Thermochemically-Closed Sonic-Flow Inversion for Enthalpy and Temperature in Multispecies Arc-Jet FlowsA thermochemically-closed sonic-flow inversion framework (TSIF) is developed to infer bulk enthalpy and total temperature upstream of a choked nozzle in arc-jet flows. The formulation recasts a pressure-rise total enthalpy quantification technique as an inverse problem in characteristic-velocity c* space using measured mass flow rate, upstream total pressure, gas composition, and nozzle throat geometry as inputs. Unlike calorimetric energy-balance approaches or optical diagnostics, the method relies primarily on routinely measured facility quantities combined with explicit thermochemical closure. Thermochemical states are obtained using NASA’s open-source Chemical Equilibrium with Applications (CEA) code, enabling construction of a chemistry-consistent relation between characteristic velocity, total enthalpy, and total temperature under equilibrium or frozen assumptions. A discharge coefficient is self-calibrated using cold-flow (arc-off) operation data and applied to hot-flow (arc-on) measurements, enabling upstream losses to be accounted for without empirical correlations. The framework is applied to air, N2, and CO2–N2 arc-jet flows and demonstrates expected trends for the inferred thermochemical states as function of arc power, specific energy input, mass-flow, heater configuration, and test gas. In the air limit, under equilibrium assumptions, the method recovers the classical high-enthalpy asymptotic correlation of Winovich with a mean residual of 4.4%, demonstrating compatibility with established sonic-flow scaling, while extending applicability to arbitrary multi-species mixtures and non-equilibrium chemistry. The framework provides a mixture-flexible methodology for determining bulk thermochemical states in modern arc-jet environments using routine facility pressure, mass-flow, gas-composition, and nozzle-geometry information together with a cold-flow calibration.
Document ID
20260004909
Acquisition Source
Ames Research Center
Document Type
Presentation
Authors
Jocelino Rodrigues (Oak Ridge Associated Universities Oak Ridge, United States)
Date Acquired
May 29, 2026
Publication Date
June 8, 2026
Publication Information
Subject Category
Numerical AnalysisAerodynamicsPlasma PhysicsFluid Mechanics and ThermodynamicsGround Support Systems and Facilities (Space)Spacecraft Design, Testing and Performance
Meeting Information
Meeting: AIAA AVIATION Forum
Location: San Diego, CA
Country: US
Start Date: June 8, 2026
End Date: June 12, 2026
Sponsors: American Institute of Aeronautics and Astronautics AIAA