TY - GEN
T1 - Simultaneous O Atom nsTALIF and NO nsLIF Imaging Strategy to Expedite Characterization and Numerical Validation of High Enthalpy Plasma Flows
AU - Meyers, J. M.
AU - Kumar, S.
AU - Munafo, A.
AU - Panesi, M.
N1 - This work is supported by AFOSR Grant FA9550-22-1-0039, Amanda Chou technical monitor. The views expressed in this paper represent the personal views of the authors and are not necessarily the views of the U.S. Department of Defense or of the U.S. Air Force. We also recognize the support of the Center for Hypersonic Entry Systems Studies (CHESS), the Materials Research Laboratory (MRL), and the Grainger College of Engineering at the University of Illinois at Urbana-Champaign.
PY - 2026
Y1 - 2026
N2 - In this work, results from a laser-induced fluorescence (LIF) approach capable of simultaneously measuring ground-state information of multiple species using a single tunable laser source. This method employs a spectrally narrow tunable laser to excite atomic oxygen (via nsTALIF) and molecular nitric oxide (via nsLIF) in high-enthalpy air plasma flows produced by the University of Illinois, Urbana-Champaign 350 kW Plasmatron X Facility. Two gated ICCD cameras with with different phosphor, intensifier, and filter configurations were utilized to image the emission along the laser beam, enabling the simultaneous acquisition of full jet radial profiles for both species. This work demonstrate that significant LIF signals of free-jet oxygen atoms (O) and nitric oxide molecules (NO) can be simultaneously captured by probing the O atom 3p² transition and nearby high rotational number transitions in the NO (A-X) band. The extracted ro-translational temperatures for O and NO were relatively consistent, and the radial relative species number densities followed expected trends and computational models. These findings suggest that the simultaneous species LIF technique holds considerable promise for high-enthalpy flow studies, investigations into gas-surface interaction chemistry, and the validation of numerical models requiring a robust understanding of spatial enthalpy distributions.
AB - In this work, results from a laser-induced fluorescence (LIF) approach capable of simultaneously measuring ground-state information of multiple species using a single tunable laser source. This method employs a spectrally narrow tunable laser to excite atomic oxygen (via nsTALIF) and molecular nitric oxide (via nsLIF) in high-enthalpy air plasma flows produced by the University of Illinois, Urbana-Champaign 350 kW Plasmatron X Facility. Two gated ICCD cameras with with different phosphor, intensifier, and filter configurations were utilized to image the emission along the laser beam, enabling the simultaneous acquisition of full jet radial profiles for both species. This work demonstrate that significant LIF signals of free-jet oxygen atoms (O) and nitric oxide molecules (NO) can be simultaneously captured by probing the O atom 3p² transition and nearby high rotational number transitions in the NO (A-X) band. The extracted ro-translational temperatures for O and NO were relatively consistent, and the radial relative species number densities followed expected trends and computational models. These findings suggest that the simultaneous species LIF technique holds considerable promise for high-enthalpy flow studies, investigations into gas-surface interaction chemistry, and the validation of numerical models requiring a robust understanding of spatial enthalpy distributions.
UR - https://www.scopus.com/pages/publications/105031182621
UR - https://www.scopus.com/pages/publications/105031182621#tab=citedBy
U2 - 10.2514/6.2026-2462
DO - 10.2514/6.2026-2462
M3 - Conference contribution
AN - SCOPUS:105031182621
SN - 9781624107658
T3 - AIAA Science and Technology Forum and Exposition, AIAA SciTech Forum 2026
BT - AIAA Science and Technology Forum and Exposition, AIAA SciTech Forum 2026
PB - American Institute of Aeronautics and Astronautics Inc, AIAA
T2 - AIAA Science and Technology Forum and Exposition, AIAA SciTech Forum 2026
Y2 - 12 January 2026 through 16 January 2026
ER -