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Candidates should demonstrate experience and/or knowledge in one or more of the following areas: Numerical modelling of materials and structures using the Finite Element Method (FEM). Simulation of damage and
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, electrical machines, power electronics, dielectric/insulation materials, or related areas would be advantageous. Knowledge of numerical/FEM simulation tools such as COMSOL Multiphysics and MATLAB. Programming
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resistance of ceramic shell moulds used in investment casting. Advanced in situ experiments combined with multi-scale Finite Element Method (FEM) modelling will be employed to identify the key stress and
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numerical model using Abaqus Finite Element Modelling (FEM) software, validated through comparison with the centrifuge modelling data. Using the validated numerical model, conduct a comprehensive parametric
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in-house design. Strong ability to use simulation software tools including finite difference time domain methods (FDTD), eigenmode expansion methods (EME), or finite-element methods (FEM), using tools
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relevant technical topics, comprising a minimum of 30 ECTS. Conduct coupled CFD–FEM (e.g. STARCCM-ABAQUS) simulation of wave-induced motions, connector loads, mooring loads and structural deformation
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BAM Bundesanstalt für Materialforschung und -prüfung | Berlin, Berlin | Germany | about 2 months ago
the development of numerical methods for modelling wave propagation and structural dynamics (e.g. FEM, semi-analytical methods) Experience in one or more of the following areas is desirable: wave propagation in
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report the skills that are relevant for the PhD positions you are applying): o continuum mechanics for large deformations o numerical mechanics and analysis (FEM simulations, meshing, etc.) o programming
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., Maxwell solvers, FDTD/FEM, coupled-mode theory, or PDE/ODE solvers) Interest in electromagnetic wave propagation, photonics, or semiconductor physics Experience with scientific programming and data analysis