Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published January 1, 2011 | Published
Journal Article Open

Dynamic response of phenolic resin and its carbon-nanotube composites to shock wave loading

Abstract

We investigate with nonreactive molecular dynamics simulations the dynamic response of phenolic resin and its carbon-nanotube (CNT) composites to shock wave compression. For phenolic resin, our simulations yield shock states in agreement with experiments on similar polymers except the "phase change" observed in experiments, indicating that such phase change is chemical in nature. The elastic–plastic transition is characterized by shear stress relaxation and atomic-level slip, and phenolic resin shows strong strain hardening. Shock loading of the CNT-resin composites is applied parallel or perpendicular to the CNT axis, and the composites demonstrate anisotropy in wave propagation, yield and CNT deformation. The CNTs induce stress concentrations in the composites and may increase the yield strength. Our simulations suggest that the bulk shock response of the composites depends on the volume fraction, length ratio, impact cross-section, and geometry of the CNT components; the short CNTs in current simulations have insignificant effect on the bulk response of resin polymer.

Additional Information

© 2011 American Institute of Physics. Received 5 October 2010; accepted 8 November 2010; published online 4 January 2011. We have benefited from J. W. Lawson, C. Wei NASA Ames Research Center, J. Li UPenn, and C. Brandl LANL in various ways. This work was partly supported by the Advanced Simulation and Computation ASC Program at LANL. LANL is operated by Los Alamos National Security, LLC for the U.S. Department of Energy under Contract No. DE-AC52-06NA25396. T.G.D. was supported by the NASA Small Business Innovation Research SBIR Grant under Contract No. NNX10CC69P.

Attached Files

Published - Arman2011p12972J_Appl_Phys.pdf

Files

Arman2011p12972J_Appl_Phys.pdf
Files (1.7 MB)
Name Size Download all
md5:265e718ebe91b01282d423657c842a5b
1.7 MB Preview Download

Additional details

Created:
August 19, 2023
Modified:
October 23, 2023