唐小微

个人信息Personal Information

教授

博士生导师

硕士生导师

主要任职:岩土工程研究所所长

性别:男

毕业院校:京都大学

学位:博士

所在单位:土木工程系

学科:岩土工程

办公地点:综合实验1号楼215

联系方式:tangxw@dlut.edu.cn

电子邮箱:tangxw@dlut.edu.cn

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Critical cyclic stress ratio of undisturbed saturated soft clay in the Yangtze estuary under complex stress conditions

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论文类型:期刊论文

发表时间:2010-08-01

发表刊物:Transactions of Tianjin University

收录刊物:EI

卷号:16

期号:4

页面范围:295-303

ISSN号:10064982

摘要:There exists a critical cyclic stress ratio when sand or clay is subjected to cyclic loading. It is an index distinguishing stable state or failure state. The soil static and dynamic universal triaxial and torsional shear apparatus developed by Dalian University of Technology in China was employed to perform different types of tests on saturated soft marine clay in the Yangtze estuary. Undisturbed samples were subjected to undrained cyclic vertical and torsional coupling shear and cyclic torsional shear after three-directional anisotropic consolidation with different initial consolidation parameters. The effects of initial orientation angle of major principal stress, initial ratio of deviatoric stress, initial coefficient of intermediate principal stress and stress mode of cyclic shear on the critical cyclic stress ratio were investigated. It is found that the critical cyclic stress ratio decreases significantly with increasing initial orientation angle of major principal stress and initial ratio of deviatoric stress. Compared with the effects of the initial orientation angle of major principal stress and initial ratio of deviatoric stress, the effect of initial coefficient of intermediate principal stress is less evident. Under the same consolidation condition, the critical cyclic stress ratio from the cyclic coupling shear test is lower than that from the cyclic torsional shear test, indicating that the stress mode of cyclic shear has an obvious effect on the critical cyclic stress ratio. The main reason is that the continuous rotation in principal stress directions during cyclic coupling shear damages the original structure of soil more than the cyclic torsional shear does. © Tianjin University and Springer-Verlag Berlin Heidelberg 2010.