In-situ species concentration measurements in ammonia mix flames using FTIR spectroscopy
Presentation at the 2024 ASME Turbo Expo detailing in-situ NO, NH3, H2O, and temperature measurements in CH4/NH3 and H2/NH3 flames using FTIR spectroscopy.
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Presentation at the 2024 ASME Turbo Expo detailing in-situ NO, NH3, H2O, and temperature measurements in CH4/NH3 and H2/NH3 flames using FTIR spectroscopy.
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Brightness temperature maps for Jovian thermal radiation obtained through 8-14 micron window of atmosphere
Photoreduction regulation in Rhodospirillum rubrum by ammonium chloride, discussing nitrogen fixation and protein metabolism
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A crossed-beam apparatus is used to measure the product ion velocity and angular distributions for the following ion-molecule reactions in the relative energy range from 2 to 9 eV: CH4(+) + NH3 yields NH4(+) + CH3; CH4(+) + NH3 yields CNH5(+) + H2; NH2(+) + CH4 yields CNH4(+) + H2 (or 2H); and CH3(+) + NH3 yields CNH4(+) + H2 (or 2H). These reactions are also studied by means of deuterium labeling as a further probe of the detailed reaction dynamics. Probability contour plots for the four reactions are constructed in Cartesian velocity space, and product peaks in the plots are discussed. Relative cross sections and Q values are computed for two of the reactions as well as for the corresponding deuterium-labelled reactions. The results show that the present ion-neutral condensation reactions are highly exothermic with a deep well for the internal complex, that little hydrogen scrambling occurs, and that the energy of the reactions is released mainly as internal energy, even to the extent of producing two hydrogen atoms in some cases rather than one hydrogen atom or molecule.