4.7 Article

An experimental investigation of the mechanical behavior and a hyperplastic constitutive model of frozen loess

Journal

INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE
Volume 84, Issue -, Pages 29-53

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijengsci.2014.06.011

Keywords

Frozen loess; Hyperplasticity theory; Stress path; Thermodynamic function; Constitutive model

Funding

  1. National key Basic Research Program of China (973 Program) [2012CB026102]
  2. National Natural Science Foundation of China [41230630, 41301072]
  3. Western Project Program of the Chinese Academy of Sciences [KZCX2-XB3-19]
  4. Program of Higher-level talents of Inner Mongolia University [30105-125146]
  5. foundation of State Key Laboratory of Frozen Soil Engineering [SKLFSE-ZY-03]
  6. Open Project Program of the State Key Laboratory of Frozen Soil Engineering [SKLFSE201208]

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For the engineering construction in cold regions, it is essential to understand the mechanical properties of frozen soil. In order to investigate the mechanical characteristics of frozen loess, three kinds of laboratory tests were carried out at -6 degrees C. These included constant-confining pressure triaxial compression tests, isotropic compression tests, and constant-slope stress path tests. The test results show that the direction of the plastic strain increment is influenced by stress path. The influence of the mechanism of the confining pressures on the strength and deformation of frozen loess is investigated in detail. An analytical method to determine pressure crushing and melting of the ice in frozen soil is proposed. In order to apply the hyperplasticity theory to modeling constitutive behavior of frozen soil, a new systematical approach to derive the yield criterion and flow rule from dissipation function is proposed based on the properties of homogenous function. From the mechanical characteristics of frozen loess, Gibbs free energy function and dissipation function of frozen loess are established by applying the hyperplasticity theory. An elasto-plastic incremental constitutive model for frozen loess is derived from the two thermodynamic functions and a method of determining the corresponding parameters is also given. Simulated results show that the constitutive model, proposed in this paper, describes well the deformation behavior of frozen loess under different stress levels and stress paths. (C) 2014 Elsevier Ltd. All rights reserved.

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