Complex fields in heterogeneous materials under shock: modeling, simulation and analysis

Ai Guo Xu*, Guang Cai Zhang, Yang Jun Ying, Cheng Wang

*Corresponding author for this work

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Abstract

In this mini-review we summarize the progress of modeling, simulation and analysis of shock responses of heterogeneous materials in our group in recent years. The basic methodology is as below. We first decompose the problem into different scales. Construct/ Choose a model according to the scale and main mechanisms working at that scale. Perform numerical simulations using the relatively mature schemes. The physical information is transferred between neighboring scales in such a way: The statistical information of results in smaller scale contributes to establishing the constitutive equation in larger one. Except for the microscopic Molecular Dynamics (MD) model, both the mesoscopic and macroscopic models can be further classified into two categories, solidic and fluidic models, respectively. The basic ideas and key techniques of the MD, material point method and discrete Boltzmann method are briefly reviewed. Among various schemes used in analyzing the complex fields and structures, the morphological analysis and the home-built software, GISO, are briefly introduced. New observations are summarized for scales from the larger to the smaller.

Original languageEnglish
Article number650501
JournalScience China: Physics, Mechanics and Astronomy
Volume59
Issue number5
DOIs
Publication statusPublished - 1 May 2016

Keywords

  • complex fields
  • discrete Boltzmann model
  • heterogeneous material
  • material point method
  • molecular dynamics

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Xu, A. G., Zhang, G. C., Ying, Y. J., & Wang, C. (2016). Complex fields in heterogeneous materials under shock: modeling, simulation and analysis. Science China: Physics, Mechanics and Astronomy, 59(5), Article 650501. https://doi.org/10.1007/s11433-016-5801-0