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charles.majkrzak@nist.gov 301.975.5251 Description Research focuses on structural properties and magnetic ordering in magnetic semiconductor, transition metal-, transition-metal oxide and/or rare-earth thin-film
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VALIDATED IN CLINICAL SETTINGS. To develop the following tasks: Development of a predictive model based on finite element simulations of vertebral metastasis. Simulation of different configurations
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The successful candidate will hold a PhD in applied mathematics, and will have knowledge of PDE discretization methods such as finite elements, finite volumes, etc. Practical knowledge of at least one programming
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of the fabricated fibers within optical networks. - Design of innovative hollow-core fiber structures using the finite element method. - Fabrication of specific optical fibers on a fiber drawing tower. - Linear
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, electron microscopy, ultrasonic methods, optical spectroscopies, pump-probe techniques). - Proven experience in modeling planetary internal structure and dynamics, using thermodynamic, finite element, or
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and specialist in the areas of composite materials, structural mechanics, optimisation and finite element analysis. Apart from computational expertise, the role holder will also be comfortable in
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the Fourier Modal Method (FMM), Rigorous Coupled-Wave Analysis (RCWA), and the Finite Element Method (FEM). A numerical code will also be written to establish the correspondence between the reflection
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of custom written codes and the use of commercial finite element software and user subroutines that will deliver novel solutions for virtual manufacturing methods. The appointment will be at Research
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, research, and outreach elements. Direct line management will include the two project bibliographers and any other project staff appointed into Research Collections (e.g. Fellows, Research Assistants
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colleagues to understand the stress distribution at the bone-implant interface through finite element analysis. Work collaboratively with other colleagues to validate finite element models based on in situ