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Field
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designing for the complete product life-cycle. Topics in parametric design and design optimization using Finite Element Analysis (FEA), Computer-Aided Design (CAD), and Manufacturing (CAM) are introduced in
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failure analysis using advanced finite element models and simulation techniques. This is enabled by digital and sensor technologies such as artificial intelligence, computer vision, drones, and robotics
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-reviewed journals and presenting at professional conferences. • Demonstrate proficiency in experimental methods, and numerical/computer modeling and analysis, including areas such as finite element
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, especially in physics-based simulation, finite-element methods, high performance computing. • Hands-on experience in real-time simulation of rigid and soft body dynamics, including contact interactions
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-cycle fatigue. The research methods are based on both small-scale and full-scale experimental testing and on Finite Element Modelling. Are you motivated to take a step towards a doctorate and open
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impact. You have experience in dynamic analysis of aeroelastic structures, modelling of flexible structures (in MATLAB, Python or similar), and conducting Finite Element Analysis. You have excellent oral
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include the design and implementation of finite element multiscale models and machine learning algorithms, analyzing related experimental data, and collaborating with industrial collaborators to validate
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Principal Investigator (PI) or Co-Principal Investigator (Co-PI) on research studies. Perform non-linear, dynamic, finite element analysis (FEA) and design for various research studies involving low- to high
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methods (e.g., AFM, Nano-IR, STM, SECCM, SICM, SECM), advanced light and electron microscopy, materials synthesis (e.g., conductive metal-organic frameworks, 2D/hierarchical structures, nanoparticles
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for: The development of multi-scale models of polyelectrolyte gels using asymptotic methods. Numerically solving the models using, for example, the finite element method. Collaborating with experimental researchers