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      • Modeling and computation of growth in soft biological matter
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      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • A coupled MD-FE simulation method accounting for interphases in nanoparticle filled thermoplastics.
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      • Teilprojekt P10 – Configurational Fracture/Surface Mechanics
      • Teilprojekt P11 – Fracture Control by Material Optimization
      • Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro
      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
      • Teilprojekt P6 – Fracture in Thermoplastics: Discrete-to-Continuum
      • Teilprojekt P5 – Compressive Failure in Porous Materials
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      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
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      • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
      • Fractures across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics/ Skalenübergreifende Bruchvorgänge: Integration von Mechanik, Materialwissenschaften, Mathematik, Chemie und Physik
      • Bridging scales – from Quantum Mechanics to Continuum Mechanics. A Finite Element approach.
      • Teilprojekt P12 – Postdoctoral Project: Quantum-to-Continuum Model of Thermoset Fracture
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  4. Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro

Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro

In page navigation: Research
  • Biomechanics
  • Contact mechanics
  • Material Mechanics
  • Uncertainty Quantification
  • Multiscale mechanics
    • BRAIn mechaNIcs ACross Scales: Linking microstructure, mechanics and pathology
    • Teilprojekt P6 - Fracture in Thermoplastics: Discrete-to-Continuum
    • Teilprojekt P10 - Configurational Fracture/Surface Mechanics
    • Teilprojekt P11 - Fracture Control by Material Optimization
    • Teilprojekt P8 - Fracture in Polymer Composites: Meso to Macro
    • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
    • Teilprojekt P5 - Compressive Failure in Porous Materials
    • Multi-scale, Multi-physics Modelling and Computation of magneto-sensitive POLYmeric materials
    • Multi-scale modeling of nano-structured polymeric materials: from chemistry to materials performance
    • Identifikation von Interphaseneigenschaften in Nanokompositen
    • Meso- and Macroscopic Modelling, Simulation and Numerical Homogenization of the Behaviour of Metallic Materials in Additive Manufacturing
    • Mesoscopic modelling and simulation of properties of additively manufactured metallic parts (C5)
    • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
    • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
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    • Fractures across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics/ Skalenübergreifende Bruchvorgänge: Integration von Mechanik, Materialwissenschaften, Mathematik, Chemie und Physik
    • Bridging scales - from Quantum Mechanics to Continuum Mechanics. A Finite Element approach.
    • Teilprojekt P12 - Postdoctoral Project: Quantum-to-Continuum Model of Thermoset Fracture
    • Mikroskalige Charakterisierungsmethoden zur Kalibrierung von Stoffgesetzen für Biomaterialien und Kunststoffe
    • Mikroskalige Charakterisierungsmethoden zur Kalibrierung von Stoffgesetzen für Biomaterialien und Kunststoffe
  • Process Simulation
  • Structural dynamics
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  • Other Projects

Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro

Teilprojekt P8 - Fracture in Polymer Composites: Meso to Macro

(Third Party Funds Group – Sub project)

Overall project: Fracture across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics (FRASCAL)
Project leader: Julia Mergheim, Dirk Zahn
Project members: Paras Kumar, Maurice Rohracker
Start date: 2. January 2019
End date: 30. June 2023
Acronym: GRK2423 - P8
Funding source: DFG / Graduiertenkolleg (GRK)
URL: https://www.frascal.research.fau.eu/home/research/p-8-fracture-in-polymer-composites-meso-to-macro/

Abstract

The mechanical properties and the fracture toughness of polymers can be increased by adding silica nanoparticles. This increase is mainly caused by the development of localized shear bands, initiated by the stress concentrations due to the silica particles. Other mechanisms responsible for the observed toughening are debonding of the particles and void growth in the matrix material. The particular mechanisms depend strongly on the structure and chemistry of the polymers and will be analysed for two classes of polymer-silica composites, with highly crosslinked thermosets or with biodegradable nestled fibres (cellulose, aramid) as matrix materials.

The aim of the project is to study the influence of different mesoscopic parameters, as particle volume fraction, on the macroscopic fracture properties of nanoparticle reinforced polymers.

Publications

  • Kumar P., Mergheim J.:
    Size Effects in Computational Homogenization of Polymer Nano-Composites
    In: Proceedings in Applied Mathematics & Mechanics 2021
    DOI: 10.1002/pamm.202000047
    URL: https://onlinelibrary.wiley.com/doi/abs/10.1002/pamm.202000047
  • Rohracker M., Kumar P., Mergheim J.:
    A comparative assessment of different adaptive spatial refinement strategies in phase-field fracture models for brittle fracture
    In: Forces in Mechanics 10 (2023), p. 100157
    ISSN: 2666-3597
    DOI: 10.1016/j.finmec.2022.100157
    URL: https://www.sciencedirect.com/science/article/pii/S2666359722000853

Institute of Applied Mechanics
Friedrich-Alexander-Universität Erlangen-Nürnberg

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