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2022

Journal Article

High-temperature vibrational relaxation and decomposition of shock-heated nitric oxide. I. Argon dilution from 2200 to 8700 K

Streicher, Jesse W., Krish, Ajay and Hanson, Ronald K. (2022). High-temperature vibrational relaxation and decomposition of shock-heated nitric oxide. I. Argon dilution from 2200 to 8700 K. Physics of Fluids, 34 (11) 116122. doi: 10.1063/5.0109109

High-temperature vibrational relaxation and decomposition of shock-heated nitric oxide. I. Argon dilution from 2200 to 8700 K

2022

Journal Article

Spectrally-resolved ultraviolet absorption measurements of shock-heated NO from 2000 K to 6000 K for the development of a two-color rotational temperature diagnostic

Krish, Ajay, Streicher, Jesse W. and Hanson, Ronald K. (2022). Spectrally-resolved ultraviolet absorption measurements of shock-heated NO from 2000 K to 6000 K for the development of a two-color rotational temperature diagnostic. Journal of Quantitative Spectroscopy & Radiative Transfer, 280 108073. doi: 10.1016/j.jqsrt.2022.108073

Spectrally-resolved ultraviolet absorption measurements of shock-heated NO from 2000 K to 6000 K for the development of a two-color rotational temperature diagnostic

2021

Journal Article

Spectrally-resolved absorption cross-section measurements of shock-heated O<sub>2</sub> for the development of a vibrational temperature diagnostic

Krish, Ajay, Streicher, Jesse W. and Hanson, Ronald K. (2021). Spectrally-resolved absorption cross-section measurements of shock-heated O2 for the development of a vibrational temperature diagnostic. Journal of Quantitative Spectroscopy & Radiative Transfer, 270 107704. doi: 10.1016/j.jqsrt.2021.107704

Spectrally-resolved absorption cross-section measurements of shock-heated O<sub>2</sub> for the development of a vibrational temperature diagnostic

2021

Journal Article

Coupled vibration-dissociation time-histories and rate measurements in shock-heated, nondilute O<sub>2</sub> and O<sub>2</sub>-Ar mixtures from 6000 to 14000K

Streicher, Jesse W., Krish, Ajay and Hanson, Ronald K. (2021). Coupled vibration-dissociation time-histories and rate measurements in shock-heated, nondilute O2 and O2-Ar mixtures from 6000 to 14000K. Physics of Fluids, 33 (5) 056107. doi: 10.1063/5.0048059

Coupled vibration-dissociation time-histories and rate measurements in shock-heated, nondilute O<sub>2</sub> and O<sub>2</sub>-Ar mixtures from 6000 to 14000K

2020

Journal Article

Vibrational relaxation time measurements in shock-heated oxygen and air from 2000 K to 9000 K using ultraviolet laser absorption

Streicher, Jesse W., Krish, Ajay and Hanson, Ronald K. (2020). Vibrational relaxation time measurements in shock-heated oxygen and air from 2000 K to 9000 K using ultraviolet laser absorption. Physics of Fluids, 32 (8) 086101. doi: 10.1063/5.0015890

Vibrational relaxation time measurements in shock-heated oxygen and air from 2000 K to 9000 K using ultraviolet laser absorption

2020

Journal Article

Shock-tube measurements of coupled vibration-dissociation time-histories and rate parameters in oxygen and argon mixtures from 5000 K to 10 000 K

Streicher, Jesse W., Krish, Ajay, Hanson, Ronald K., Hanquist, Kyle M., Chaudhry, Ross S. and Boyd, Iain D. (2020). Shock-tube measurements of coupled vibration-dissociation time-histories and rate parameters in oxygen and argon mixtures from 5000 K to 10 000 K. Physics of Fluids, 32 (7) 076103. doi: 10.1063/5.0012426

Shock-tube measurements of coupled vibration-dissociation time-histories and rate parameters in oxygen and argon mixtures from 5000 K to 10 000 K

2020

Journal Article

Ultraviolet absorption cross-section measurements of shock-heated O2 from 2,000-8,400 K using a tunable laser

Krish, Ajay, Streicher, Jesse W. and Hanson, Ronald K. (2020). Ultraviolet absorption cross-section measurements of shock-heated O2 from 2,000-8,400 K using a tunable laser. Journal of Quantitative Spectroscopy and Radiative Transfer, 247 106959. doi: 10.1016/j.jqsrt.2020.106959

Ultraviolet absorption cross-section measurements of shock-heated O2 from 2,000-8,400 K using a tunable laser