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The synthesis of advanced materials such as LiFePO₄ and FePO₄ through continuous stirred-tank reactors (CSTRs) plays a crucial role in next-generation energy storage technologies.
Achieving high tap density, uniform morphology, and enhanced electrochemical performance depends strongly on the fluid dynamics, mixing efficiency, and reaction kinetics within the reactor.
This postdoctoral position is part of a collaborative research initiative between the Materials and Systems for Nanotechnologies (MSN) and Chemical C Computational (CC) teams at UM6P. The work aims to develop robust computational models to capture the Multiphysics behavior—
including fluid flow, heat transfer, and reaction dynamics—governing the co-precipitation process.
Leveraging the ASCC supercomputer at UM6P, three-dimensional CFD simulations based on the Reynolds-Averaged Navier–Stokes (RANS) approach will be performed to model two-phase flow behavior and mixing within the CSTR. These simulations will be used to evaluate impeller
performance, analyze hydrodynamic characteristics, and identify key synthesis parameters influencing material quality. The resulting models will act as a predictive tool for process optimization and design improvements, providing a foundation for scalable industrial applications.
The postdoctoral researcher will contribute to the development and validation of computational models for the co-precipitation of FePO₄/LiFePO₄ in CSTRs. The work will involve building multi-scale CFD frameworks that integrate hydrodynamic simulations, chemical kinetics, and thermal transport models to improve reactor design and synthesis performance.
The postdoctoral researcher will work within a multidisciplinary team at UM6P, collaborating closely with experts in computational modeling, materials science, and chemical process engineering. The project will be supported by state-of-the-art computational facilities (ASCC supercomputer) and experimental laboratories for validation.
Mohammed VI Polytechnic University is an institution oriented towards applied research and innovation with a focus on Africa.
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