Application of Structural Loess Binary-Medium Mode in Localization Shear Band

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Based on the theory of breakage mechanics,the structural loess are conceptualized as binary -medium model consisting of bonding brick and frictional band. Shear band is structural loess’ breakage, localization band sprout and development is dynamic process that bonding brick is translating into frictional band.Application of double parameter breakage ratio binary-medium mode of structural loess,simulated the process of structural loess localization band sprouting and expanding with the numerical simulations method,studied localization shear band shape、speciality and law under different disfigurement project,found that the strain localization on a shear band of structural soil at originally is some sets discontinuous little local breakage area step by step developed、 connected and formed the shape of whole destruct with the external load increased,appeared dilatation softening phenomena under the especial disfigurement. Combining binary-medium mode with general finite element,solved the question of localization shear band softening,visual reappeared the course of the local shear band germination and progress.

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825-832

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October 2012

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] Mingjing Jiang, Zhujian Shen. Microscopic analysis of shear band in structured clay[J]. Chinese Journal of Geotechnical Engineerin,1998,20(2):102-108(in Chinese).

Google Scholar

[2] Songlin Xu, Wen Wu. BIFURCATION ANALYSIS ON DEFORMATION LOCALIZATION OF GEOMATERIAL[J]. Chinese Journal of Rock Mechanics and Engineering, 2004, 23(20): 3430-3438(in Chinese).

Google Scholar

[3] Jian-gu QIAN, Xi-lin Lü, Mao-song HUANG. Softening characteristics of soils and constitutive modeling under plane strain condition[J]. Rock and Soil Mechanics,2009,30(3): 617-622 (in Chinese).

Google Scholar

[4] Wen-zhan ZHEN, De-an SUN, ANBo DU. Analysis of strain localization in overconsolidated clay specimens along different stress paths[J]. Rock and Soil Mechanics, 2011,32(1): 293-298 (in Chinese).

Google Scholar

[5] Hong SUN, Xi-hon ZHAO. Influence on Shear Band Formation by Damage of Soft Soil[J]. JOURNAL OF TONGJI UNIVERSITY,200129(3): 278-282 (in Chinese).

Google Scholar

[6] Zheng-yin CAI. Progressive failure of sand and its numerical simulation[J]. Rock and Soil Mechanics, 2003, 29(3): 580-585 (in Chinese).

Google Scholar

[7] De-xuan QI, Yi-tong ZHANG, Shu-guang REN. Analysis of shear band in sand under plane strain state[J]. Chinese Journal of Geotechnical Engineering, 2009,31(7): 1014-1019 (in Chinese).

Google Scholar

[8] Fulin LI, Fangle PENG, Liang, LEI KONGKITKUL W. FINITE ELEMENT SIMULATION OF STRAIN LOCALIZATION ON A SHEAR BAND OF SAND UNDER PLANE STRAIN CONDITION[J]. Chinese Journal of Rock Mechanics and Engineering, 2010, 29(4): 850-857 (in Chinese).

Google Scholar

[9] Jian-guo DONG, Bei LI. Study on internal relations between formation of shear bands and its yield in clay[J]. Rock and Soil Mechanics, 2007,28(5): 580-585 (in Chinese).

Google Scholar

[10] Bei LI, Xi-hong ZHAO, Jian-guo DONG.Experimental study on shear band inclination in Shanghai clay [J]. Rock and Soil Mechanics, 2002,23(4): 423-427 (in Chinese).

Google Scholar

[11] Yuan-hai LI, Hong-wen JING, He-hua ZHU,UENO Katsutoshi. A technique of identifying shear band accurately in granular soil using image correlation analysis[J]. Rock and Soil Mechanics, 2007, 28(3): 522-526 (in Chinese).

Google Scholar

[12] D A SUN, W X HUANG, Y P YAO. An experimental study of failure and softening in sand under three-dimensional stress condition[J]. Granular Matter, 2008, 10(3): 187-195 (in Chinese).

DOI: 10.1007/s10035-008-0083-5

Google Scholar

[13] Q WANG,LADE P V.Shear banding in true triaxial tests and its effect on failure in sand[J].Journal of Engineering Mechanics,2001,127(8):754-761 (in Chinese).

DOI: 10.1061/(asce)0733-9399(2001)127:8(754)

Google Scholar

[14] Zhu-pin WANG, Long-tan SHAO, Yi-zhen SUN. Study on shear band of fly ash triaxial specimen based on digital image processing technique[J]. Chinese Journal of Geotechnical Engineerin, 2006, 28(9): 1163-1167 (in Chinese).

Google Scholar

[15] Long-tan SHAO, Yi-zhen SUN, Zhu-pin WANG, Yong-lu LIU. Application of digital image processing technique to triaxial test in soil mechanics[J]. Rock and Soil Mechanics, 2006, 27(1): 29-34 (in Chinese).

Google Scholar

[16] Shenghong CHEN, Weixing QIN, Qing XU. COMPOSITE ELEMENT METHOD AND APPLICATION OF TRACE SIMULATION FOR STRAIN LOCALIZATION BANDS[J]. Chinese Journal of Rock Mechanics and Engineering, 2007, 26(6): 1116-1122 (in Chinese).

Google Scholar

[17] JialinYU, Xun SUN, Yuzhen YU, Lin CHAI. Experimental study of the evolution of shear bands in structured soil[J]. J Tsinghua Univ (Sci & Tech) ,2010,50(3):367-371 (in Chinese).

Google Scholar

[18] Mao-song HUANG, Cang-qin JIA, Jian-g QIAN. Strain localization problems in geomaterials using finite elements[J]. Chinese Journal of Computational Mechanics, 2007, 24(4): 465-471 (in Chinese).

Google Scholar

[19] Ming-jing JIANG, Fu-zhou WANG, He-hua ZHU. Shear band formation in ideal dense sand in direct shear test by discrete element analysis[J]. Rock and Soil Mechanics, 2010,31(1): 253-257+298 (in Chinese).

Google Scholar

[20] Zhu-jiang SHEN. Breakage mechanics for geological materials:an ideal brittle-elasto-plastic model[J]. Chinese Journal of Geotechnical Engineerin, 2003, 25(3): 253-257 (in Chinese).

Google Scholar

[21] Zhu-jiang SHEN, En-long LIU, Tie-lin CHEN. Generalized stress-strain relationship of binary medium model for geological materials[J]. Chinese Journal of Geotechnical Engineerin, 2005, 27(5): 489-494 (in Chinese).

Google Scholar