Accounting for the thickness effect in dynamic spherical indentation of a viscoelastic layer: Application to non-destructive testing of articular cartilage
I. Argatov, A. U. Daniels, G. Mishuris, S.Ronken, D. Wirz

TL;DR
This paper develops a model to account for thickness effects in dynamic spherical indentation tests of viscoelastic tissues like cartilage, aiding non-destructive assessment of tissue degeneration.
Contribution
It introduces an asymptotic modeling approach to interpret dynamic spherical indentation data considering thickness effects, improving cartilage degeneration diagnostics.
Findings
Defined incomplete storage modulus for flat-ended indentation.
Introduced incomplete loss angle based on dynamic stiffness and displacement.
Analyzed the influence of geometrical and viscoelastic parameters on indentation results.
Abstract
In recent years, dynamic indentation tests have been shown to be useful both in identification of mechanical properties of biological tissues (such as articular cartilage) and assessing their viability. We consider frictionless flat-ended and spherical sinusoidally-driven indentation tests utilizing displacement-controlled loading protocol. Articular cartilage tissue is modeled as a viscoelastic material with a time-independent Poisson's ratio. We study the dynamic indentation stiffness with the aim of formulating criteria for evaluation the quality of articular cartilage in order to be able to discriminate its degenerative state. In particular, evaluating the dynamic indentation stiffness at the turning point of the flat-ended indentation test, we introduce the so-called incomplete storage modulus. Considering the time difference between the time moments when the dynamic stiffness…
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