Internal Length Gradient (ILG) Material Mechanics Across Scales & Disciplines
Elias C. Aifantis

TL;DR
This paper extends the Internal Length Gradient (ILG) approach to incorporate stochasticity, multiphysics couplings, and multiscale modeling, providing new insights into size effects and stability in advanced materials and biological tissues.
Contribution
It introduces a comprehensive framework combining theory, numerics, experiments, and novel thermodynamic and multiscale methods for analyzing complex material behaviors across disciplines.
Findings
Size-dependent stability diagrams for multiphysics systems
Interpretation of serrated stress-strain curves via gradient-stochastic models
Application of Tsallis thermodynamics and EFM for multiscale analysis
Abstract
A combined theoretical/numerical/experimental program is outlined for extending the ILG approach to consider time lags, stochasticity and multiphysics couplings. Through this extension it is possible to discuss the interplay between deformation internal lengths (ILs) and ILs induced by thermal, diffusion or electric field gradients. Size-dependent multiphysics stability diagrams are obtained, and size-dependent serrated stress-strain curves are interpreted through combined gradient-stochastic models. When differential equations are not available for describing material behavior, a Tsallis non-extensive thermodynamic formulation is employed to characterize statistical properties. A novel multiscale coarse graining technique, the equation free method (EFM), is suggested for bridging length scales, and the same is done for determining ILs through novel laboratory tests by employing…
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Taxonomy
TopicsMicrostructure and mechanical properties · Nonlocal and gradient elasticity in micro/nano structures · Force Microscopy Techniques and Applications
