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Upper Bound Limit Analysis-based Determination of the Influence of a Non-associated Flow Rule on the Stability of Shallow Tunnels |
ZHAO Lian-heng1, SUN Qiu-hong1,2, HUANG Fu3, ZOU Jin-feng1 |
1. School of Civil and Engineering, Central South University, Changsha Hunan 410075, China;
2. Second Engineering Company, China Railway Twenty-fifth Engineering Group Co., Ltd., Hengyang Hunan 421000, China;
3. School of Civil Engineering and Architecture, Changsha University of Science and Technology, Changsha Hunan 410004, China |
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Abstract On the basis of a non-associated flow rule and the upper bound theorem for limit analysis, the expression of surrounding rock pressure on shallow tunnels was derived by constructing a simple failure pattern. Strength reduction technique was applied to study the stability of shallow tunnels under certain levels of surrounding rock pressure; this analysis was based on the internal consumption and external energy conservation principle. The optimized upper bound solutions of surrounding rock pressure and the safety factor for shallow tunnels were obtained by nonlinear optimization methods. Results show that the dilatancy of geomaterials and the lateral pressure coefficient of surrounding rock significantly affect the surrounding rock pressure and stability of shallow tunnels. Furthermore, the lateral pressure coefficient is an important factor in relation to the stability of such tunnels.
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Received: 03 April 2013
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Fund:Supported by the National Natural Science Foundation of China (No.51078359);the China Postdoctoral Science Foundation (No.20110491269,No.2012T50708);and the Freedom Explore Program of Central South University (No.201012200197) |
Corresponding Authors:
ZHAO Lian-heng, zlh8076@163.com
E-mail: zlh8076@163.com
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[1] ATKINSON J H, POTTS D M. Stability of Shallow Tunnel in Cohesionless Soil[J]. Géotechnique, 1977, 27(2):203-215.
[2] LECA E, DORMIEUX L. Upper and Lower Bound Solutions for the Face Stability of Shallow Circular Tunnels in Frictional Material[J]. Géotechnique, 1990, 40(4):581-606.
[3] SOUBRA A H. Three-dimensional Face Stability Analysis of Shallow Circular Tunnels[C]//International Conference on Geotechnical and Geological Engineering. Melbourne, Australia:[s.n.], 2000:1-6.
[4] SOUBRA A H. Kinematical Approach to the Face Stability Analysis of Shallow Circular Tunnels[C]//8th International Symposium on Plasticity. British Columbia, Canada:[s. n.], 2000:443-445.
[5] SUBRIN D, WONG H. Tunnel Face Stability in Frictional Material:A New 3D Failure Mechanism[J]. Comptes Rendus Mecanique, 2002, 330(7):513-519.
[6] SUBEIN D, BRANQUE D, BERTHOZ N, et al. Kinematic 3D Approaches to Evaluate TBM Face Stability:Comparison with Experimental Laboratory Observations[C]//2nd International Conference on Computational Methods in Tunneling, Bochum, Germany:Aedificatio Publishers, 2009:801-808.
[7] DANIS E H, GUNN M J, MAIR R J, et al. The Stability of Shallow Tunnels and Underground Openings in Cohesive Material[J]. Géotechnique, 1980, 30(4):397-416.
[8] SLOAN S W, ASSADI A. Stability of Shallow Tunnels in Soft Ground[C]//HOULSBY G T, SCHOFIELD A N. Predictive Soil Mechanics, Proceedings of the Wroth Memorial Symposium. London:Thomas Telford, 1993:644-663.
[9] XIE Jun, LIU Chun-gui, YU Hai-yong. Upper Bound Solutions of Plastic Limit Analysis for the Stability of Two Parallel Circular Tunnels[J]. Chinese Journal of Rock Mechanics and Engineering, 2006, 25(9):1835-1841. (in Chinese)
[10] YANG Feng, YANG Jun-sheng. Limit Analysis Method for Determination of Earth Pressure on Shallow Tunnel[J]. Engineering Mechanics, 2008, 25(7):179-184. (in Chinese)
[11] YANG Feng, YANG Jun-sheng, ZHAO Lian-heng. Collapse Mechanism and Support Pressure for Shallow Tunnel Face[J]. Chinese Journal of Geotechnical Engineering,2010,32(2):288-294. (in Chinese)
[12] HUANG Fu, YANG Xiao-li, ZHAO Lian-heng. Upper Bound Solution of Supporting Pressure for a Shallow Square Tunnel Based on the Hoek-Brown Failure Criterion[J]. Journal of Zhejiang University Science A, 2012, 13(4):284-292.
[13] CHEN W F. Limit Analysis and Soil Plasticity[M]. 3 rd ed. Lauderdale, Florida:J. Ross Publishing Inc., 2007.
[14] CHEN W F, LIU X L. Limit Analysis in Soil Mechanics[M]. Amsterdam:Elsevier, 1990.
[15] BOTTERO A, NEGRE R. Finite Element Method and Limit Analysis Theory for Soil Mechanics Problems[J]. Computer Methods in Applied Mechanics of Engineering, 1980, 22(1):131-149.
[16] DRESCHER A, DETOUENZY E. Limit Load in Translational Failure Mechanics for Associative and Non-associative Materials[J]. Geotechnique, 1993, 43(3):443-456.
[17] ZHAO Lian-heng, LI Liang, YANG Feng, et al. Joined Influences of Nonlinearity and Dilation on the Ultimate Pullout Capacity of Horizontal Shallow Plate Anchors by Energy Dissipation Method[J]. International Journal of Geomechanics, ASCE, 2011,11(3):195-201.
[18] ZHAO Zhi-gang, ZHAO Lian-heng, HUANG Fu, et al. Upper Bound Stability Analysis for Soil Slope with Non-associated Flow Rule[C]//Slope Stability and Earth Retaining Walls (GSP 216) of Geohunan International Conference Ⅱ. Zhangjiajie, China:ASCE, 2011.
[19] SHI Ting-feng, ZHAO Lian-heng. Upper Bound Analysis for the Ultimate Pullout Capacity of Vertically Loaded Strip Plate Anchors Considering the Nonlinearity of Shear Strength Characteristics of Geomaterials[J]. Electronic Journal of Geotechnical Engineering, 2011, 16(G):729-739.
[20] YANG Xiao-li, GUO Nai-zheng, ZHAO Lian-heng, et al. Influences of Nonassociated Flow Rules on Seismic Bearing Capacity Factors of Strip Footing on Soil Slope by Energy Dissipation Method[J]. Journal of Central South University of Technology,2007, 14(6):842-847.
[21] YANG Feng. Investigation of Shallow Tunnel Stability Using Upper Bound Solution of Limit Analysis[D]. Changsha:Central South University, 2010. (in Chinese)
[22] BISHOP A W. The Use of the Slip Circle in the Stability Analysis of Slopes[J]. Geotechique, 1955, 5(1):7-17.
[23] DUNCAN J M. Limit Equilibrium and Finite Element Analysis of Slopes[J]. Journal of Geotechnical Engineering. 1996, 122(7):577-596.
[24] YANG Xiao-li, WANG Zuo-wei. Limit Analysis of Earth Pressure on Shallow Tunnel Using Nonlinear Failure Criterion[J]. Journal of Central South University:Science and Technology Edition, 2010, 41(1):299-302. (in Chinese)
[25] WANG Zuo-wei. Upper Bound Limit Analysis of Surrounding Rock Pressure on Shallow Tunnel by Using Nonlinear Failure Criterion[D]. Changsha:Central South University, 2010. (in Chinese) |
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