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analysis and topology optimization to design medical implants that are: Lightweight yet mechanically robust. Optimized for stiffness, strength, and fatigue life. Tailored to each patient’s bone geometry and
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thermal resistance – potentially modifying the coupled electro-mechanical-fluid loading and causing fatigue and early failure. This PhD project will investigate how biofouling affects the hydrodynamic
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28 Oct 2025 Job Information Organisation/Company VSB - Technical University of Ostrava Research Field Physics » Acoustics Technology » Materials technology Technology » Transport technology
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and hard biofouling – marine organisms that increase drag, weight and thermal resistance – potentially modifying the coupled electro-mechanical-fluid loading and causing fatigue and early failure
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) position in Materials Engineering with focus on mechanistic study of biodegradation of additively manufactured Mg and Zn alloys under mechanical load PhD position - Ad Print4Life DC11 - code no. 2025/MO 3
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– 2025/MO 3 Commencement date: March 1st, 2026 Work location: Geesthacht Application deadline: December 31st, 2025 EU MSCA doctoral (PhD) position in Materials Engineering with focus on mechanistic study
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EU MSCA doctoral (PhD) position in Materials Engineering with focus on mechanistic study of biodegra
: December 31st, 2025 EU MSCA doctoral (PhD) position in Materials Engineering with focus on mechanistic study of biodegradation of additively manufactured Mg and Zn alloys under mechanical load. Host
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Chemistry and/or Polymer Materials Science, with a strong background in these areas. Applicants should also have good communication and writing skills in both French and English. The PhD project will be
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of the Biomaterials and Tissues of the Future. https://cordis.europa.eu/project/id/101226431 This network has 8 host institutions hiring doctoral candidates: Uppsala University, Universitat Politecnica de Catalunya
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and evaluation of composite tanks and steel piping under cyclic thermal and hydrogen exposure. Predictive modeling of material degradation, fatigue, and embrittlement. Assessment of thermal management