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  • Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature

    Jürgen Albiez

    Band 14 von Schriftenreihe Kontinuumsmechanik im Maschinenbau
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    A single-crystal plasticity model as well as a gradient crystal plasticity model are used to describe the creep behavior of directionally solidified NiAl based eutectic alloys. To consider the transition from theoretical to bulk strength, a hardening model was introduced to describe the strength of the reinforcing phases. Moreover, to account for microstructural changes due to material flux, a coupled diffusional-mechanical simulation model was introduced.

    Umfang: X, 197 S.

    Preis: €43.00 | £40.00 | $76.00

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    Albiez, J. 2019. Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature. Karlsruhe: KIT Scientific Publishing. DOI: https://doi.org/10.5445/KSP/1000092297
    Albiez, J., 2019. Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature. Karlsruhe: KIT Scientific Publishing. DOI: https://doi.org/10.5445/KSP/1000092297
    Albiez, J. Finite Element Simulation of Dislocation Based Plasticity and Diffusion in Multiphase Materials at High Temperature. KIT Scientific Publishing, 2019. DOI: https://doi.org/10.5445/KSP/1000092297
    Albiez, J. (2019). Finite element simulation of dislocation based plasticity and diffusion in multiphase materials at high temperature. Karlsruhe: KIT Scientific Publishing. DOI: https://doi.org/10.5445/KSP/1000092297
    Albiez, Jürgen. 2019. Finite Element Simulation of Dislocation Based Plasticity and Diffusion in Multiphase Materials at High Temperature. Karlsruhe: KIT Scientific Publishing. DOI: https://doi.org/10.5445/KSP/1000092297




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    Weitere Informationen

    Veröffentlicht am 22. Mai 2019

    Sprache

    Englisch

    Seitenanzahl:

    222

    ISBN
    Paperback 978-3-7315-0918-9

    DOI
    https://doi.org/10.5445/KSP/1000092297