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department at TU/e for finite element-based deformable body simulations. Conduct research on mechanical contact processing models, integrating both physics-based numerical models and data-driven approaches
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of Ni#Al intermetallic-based superalloys. The project will focus on predicting thermal histories, residual stress development, and crack susceptibility during additive manufacturing. Using finite element
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advanced by the development of custom laser imaging methods for in situ spatial mapping of temperature, concentration of major and minor species, and volume fraction and size of particulates. Applications
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distribution in wire based additive manufacturing • Calibration and validation experiments for modelling • Temperature monitoring techniques • Finite element analysis method • Reviewing literature, planning and
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allowing elements to span across multiple CAD faces without explicitly modifying the geometry. However, these ideas have not yet been developed in high-order settings, where curved elements, geometric
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system an opportunistically attack human cells. In this respect mobile DNA elements (particularly transposons) appear key. We have developed a new genomic method to track genome rearrangements that occur
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generation electrochemical energy technologies through holistic views of fuel cells (especially ammonia fuel cells) and different kinds of batteries, including metal and metal ion (Li, Na, Ca etc
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simulations and finite element analysis, with high-heat flux electron beam experiments. The research will simulate and replicate steady, cyclic, and transient thermal loads to better understand PFM behaviour
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increased, a more rational understanding of the additions would advance the science for sustainable alloys and enhance metal recyclability. This research will bring about environmental and economic benefits
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methods to generate causal evidence on these issues. Your work will produce insights directly relevant to labour-market policy, family services, and social protection systems. This is an opportunity