Anisotropic shock responses of nanoporous Al by molecular dynamics simulations

PLoS One. 2021 Mar 17;16(3):e0247172. doi: 10.1371/journal.pone.0247172. eCollection 2021.

Abstract

Mechanical responses of nanoporous aluminum samples under shock in different crystallographic orientations (<100>, <111>, <110>, <112> and <130>) are investigated by molecular dynamics simulations. The shape evolution of void during collapse is found to have no relationship with the shock orientation. Void collapse rate and dislocation activities at the void surface are found to strongly dependent on the shock orientation. For a relatively weaker shock, void collapses fastest when shocked along the <100> orientation; while for a relatively stronger shock, void collapses fastest in the <110> orientation. The dislocation nucleation position is strongly depended on the impacting crystallographic orientation. A theory based on resolved shear stress is used to explain which slip planes the earliest-appearing dislocations prefer to nucleate on under different shock orientations.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Aluminum / chemistry*
  • Anisotropy
  • Crystallization / methods
  • Crystallography / methods
  • Mechanical Phenomena
  • Metal Nanoparticles / chemistry*
  • Molecular Dynamics Simulation
  • Nanopores
  • Stress, Mechanical*

Substances

  • Aluminum

Grants and funding

This study was funded in the form of grants by the National Natural Science Foundation of China (Grant Nos. 11972147 and11932006) awarded to XT, (Grant No. 11772068) awarded to MX, and (Grant No. 51739007) awarded to JC. This study was also funded in the form of a grant by the Fundamental Research Funds for the Central Universities (Grant No. 2018B57914) awarded to all authors.