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Temperature-dependent modulus of resilience in metallic solids - Calculated from strain-electron-phonon interactions
Journal article   Peer reviewed

Temperature-dependent modulus of resilience in metallic solids - Calculated from strain-electron-phonon interactions

Ping Wu and Tanya Wu
Journal of alloys and compounds, Vol.705, pp.269-272
25/05/2017

Abstract

Chemistry Chemistry, Physical Materials Science Materials Science, Multidisciplinary Metallurgy & Metallurgical Engineering Physical Sciences Science & Technology Technology
Modulus of resilience (R) in metallic solids is calculated based on Helmholtz energy analysis, free electron gas and acoustic phonon approximations: R = C + 2200(-1)(T-T-D) + 2200(-2)(T-T-C)(2), where T, TD, Tc is respectively the test, Debye, and Curie temperature, C is a material-specific constant. The model reproduces well experimental data in commercial titanium-, copper-, and four steels solids, and evaluates HfB2 where experimental data are missing. It further suggests that only similar to 0.1% of all the thermal free electrons/acoustic phonons are mechanically activated during the tensile test, which provides important insights on strain-electron-phonon coupling in solids. (C) 2017 Elsevier B. V. All rights reserved.

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