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Field
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-suited. By the end of the PhD, the candidate will have gained strong skills in experimental mechanics, test management, materials characterization, and numerical modeling, particularly finite element
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of mechanical and robotic systems •Ability to use finite element modelling and to simulate complex mechatronics •Ability to implement control and kinematics with hardware-in-the–loop •Background with relevant
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using both classical and finite element methods (FEM). Review detailed part or assembly definition prior to production release. Examine structural or material discrepancies and create associated
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experimental work as well as theoretical and finite element simulations. The position requires a strong aptitude in materials engineering, solid and fracture mechanics as well as 3D CAD and finite element
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6. Experience with finite element analysis and modeling 7. Experience qualifying aerospace products and processes; working knowledge of US Air Force policies and procedures 8. Ability to promote
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high-speed rotating equipment. Finite Element (FE) modeling/analysis. Expertise with 3D CAD modeling drafting, and product data management (PDM) systems. Proficiency with SolidWorks. Experience creating
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composite material response or material signal interactions using finite element, analytical or numerical approaches. • Experience with scientific data analysis programming languages such as or Python
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cyclic loading, varied surface conditions, and exposure to gaseous impurities, and advanced numerical modelling (Finite Element Analysis), this project aims to significantly enhance our understanding
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-mechanical processing. Some of these modeling tools include density functional theory (DFT), CALPHAD-based models, phase-field models, and finite-element models (FEM) to predict as-built microsegregation
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advanced mechanical design, component specification, tolerancing, drawing, procurement, and fabrication oversight of state-of-the-art scientific instrumentation. Conduct detailed finite element and thermal