Passer à la navigation principale Passer à la recherche Passer au contenu principal

Shock-induced consolidation and spallation of Cu nanopowders

  • L. Huang
  • , W. Z. Han
  • , Q. An
  • , W. A. Goddard
  • , S. N. Luo
  • Harbin Institute of Technology
  • MST-8, Los Alamos National Laboratory
  • California Institute of Technology

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

A useful synthesis technique, shock synthesis of bulk nanomaterials from nanopowders, is explored here with molecular dynamics simulations. We choose nanoporous Cu (∼11 nm in grain size and 6 porosity) as a representative system, and perform consolidation and spallation simulations. The spallation simulations characterize the consolidated nanopowders in terms of spall strength and damage mechanisms. The impactor is full density Cu, and the impact velocity (u i) ranges from 0.2 to 2 km s -1. We present detailed analysis of consolidation and spallation processes, including atomic-level structure and wave propagation features. The critical values of u i are identified for the onset plasticity at the contact points (0.2 km s -1) and complete void collapse (0.5 km s -1). Void collapse involves dislocations, lattice rotation, shearing/friction, heating, and microkinetic energy. Plasticity initiated at the contact points and its propagation play a key role in void collapse at low u i, while the pronounced, grain-wise deformation may contribute as well at high u i. The grain structure gives rise to nonplanar shock response at nanometer scales. Bulk nanomaterials from ultrafine nanopowders (∼10 nm) can be synthesized with shock waves. For spallation, grain boundary (GB) or GB triple junction damage prevails, while we also observe intragranular voids as a result of GB plasticity.

langue originaleAnglais
Numéro d'article013508
journalJournal of Applied Physics
Volume111
Numéro de publication1
Les DOIs
étatPublié - 1 janv. 2012
Modification externeOui

Empreinte digitale

Examiner les sujets de recherche de « Shock-induced consolidation and spallation of Cu nanopowders ». Ensemble, ils forment une empreinte digitale unique.

Contient cette citation