Publication: Damage prediction via nonlinear ultrasound: A micro-mechanical approach.
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Identifiers
Date
2018-10-20
Authors
Melchor, J
Parnell, W J
Bochud, N
Peralta, L
Rus, G
Advisors
Journal Title
Journal ISSN
Volume Title
Publisher
Elsevier BV
Abstract
Nonlinear constitutive mechanical parameters, predominantly governed by micro-damage, interact with ultrasound to generate harmonics that are not present in the excitation. In principle, this phenomenon therefore permits early stage damage identification if these higher harmonics can be measured. To understand the underlying mechanism of harmonic generation, a nonlinear micro-mechanical approach is proposed here, that relates a distribution of clapping micro-cracks to the measurable macroscopic acoustic nonlinearity by representing the crack as an effective inclusion with Landau type nonlinearity at small strain. The clapping mechanism inside each micro-crack is represented by a Taylor expansion of the stress-strain constitutive law, whereby nonlinear terms arise. The micro-cracks are considered distributed in a macroscopic medium and the effective nonlinearity parameter associated with compression is determined via a nonlinear Mori-Tanaka homogenization theory. Relationships are thus obtained between the measurable acoustic nonlinearity and the Landau-type nonlinearity. The framework developed therefore yields links with nonlinear ultrasound, where the dependency of measurable acoustic nonlinearity is, under certain hypotheses, formally related to the density of micro-cracks and the bulk material properties.
Description
MeSH Terms
Ultrasonics
Nonlinear Dynamics
Nonlinear Dynamics
DeCS Terms
Dinámicas no lineales
Ultrasonido
Ultrasonido
CIE Terms
Keywords
Homogenization, Micro-cracks, Non-destructive evaluation, Nonlinear acoustics, Nonlinear elasticity, Ultrasound
Citation
Melchor J, Parnell WJ, Bochud N, Peralta L, Rus G. Damage prediction via nonlinear ultrasound: A micro-mechanical approach. Ultrasonics. 2019 Mar;93:145-155