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      • Modelling and simulation of nonlinear electro-thermo-visco-elastic EAPs(Electronic Electro-Active Polymers)
      • Modeling and computation of growth in soft biological matter
      • Teilprojekt P11 – Fracture Control by Material Optimization
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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.
      • Teilprojekt P5 – Compressive Failure in Porous Materials
      • Modelling and simulation of nonlinear electro-thermo-visco-elastic EAPs(Electronic Electro-Active Polymers)
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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
      • 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
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      • Novel Biopolymer Hydrogels for Understanding Complex Soft Tissue Biomechanics
      • Mesoscopic modelling and simulation of properties of additively manufactured metallic parts (C5)
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      • Multi-scale, Multi-physics Modelling and Computation of magneto-sensitive POLYmeric materials
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      • Multiscale modeling of nervous tissue: comprehensively linking microstructure, pathology, and mechanics
      • Multi-scale modeling of nano-structured polymeric materials: from chemistry to materials performance
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      • Teilprojekt P12 – Postdoctoral Project: Quantum-to-Continuum Model of Thermoset Fracture
      • Mikroskalige Charakterisierungsmethoden zur Kalibrierung von Stoffgesetzen für Biomaterialien und Kunststoffe
      • 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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      • Teilprojekt P11 – Fracture Control by Material Optimization
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      • Teilprojekt P8 – Fracture in Polymer Composites: Meso to Macro
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      • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
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      • Teilprojekt P11 – Fracture Control by Material Optimization
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      • Discrete and Continuous Methods for Modelling and Simulation of Polymeric Materials
      • Teilprojekt P10 – Configurational Fracture/Surface Mechanics
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  4. Teilprojekt P10 – Configurational Fracture/Surface Mechanics

Teilprojekt P10 – Configurational Fracture/Surface Mechanics

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
    • Fractures across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics/ Skalenübergreifende Bruchvorgänge: Integration von Mechanik, Materialwissenschaften, Mathematik, Chemie und Physik
    • 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
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Teilprojekt P10 – Configurational Fracture/Surface Mechanics

Teilprojekt P10 - Configurational Fracture/Surface Mechanics

(Third Party Funds Group – Sub project)

Overall project: Fracture across Scales: Integrating Mechanics, Materials Science, Mathematics, Chemistry, and Physics (FRASCAL)
Project leader: Paul Steinmann, Michael Stingl
Project members: Seyedehelmira Birang Oskouei, Marie Laurien
Start date: 2. January 2019
End date: 30. June 2023
Acronym: GRK2423 - P10
Funding source: DFG / Graduiertenkolleg (GRK)
URL: https://www.frascal.research.fau.eu/home/research/p-10-configurational-fracture-surface-mechanics/

Abstract

In a continuum the tendency of pre-existing cracks to propagate through the ambient material is assessed based on the established concept of configurational forces. In practise crack propagation is however prominently affected by the presence and properties of either surfaces and/or interfaces in the material. Here materials exposed to various surface treatments are mentioned, whereby effects of surface tension and crack extension can compete. Likewise, surface tension in inclusion-matrix interfaces can often not be neglected. In a continuum setting the energetics of surfaces/interfaces is captured by separate thermodynamic potentials. Surface potentials in general result in noticeable additions to configurational mechanics. This is particularly true in the realm of fracture mechanics, however its comprehensive theoretical/computational analysis is still lacking.

The project aims in a systematic account of the pertinent surface/interface thermodynamics within the framework of geometrically nonlinear configurational fracture mechanics. The focus is especially on a finite element treatment, i.e. the Material Force Method [6]. The computational consideration of thermodynamic potentials, such as the free energy, that are distributed within surfaces/interfaces is at the same time scientifically challenging and technologically relevant when cracks and their kinetics are studied.

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    Friedrich-Alexander-Universität Erlangen-Nürnberg

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