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Zhurnal Tekhnicheskoi Fiziki, 2023 Volume 93, Issue 11, Pages 1580–1588 (Mi jtf7124)

Physical science of materials

The mechanical response of pre-strained [100] aluminium single crystals under plane impact

G. V. Garkushinab, A. S. Savinykhab, S. V. Razorenovba, D. Yu. Rasposienkoc, I. G. Brodovac

a Joint Institute for High Temperatures, Russian Academy of Sciences, Moscow, Russia
b Federal Research Center of Problems of Chemical Physics and Medicinal Chemistry, Russian Academy of Sciences, Chernogolovka, Moscow region, Russia
c Institute of Metal Physics, Ural Branch of the Russian Academy of Sciences, Yekaterinburg, Russia

Abstract: New data have been obtained on the resistance to high-strain rate and fracture of a [100] aluminum single crystal under plane impact loading. The evolution of the elastoplastic compression wave, the Hugoniot elastic limit, and the spall strength of samples in the states before and after pre-starined of 0.6%, 5.5%, and 10.5% were measured. Pre-strain was carried out by compression on a hydraulic press. Shock loading was carried out on an air gun with simultaneous recording of wave profiles $u_{fs}(t)$ using a VISAR laser interferometer. The maximum shock compression pressure did not exceed 4 GPa. It was found that pre-strain by 0.6% and the associated change in the defectiveness of the structure, changes the kinetics of deformation and reduces the value of the Hugoniout elastic limit. Increase in the amount of pre-strain to 5.5% and 10.5% leads to an insignificant increase in the Hugoniout elastic limit relative to the samples without deformation. The compression rate in a plastic shock wave does not depend on the state of single crystals. Pre-strain does not affect the spall strength. Based on the results of measurements, dependences of decay elastic precursor on the thickness of the samples and rate dependences of the spall strength were plotted in the range of 10$^5$–10$^6$ s$^{-1}$.

Keywords: shock waves, structural defects, decay of elastic precursor, spall strength, wave profiles.

Received: 17.07.2023
Revised: 23.08.2023
Accepted: 03.09.2023

DOI: 10.61011/JTF.2023.11.56489.181-23



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