Abstract
The current work presents Taylor impact experiments interrogating the effect of dynamic, high-pressure loading on polytetrafluoroethylene (PTFE). In particular, X-ray microtomography has been used to characterise the damage imparted to cylindrical samples due to impact at different velocities. Distinct regions of deformation are present and controlled by fracture within the polymer, with the extent of the deformed region and increasing propagation of fractures from the impact face showing a clear trend with increasing impact velocity. A two-phase rate sensitive strength model is implemented in the CTH hydrocode and used for simulation of the problem. The high-pressure phase transition of PTFE into Phase III within the crystalline domains from the polymer at normal conditions is managed by suitable phase transition kinetics within the model. The experimental observations are discussed with respect to the multi-phase model hydrocode predictions of the shock response from Taylor impact simulations. The damage and its progress are shown to correlate well with the onset of the phase transition and its evolution following the impact velocity increase. © Published under licence by IOP Publishing Ltd.
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CITATION STYLE
Resnyansky, A. D., McDonald, S. A., Withers, P. J., Bourne, N. K., Millett, J. C. F., Brown, E. N., & Rae, P. J. (2014). Three-dimensional characterisation and simulation of deformation and damage during Taylor impact in PTFE. In Journal of Physics: Conference Series (Vol. 500). Institute of Physics Publishing. https://doi.org/10.1088/1742-6596/500/18/182035
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