PhD candidate (M/F) – Numerical study of thermo-acoustic instabilities in hydrogen blend flames
Offer DescriptionThe EM2C laboratory (CNRS/INSIS and Université Paris-Saclay/CentraleSupélec ), through its high-level academic research on energy and combustion and its applied studies in partnership with leading transport and energy companies and research centers, is making a significant contribution to the advancement of knowledge on these critical issues, both for the climate and the environment. To meet these challenges, the laboratory’s research activities are organized around three main themes
Combustion, Non-equilibrium Plasmas, Transfer Physics and a transversal action in Applied Mathematics. As a doctoral student (M/F), you will be enrolled in the SMEMAG doctoral school (ED 579 – Mechanical & Energy Sciences, Materials & Geosciences).
The EM2C Laboratory has around 45 permanent staff (researchers, teacher-researchers & research support staff) and 35 PhD students, post-docs, trainees & visiting professors.The position is located in an area covered by the protection of scientific and technical potential (PPST), and therefore requires, in accordance with regulations, that your arrival be authorized by the competent MESR authority.Translated with (free version)The ACHIEVE European projectTo mitigate the impact of greenhouse gases on the climate, the gas turbine power generation sector must rapidly reduce its emissions. Furthermore, these systems offer a compensatory solution to the intermittent nature of renewable energies. To achieve this, the traditional combustion of carbon-based natural gas must be abandoned in favor of carbon-free fuels derived from renewable energies. ACHIEVE aims at developing the fundamental knowledge to enable a transition to unconventional carbon-free fuel blends based around H2 and NH3 to achieve zero carbon emissions, ultra-low NOx emissions, and stable gas turbine operation.
ACHIEVE’s consortium combines the expertise of top academic (numerical and experimental), industrial, and transversal institutions. It will bring together experts from different research fields, including CFD, heat transfer and combustion, fluid dynamics and technical acoustics, aircraft propulsion, virtual chemistry, and high-pressure combustion.Experimental campaigns will explore combustor stability limits, emissions, and fundamental aspects of the combustion of hydrogen blends. Numerical activities will address combustion modelling challenges, including chemical kinetics, fundamental physics governing flame dynamics, ushering in new modelling techniques to understand and predict NOx formation mechanism, lean blow-off, flashback limits, and thermoacoustic instabilities. Real-time monitoring and predictive capabilities for practical combustion systems will also be developed.
Gif-sur-Yvette, Essonne
Tue, 19 Mar 2024 23:29:08 GMT
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