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- W4205992009 abstract "Engine performance and exhaust gas composition in numerous automotive/aerospace propulsion systems depends on the fuel-oxidizer mixing at high pressures. A fundamental understanding of the high-pressure (p) flow dynamics is hence key to improving the engine efficiency. Turbulent round jet direct numerical simulations are performed in this study at a Reynolds number (based on jet diameter and jet-exit velocity) of 5000 to understand binary-species mixing in supercritical conditions. For comparison, single-species flows at atmospheric as well as supercritical pressure are also investigated. The effects of species-concentration gradients on thermal and mass diffusion are significant in a binary-species flow. Moreover, large density (or thermodynamic) fluctuations can occur because of the differences in injected and chamber fluid density/temperature resulting in noticeable Soret effects. The paper discusses preliminary results from an investigation eventually aimed at examining multicomponent species injection and mixing." @default.
- W4205992009 created "2022-01-25" @default.
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- W4205992009 date "2022-01-03" @default.
- W4205992009 modified "2023-09-27" @default.
- W4205992009 title "High-pressure two-species mixing in turbulent free jets" @default.
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- W4205992009 doi "https://doi.org/10.2514/6.2022-0482" @default.
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