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- W2014106903 abstract "Countere ow diffusion e ames of methane and methane/hydrogen mixed fuel, developed in the forward stagnation-e ow region of a porous cylinder in supersonic e ow, are analyzed numerically by solving the two-dimensional compressible Navier ‐ Stokes equations for multispecies. In the case of methane single fuel, an appreciable strong reaction zone or a e ame cannot be established in Mach 3 aire ow for any air static temperature under 1100 K, and the maximum temperature coincides with the stagnation temperature of aire ow. When hydrogen with high reactivity and high diffusivity is added to methane, a strong reaction zone clearly appears and the e ame temperature increases more than the stagnation temperature of aire ow because of the heat released by the chemical reaction. However, the e ame temperature has a maximum around the mixing ratio of 20% hydrogen, and then the e ame temperature and mole fractions of the reaction products for mixed fuel decreases with an increase of the mixing ratio of hydrogen." @default.
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- W2014106903 title "Counterflow Diffusion Flame of Methane and Methane/Hydrogen Mixed Fuel in Supersonic Flow" @default.
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- W2014106903 doi "https://doi.org/10.2514/2.5153" @default.
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