Energetics and limitations of passive electron transpiration cooling for hypersonic leading edges

Fuente: arXiv
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Main Authors: Boyer, Bryce, Fisher, Timothy S.
Format: Preprint
Published: 2025
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author Boyer, Bryce
Fisher, Timothy S.
author_facet Boyer, Bryce
Fisher, Timothy S.
contents Electron transpiration cooling (ETC) offers a promising approach for thermal management of hypersonic vehicles by leveraging thermionic emission from the leading edge. While emitted electrons cool the surface, subsequent collection of flowfield electrons induces heating, limiting ETC effectiveness unless collection occurs in cooler aftbody regions. Most existing ETC studies neglect this heating contribution, assuming ideal downstream collection. This work integrates a one-dimensional collisionless plasma sheath model into a discretized leading-edge framework to predict surface potentials and charged-particle fluxes. A parametric study examines how plasma and vehicle properties affect ETC performance. Results reveal that passive ETC is susceptible to thermionic space-charge overcompensation, which can reverse the intended cooling effect and cause surface heating at high plasma densities. Flowfield electron heating can be mitigated but not eliminated by using dielectric coatings or blunt geometries. The same mechanisms that protect blunt bodies from adverse electrical conduction and flowfield heating also preclude incorporation of ETC-based cooling in those vehicle geometries.
format Preprint
id arxiv_https___arxiv_org_abs_2508_05900
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Energetics and limitations of passive electron transpiration cooling for hypersonic leading edges
Boyer, Bryce
Fisher, Timothy S.
Plasma Physics
Electron transpiration cooling (ETC) offers a promising approach for thermal management of hypersonic vehicles by leveraging thermionic emission from the leading edge. While emitted electrons cool the surface, subsequent collection of flowfield electrons induces heating, limiting ETC effectiveness unless collection occurs in cooler aftbody regions. Most existing ETC studies neglect this heating contribution, assuming ideal downstream collection. This work integrates a one-dimensional collisionless plasma sheath model into a discretized leading-edge framework to predict surface potentials and charged-particle fluxes. A parametric study examines how plasma and vehicle properties affect ETC performance. Results reveal that passive ETC is susceptible to thermionic space-charge overcompensation, which can reverse the intended cooling effect and cause surface heating at high plasma densities. Flowfield electron heating can be mitigated but not eliminated by using dielectric coatings or blunt geometries. The same mechanisms that protect blunt bodies from adverse electrical conduction and flowfield heating also preclude incorporation of ETC-based cooling in those vehicle geometries.
title Energetics and limitations of passive electron transpiration cooling for hypersonic leading edges
topic Plasma Physics
url https://arxiv.org/abs/2508.05900