Numerical Modeling of Chemical Kinetics, Spray Dynamics, and Turbulent Combustion towards Sustainable Aviation

Author:

Åkerblom Arvid1ORCID,Passad Martin2,Ercole Alessandro1,Zettervall Niklas3,Nilsson Elna J. K.2ORCID,Fureby Christer1

Affiliation:

1. Department of Energy Sciences, Lund University, P.O. Box 118, SE 221-00 Lund, Sweden

2. Department of Physics, Lund University, P.O. Box 118, SE 221-00 Lund, Sweden

3. Swedish Defence Research Agency, Weapons, Protection, and Security, 164 90 Stockholm, Sweden

Abstract

With growing interest in sustainable civil supersonic and hypersonic aviation, there is a need to model the combustion of alternative, sustainable jet fuels. This work presents numerical simulations of several related phenomena, including laminar flames, ignition, and spray flames. Two conventional jet fuels, Jet A and JP-5, and two alternative jet fuels, C1 and C5, are targeted. The laminar burning velocities of these fuels are predicted using skeletal and detailed reaction mechanisms. The ignition delay times are predicted in the context of dual-mode ramjet engines. Large Eddy Simulations (LES) of spray combustion in an aeroengine are carried out to investigate how the different thermodynamic and chemical properties of alternative fuels lead to different emergent behavior. A novel set of thermodynamic correlations are developed for the spray model. The laminar burning velocity predictions are normalized by heat of combustion to reveal a more distinct fuel trend, with C1 burning slowest and C5 fastest. The ignition results highlight the contributions of the Negative Temperature Coefficient (NTC) effect, equivalence ratio, and hydrogen enrichment in determining ignition time scales in dual-mode ramjet engines. The spray results reveal that the volatile alternative jet fuels have short penetration depths and that the flame of the most chemically divergent fuel (C1) stabilizes relatively close to the spray.

Funder

European Union’s Horizon 2020 research and innovation program MORE&LESS

Publisher

MDPI AG

Subject

Aerospace Engineering

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