Modeling of failure wave propagation in impact compression of brittle materials (Glasses)

2012 ◽  
Vol 47 (2) ◽  
pp. 242-251 ◽  
Author(s):  
S. A. Medin ◽  
A. N. Parshikov
2000 ◽  
Vol 10 (PR9) ◽  
pp. Pr9-811-Pr9-816 ◽  
Author(s):  
O. A. Plekhov ◽  
D. N. Eremeev ◽  
O. B. Naimark

Author(s):  
Zhijia Zheng ◽  
Enzhi Wang ◽  
Xiaoli Liu ◽  
Zhuoping Duan ◽  
Liansheng Zhang ◽  
...  

AbstractIn order to make sense of the dynamic response of brittle materials under the certain range of impact strength, the numerical simulation for two kinds of representative ones glass and ceramic are conducted, in which the elastic micro-crack damage model is used. The plane impact experiments of ceramic and glass are summarized, which are used to compare with the simulation results. The simulation results show that the dynamic responses of brittle materials, failure wave and the plastic-like response appeared in glass and ceramic respectively are depended on their micro-cracks distribution in meso-scale. And moreover, both of failure wave and the plastic-like response are controlled by the same mechanism, and the different phenomena are just influenced by the size and distribution of the micro-cracks.


2012 ◽  
Vol 446-449 ◽  
pp. 3718-3721
Author(s):  
Guo Wen Yao ◽  
Zheng Jie Zhou ◽  
Xiao Wei Feng

Author(s):  
Q. Gomez ◽  
I. R. Ionescu

This study explores the interplay between wave propagation and damage in brittle materials. The damage models, based on micro-mechanical fracture dynamics, capture any possible unstable growth of micro-cracks, introducing a macroscopic loss of stability. After stating the non-dimensional mathematical problem describing the wave propagation with damage, we introduce a non-dimensional number, called the microscopic evolution index, which links the micro and macro scales and discriminates the microscopic scale behaviour. For large values of microscopic evolution index, corresponding to a microscopic quasi-static process coupled with a macroscopic dynamic one, the macroscopic dynamic system could lose its hyperbolicity or become very stiff and generate shock waves. A semi-analytical solution to the one-dimensional wave propagation problem with damage, which could be very useful in the accuracy evaluation of the numerical schemes, was constructed. Concerning the asymptotic behaviour of the dynamic exact solution on the microscopic evolution index (or on the strain rate), an important strain rate sensitivity was found: the pulse loses its amplitude for decreasing strain rate and, starting with a critical value, the micro-scale model is rate independent. A possible regularization technique to smooth the shock waves at low and moderate strain rates is discussed. Finally, some numerical results analyse the role played by the the friction on the micro-cracks in the damage modelling of blast wave propagation. This article is part of the theme issue ‘Fracture dynamics of solid materials: from particles to the globe’.


2009 ◽  
Vol 106 (9) ◽  
pp. 093521 ◽  
Author(s):  
Sergey L. Lopatnikov ◽  
Bazle A. Gama ◽  
Travis A. Bogetti ◽  
John W. Gillespie

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