Skip to main navigation Skip to search Skip to main content

Poro-viscoelastic material parameter identification of brain tissue-mimicking hydrogels

  • MP Kainz
  • , A Greiner
  • , J Hinrichsen
  • , Dagmar Kolb
  • , E Comellas
  • , P Steinmann
  • , S Budday
  • , M Terzano
  • , GA Holzapfel

Research output: Contribution to journalResearch article

21 Citations (Web of Science)

Abstract

Understanding and characterizing the mechanical and structural properties of brain tissue is essential for developing and calibrating reliable material models. Based on the Theory of Porous Media, a novel nonlinear poro-viscoelastic computational model was recently proposed to describe the mechanical response of the tissue under different loading conditions. The model contains parameters related to the time-dependent behavior arising from both the viscoelastic relaxation of the solid matrix and its interaction with the fluid phase. This study focuses on the characterization of these parameters through indentation experiments on a tailor-made polyvinyl alcohol-based hydrogel mimicking brain tissue. The material behavior is adjusted to ex vivo porcine brain tissue. An inverse parameter identification scheme using a trust region reflective algorithm is introduced and applied to match experimental data obtained from the indentation with the proposed computational model. By minimizing the error between experimental values and finite element simulation results, the optimal constitutive model parameters of the brain tissue-mimicking hydrogel are extracted. Finally, the model is validated using the derived material parameters in a finite element simulation.

Original languageEnglish
Article number1143304
Pages (from-to)1143304
Number of pages14
JournalFrontiers in Bioengineering and Biotechnology
Volume11
DOIs
Publication statusPublished - 10 Apr 2023

Branches of science

  • 106 Biology

Research Fields

  • Metabolism and Circulation

Fingerprint

Dive into the research topics of 'Poro-viscoelastic material parameter identification of brain tissue-mimicking hydrogels'. Together they form a unique fingerprint.

Cite this