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An Elastoplastic Damage Constitutive Model for Concrete

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【作者】 刘军林皋钟红

【Author】 LIU Jun a, b, 1 , LIN Gao b and ZHONG Hong b a School of Civil & Safety Engineering, Dalian Jiaotong University, Dalian 116028, China b Faculty of Infrastructure Engineering, Dalian University of Technology, Dalian 116023, China

【机构】 School of Civil&Safety Engineering,Dalian Jiaotong UniversityFaculty of Infrastructure Engineering,Dalian University of Technology

【摘要】 An elastoplastic damage constitutive model to simulate nonlinear behavior of concrete is presented. Similar to traditional plastic theory, the irreversible deformation is modeled in effective stress space. In order to better describe different stiffness degradation mechanisms of concrete under tensile and compressive loading conditions, two damage variables, i.e., tension and compression are introduced, to quantitatively evaluate the degree of deterioration of concrete structure. The rate dependent behavior is taken into account, and this model is derived firmly in the framework of irreversible thermodynamics. Fully implicit backward-Euler algorithm is suggested to perform constitutive integration. Numerical results of the model accord well with the test results for specimens under uniaxial tension and compression, biaxial loading and triaxial loading. Failure processes of double-edge-notched (DEN) specimen are also simulated to further validate the proposed model.

【Abstract】 An elastoplastic damage constitutive model to simulate nonlinear behavior of concrete is presented. Similar to traditional plastic theory, the irreversible deformation is modeled in effective stress space. In order to better describe different stiffness degradation mechanisms of concrete under tensile and compressive loading conditions, two damage variables, i.e., tension and compression are introduced, to quantitatively evaluate the degree of deterioration of concrete structure. The rate dependent behavior is taken into account, and this model is derived firmly in the framework of irreversible thermodynamics. Fully implicit backward-Euler algorithm is suggested to perform constitutive integration. Numerical results of the model accord well with the test results for specimens under uniaxial tension and compression, biaxial loading and triaxial loading. Failure processes of double-edge-notched (DEN) specimen are also simulated to further validate the proposed model.

【基金】 supported by the National Natural Science Foundation of China(Grant No.90510018);the Education Department of Liaoning Province(Grant No.2006T019)
  • 【文献出处】 China Ocean Engineering ,中国海洋工程(英文版) , 编辑部邮箱 ,2013年02期
  • 【分类号】TU528
  • 【被引频次】7
  • 【下载频次】103
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