Effects of different empirical tunnel design approaches on rock mass behaviour during tunnel widening

被引:6
|
作者
Khan, Babar [1 ]
Jamil, S. Muhammad [1 ]
Jafri, Turab H. [1 ]
Akhtar, Kamran [2 ]
机构
[1] NUST, NUST Inst Civil Engn, Islamabad, Pakistan
[2] NUST, MCE, Islamabad, Pakistan
关键词
Civil engineering; Geotechnical engineering; Mining engineering; Construction engineering; Finite difference method (FDM); Tunnel widening; Longitudinal deformation profile (LDP); Empirical tunnel design methods; FLAC; 3D; Numerical simulation; STRESSES;
D O I
10.1016/j.heliyon.2019.e02944
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Empirical based approaches play an important role in tunnel excavation and support system design. These approaches are considered to be very effective in optimising the process of tunnel excavation and particularly tunnel widening. Several reliable empirical approaches have been developed, however the selection or utilisation of an appropriate empirical method for designing the widening of a tunnel is still a challenging task. Therefore, in this work, the analysis of seven different empirical design approaches was carried out to determine the rock mass behaviour during tunnel widening in high in-situ stress state. These approaches include New Austrian Tunnelling Method, Rock Mass Rating, Rock Mass Quality, Rock Mass Index, Rock Structure Rating, Geological Strength Index and Basic Quality Index. On the basis of simulated statistical results obtained from the said empirical approaches, it was found that the application of Rock Mass Quality approach is highly effective in the tunnel widening since it can satisfactorily incorporate the equivalent dimensions and in-situ stress condition of widened tunnel. The method furnishes optimised reinforcement and support design. Additionally, this study also produces reliable data related to the initial excavation of tunnel which can be helpful in defining precise rock mass parameters during tunnel widening.
引用
收藏
页数:20
相关论文
共 50 条
  • [21] ROCK MASS DAMAGED ZONE CAUSED BY BLASTING DURING TUNNEL EXCAVATION
    Anticevic, Hrvoje
    Dobrilovic, Mario
    Perkovic, Hrvoje
    RUDARSKO-GEOLOSKO-NAFTNI ZBORNIK, 2012, 24 (01): : 1 - 9
  • [22] Application of different stochastic numerical procedures in rock tunnel lining design
    Masoud Mazraehli
    Shokrollah Zare
    Arabian Journal of Geosciences, 2022, 15 (18)
  • [23] Effects of excavation subsequence of busbars tunnel on displacement of surrounding rock mass
    Huang, Qiuxiang
    Deng, Jianhui
    Su, Pengyun
    Yanshilixue Yu Gongcheng Xuebao/Chinese Journal of Rock Mechanics and Engineering, 2013, 32 (SUPPL.2): : 3658 - 3665
  • [24] EFFECTS OF ROCK MASS DEFORMATION ON TUNNEL PERFORMANCE IN SEISMIC REGIONS.
    Barton, Nick
    Publikasjon - Norges Geotekniske Institutt, 1986, (162): : 1 - 11
  • [25] EFFECTS OF ROCK MASS DEFORMATION ON TUNNEL PERFORMANCE IN SEISMIC REGIONS.
    Barton, Nick
    Advances in Tunnelling Technology and Subsurface Use, 1984, 4 (03): : 89 - 99
  • [26] Penchala tunnel: Example of an efficient combination of empirical, analytical, and observational approaches for design
    Grasso, P.
    Pescara, M.
    Ruga, N.
    Russo, G.
    Sivalingam, P.
    Tunnelling and Underground Space Technology, 2004, 19 (4-5 SPEC. ISS.)
  • [27] The change of rock mass pressure of Lianchengshan tunnel
    Chen, Jianxun
    Luo, Yanbin
    Li, Yao
    Zhao, Pengyu
    Xu, Dao
    Wang, Qingsong
    ENVIRONMENTAL EARTH SCIENCES, 2020, 79 (09)
  • [28] Seismic tunnel response in jointed rock mass
    Park, Duhee
    Yoo, Jin-Kwon
    GEOTECHNICAL ASPECTS OF UNDERGROUND CONSTRUCTION IN SOFT GROUND, 2014, : 485 - 488
  • [29] Dynamic instability of tunnel in blocky rock mass
    Qi C.
    Chen C.
    Qian Q.
    Luo J.
    Transactions of Tianjin University, 2008, 14 (6) : 457 - 463
  • [30] Calculation of tunnel behavior in viscoelastic rock mass
    Rahmnannejad, R.
    Sofianos, A. I.
    JOURNAL OF MINING AND ENVIRONMENT, 2013, 4 (01): : 27 - 33