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- W4382657918 abstract "Propagation of acoustic mechanical waves and other more energetic excitations in amorphous solids is strongly dominated by anharmonicity and intricate scattering processes, leading to strong damping and attenuation phenomena. We shall start with a mathematical description based on the hydrodynamic or effective field theory framework and then build a more microscopic first-principles derivation of damping in amorphous solids based on nonaffine atomic motions. This derivation will show that the often-observed Rayleigh-type damping of acoustic transverse waves in amorphous solids, e.g., glasses, is rooted in the nonaffine nature of microscopic motions. We shall also consider important concepts of quasiparticle kinetic theory (e.g., Ioffe-Regel crossover) in connection with the crossover from ballistic propagation to diffusive propagation of vibrational excitations. At variance with previous chapters, in this chapter, Cartesian components will be denoted with Latin indices instead of Greek indices. Furthermore, the microscopic friction coefficient will be denoted with the Greek letter ζ, instead of ν." @default.
- W4382657918 created "2023-07-01" @default.
- W4382657918 creator A5087484656 @default.
- W4382657918 date "2023-01-01" @default.
- W4382657918 modified "2023-10-16" @default.
- W4382657918 title "Wave Propagation and Damping" @default.
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- W4382657918 doi "https://doi.org/10.1007/978-3-031-24706-4_4" @default.
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