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Thermodynamically Consistent Vibrational-Electron Heating: Generalized Derivation for Excited State Populations

Plasma Physics 2025-12-01 v1

Abstract

Accurate prediction of electron temperature (TeT_{\rm e}) in non-equilibrium plasma flows is critical for applications ranging from hypersonic flight to plasma-assisted combustion. We recently proposed a thermodynamically consistent model for vibrational-electron (V-e) heating [Phys. Fluids 37, 096141 (2025)] which enforces convergence of TeT_{\rm e} to the vibrational temperature (TvT_{\rm v}) at equilibrium. While the original derivation assumed electron energy loss was dominated by collisions with ground-state molecules, this Letter presents a rigorous generalization of the model. We demonstrate that the heating-to-cooling ratio exp(θv/Teθv/Tv)\exp(\theta_{\rm v}/T_{\rm e}-\theta_{\rm v}/T_{\rm v}) with θv\theta_{\rm v} the characteristic vibrational temperature remains valid even when electron cooling interactions with vibrationally excited states are included. This derivation removes the previous constraint assuming ground-state dominance, thereby extending the model's validity to plasma flows where vibrationally excited populations contribute significantly to electron cooling.

Keywords

Cite

@article{arxiv.2511.21944,
  title  = {Thermodynamically Consistent Vibrational-Electron Heating: Generalized Derivation for Excited State Populations},
  author = {Bernard Parent and Felipe Martin Rodriguez Fuentes},
  journal= {arXiv preprint arXiv:2511.21944},
  year   = {2025}
}

Comments

4 pages

R2 v1 2026-07-01T07:57:13.306Z