior in tunnels. © 2017, Springer International Publishing AG.
引用
收藏
页码:151 / 163
页数:12
相关论文
共 50 条
  • [21] Method and applications of fuzzy AHP
    Xitong Gongcheng Lilum yu Shijian, 12 (64-69):
  • [22] Layout method and numerical simulation study of reduced-hole blasting in large-section tunnels
    Liu, Xia
    Tao, Tiejun
    Tian, Xingchao
    Lou, Qianxing
    Xie, Caijin
    FRONTIERS IN EARTH SCIENCE, 2022, 10
  • [23] Landslide risk evaluation method of open-pit mine based on numerical simulation of large deformation of landslide
    Jia, Lan
    Wang, Jiaqi
    Gao, Shisong
    Fang, Linhao
    Wang, Dong
    SCIENTIFIC REPORTS, 2023, 13 (01):
  • [24] Landslide risk evaluation method of open-pit mine based on numerical simulation of large deformation of landslide
    Lan Jia
    Jiaqi Wang
    Shisong Gao
    Linhao Fang
    Dong Wang
    Scientific Reports, 13 (1)
  • [25] Fuzzy AHP based Plant Sustainability Evaluation Method
    Jayawickrama, H. M. M. M.
    Kulatunga, A. K.
    Mathavan, S.
    14TH GLOBAL CONFERENCE ON SUSTAINABLE MANUFACTURING, GCSM 2016, 2017, 8 : 571 - 578
  • [26] Successful prediction of landslide deformation and failure by numerical method
    Zhao, QH
    Peng, SQ
    Nie, DX
    EIGHTH INTERNATIONAL CONGRESS INTERNATIONAL ASSOCIATION FOR ENGINEERING GEOLOGY AND THE ENVIRONMENT, PROCEEDINGS, VOLS 1-5, 1998, : 1349 - 1352
  • [27] Numerical prediction method for growth and deformation of filter cakes
    Parry, A. J.
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2006, 128 (06): : 1259 - 1265
  • [28] Rotation errors in numerical manifold method and a correction based on large deformation theory
    Zhang, Ning
    Li, Xu
    Jiang, Qinghui
    Lin, Xingchao
    FRONTIERS OF STRUCTURAL AND CIVIL ENGINEERING, 2019, 13 (05) : 1036 - 1053
  • [29] Numerical analysis of large deformation by finite element method
    Sultanov, L. U.
    Davydov, R. L.
    MAGAZINE OF CIVIL ENGINEERING, 2013, 44 (09): : 64 - 68
  • [30] Rotation errors in numerical manifold method and a correction based on large deformation theory
    Ning Zhang
    Xu Li
    Qinghui Jiang
    Xingchao Lin
    Frontiers of Structural and Civil Engineering, 2019, 13 : 1036 - 1053