DocumentCode :
536721
Title :
Cellular Automata to Simulate Split of Quasi-Brittle Materials
Author :
He Junlian ; Li Mingtian
Author_Institution :
Dept. of Civil Eng., Shandong Jiaotong Univ., Jinan, China
fYear :
2010
fDate :
7-9 Nov. 2010
Firstpage :
1
Lastpage :
4
Abstract :
A cellular automata method is an efficient method that can simulate the process of self-organization of the complex system by constructing some simple local rules, which is fit to study material failure. In order to make full use of the advantages of cellular automata such as its intrinsic parallelism, localization and so on cellular automata model were presented to study the failure process of the quasi-brittle materials. The quasi-brittle materials can be divided into cell elements that are connected with beam elements. Displacements components are taken as the basic state. Based on the equilibrium equations and deformation equations local rules can be attained, which can update the states of the cells. Maximum tensile strain criterion and Mohr-Coulomb criterion are applied to judge the beginning of tensile failure and shearing failure. And based on damage mechanics deformation and strength properties of the damaged cell elements are estimated. Based on the cellular automata model the failure process of the quasi-brittle materials is studied. Split test is usually used to test the tensile strength of the quasi-brittle materials such as concrete and rock indirectly because of the difficulty of direct tension test. In order to understand the failure mechanisms of split test theoretical analysis, cellular automata simulation and experiments are used to analyze the split process. The research results show that split failure of the quasi-brittle materials is caused by tensile failure and cellular automata can simulate the split process of the quasi-brittle materials.
Keywords :
beams (structures); brittleness; cellular automata; failure (mechanical); mechanical strength; shear deformation; tensile strength; Mohr-Coulomb criterion; beam elements; cellular automata; complex system self-organization; deformation equations; intrinsic parallelism; maximum tensile strain criterion; quasi brittle material; shearing failure; split process; strength properties; tensile failure; Automata; Computational modeling; Concrete; Lattices; Load modeling; Stress;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
E-Product E-Service and E-Entertainment (ICEEE), 2010 International Conference on
Conference_Location :
Henan
Print_ISBN :
978-1-4244-7159-1
Type :
conf
DOI :
10.1109/ICEEE.2010.5660489
Filename :
5660489
Link To Document :
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