Local mechanical behavior mapping of a biopolymer blend using nanoindentation, finite element computation, and simplex optimization strategy

Sofiane Guessasma, Weihong Zhang, Jihong Zhu

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

In this study, we suggest a simple scheme to derive interfacial behavior using combination of nanoindentation and finite element computation. The starting point is the experimental generation of a rectangular grid composed of 32 indentations to measure the exact variation of stiffness across the interface of a bio-based composite. A finite element simulation of nanoindentation is implemented based on elasto-plastic material model. An optimization strategy is used to identify the behavior of all phases by matching predicted results to observed mechanical response. Results show that extent of interphase layer has a typical dimension of 8.0 ± 4.9 µm. The optimization strategy based on simplex proves to be efficient to derive the elasto-plastic behavior of the blend across the interface with a residual value of less than 30 µN. The identification procedure demonstrates that the extent of the interfacial region depends on the measured physical quantity. The contrast across the interface for both Young's and the tangent moduli appear to be more effective than the contrast given by the yield stress. Identified Young's moduli for zein, starch, and interfacial zone are 4.78 ± 0.27, 4.13 ± 0.19, and 3.91 ± 0.17 GPa. Plasticity parameter represented by tangent modulus varies in the same order as 1238 ± 120, 847 ± 108, and 976 ± 94 MPa, respectively.

Original languageEnglish
Article number44891
JournalJournal of Applied Polymer Science
Volume134
Issue number24
DOIs
StatePublished - 20 Jun 2017

Keywords

  • biocomposite
  • finite element computation
  • interface
  • microstructural analysis
  • nanoindentation
  • simplex-based identification

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