Title of article :
Modeling and Numerical Analysis in 3D of Anisotropic and Nonlinear Mechanical Behavior of Tournemire Argillite under High Temperatures and Dynamic Loading
Author/Authors :
Wembe Marius, Foguieng Unit´e de Recherche de M´ecanique et de Mod´elisation des Syst`emes Physiques (UR-2MSP) - Department of Physics - Dschang School of Science and Technology - University of Dschang - P.O. Box 67 - Dschang - Cameroon , Ngueyep Luc Leroy, Mambou Laboratory of Material Sciences - Department of Physics - Faculty of Science - University of Yaound´e 1 - P.O. Box 812 - Yaound´e, Cameroon - Department of Mine Mineral Processing and Environment - School of Geology and Mining Engineering - University of Ngaound´er´e, P.O. Box 115 - Meiganga - Cameroon , François, Ngapgue Laboratory of Industrial and Systems Engineering Environment (LISIE) - Department of Civil Engineering - Fotso Victor Institute of Technology - Dschang School of Science and Technology - University of Dschang, P.O. Box 134 - Bandjoun - Cameroon
Pages :
20
From page :
1
To page :
20
Abstract :
This work proposes a model that takes into account the anisotropy of material with its inhomogeneity and geometrical and material nonlinearities. According to Newton's second law, the investigations were carried out on the simultaneous effects of mechanical load and thermal treatment on the Tournemire argillite material. The finite difference method was used for the numerical resolution of the problem by the MATLAB 2015a software in order to determine the peak stress and strain of argillite as a function of material nonlinearity and demonstrated the inhomogeneity parameter Ω. The critical temperature from which the material damage was pronounced is 500°C. Indeed, above this temperature, the loss of rigidity of argillite reduced significantly the mechanical performance of this rock. Therefore, after 2.9 min, the stress reduction in X or Y direction was 75.5% with a peak stress value of 2500 MPa, whereas in Z direction, the stress reduction was 74.1% with a peak stress value of 1998 MPa. Meanwhile, knowing that the material inhomogeneity was between 2995 and 3256.010, there was an increase in peak stress of about 75%. However, the influence of the material nonlinearity was almost negligible. Thus, the geometrical nonlinearity allows having the maximal constant strain of about 1.25 in the direction of the applied dynamic mechanical force.
Keywords :
Modeling , Numerical Analysis , 3D of Anisotropic , Nonlinear Mechanical Behavior , Tournemire Argillite , High Temperatures , Dynamic Loading
Journal title :
The Scientific World Journal
Serial Year :
2020
Full Text URL :
Record number :
2615812
Link To Document :
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