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      • Teilprojekt P10 – Configurational Fracture/Surface Mechanics
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      • 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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      • Teilprojekt P12 – Postdoctoral Project: Quantum-to-Continuum Model of Thermoset Fracture
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  5. Material modelling of sheet-layered lamination stacks

Material modelling of sheet-layered lamination stacks

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      • Reduced order modelling of non-linear gyroscopic systems in ALE formulation with frictional contact
      • Material modelling of sheet-layered lamination stacks
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Material modelling of sheet-layered lamination stacks

Material modelling of sheet-layered lamination stacks

(Own Funds)

Overall project:
Project leader: Kai Willner
Project members: Maximilian Volkan Baloglu
Start date: 1. January 2015
End date:
Acronym:
Funding source:
URL:

Abstract

The numerical simulation of sheet-layered lamination stacks, which can be found in electric motors and transformers, is a challenging task in structural mechanics due to the layout of these components.  Depending on the manufacturing process, these sheets are either in frictional contact to each other or are linked together with the help of a bonding varnish. Especially the interlayer between individual sheets and their interaction have a strong influence on the structure and may be responsible for a nonlinear deformation behavior. In the context of performance and computational effort, it is desirable to avoid a full Finite-Element simulation incorporating every layer such that homogenization techniques are used in this project to derive a sophisticated surrogate material model, which takes the special micro-structure of these lamination stacks into account.

Publications

  • Baloglu MV., Willner K.:
    Material modelling of a sheet-layered lamination stack by homogenization
    In: Proceedings in Applied Mathematics and Mechanics 16 (2016), p. 509 - 510
    ISSN: 1617-7061
    DOI: 10.1002/pamm.201610243
    URL: http://onlinelibrary.wiley.com/doi/10.1002/pamm.201610243/epdf
  • Baloglu MV., Willner K.:
    Numerical homogenization and simulation of a lamination stack
    Electric Drives Production Conference (EDPC), 2016 6th International (Nürnberg, 30. November 2016 - 1. December 2016)
    In: IEEE (ed.): 2016 6th International Electric Drives Production Conference (EDPC) 2016
    DOI: 10.1109/EDPC.2016.7851316
    URL: http://ieeexplore.ieee.org/document/7851316/
  • Baloglu MV., Willner K.:
    Determination of material parameters for a sheet‐layered lamination stack
    In: Proceedings in Applied Mathematics and Mechanics 17 (2017), p. 393-394
    ISSN: 1617-7061
    DOI: 10.1002/pamm.201710166
    URL: https://onlinelibrary.wiley.com/doi/abs/10.1002/pamm.201710166
  • Baloglu MV., Willner K.:
    Influence of the Constitutive Contact Law on the Anisotropic Material Parameters of Sheet-Layered Lamination Stacks
    2018 8th International Electric Drives Production Conference (EDPC) (Schweinfurt, 4. December 2018 - 5. December 2018)
    In: IEEE (ed.): 2018 8th International Electric Drives Production Conference (EDPC) 2018
    DOI: 10.1109/EDPC.2018.8658276
    URL: https://ieeexplore.ieee.org/document/8658276
  • Baloglu MV., Ziegler M., Franke J., Willner K.:
    Determination of equivalent transversely isotropic material parameters for sheet-layered lamination stacks
    In: Mechanical Systems and Signal Processing 145 (2020), Article No.: 106915
    ISSN: 0888-3270
    DOI: 10.1016/j.ymssp.2020.106915

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

Egerlandstrasse 5
91058 Erlangen
Germany
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