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February 8, 2026Journal of Thermophysics and Heat Transfer0 citations

Aerothermal Testing in a Pulsed Arcjet Tunnel with Laser Preheating

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CIChristian T. IsaacsMTMitchell TrotskyKSKillian E. Samuels

Key Points

  • The aim is to enhance high-temperature material testing by combining pulsed arcjet and laser preheating.
  • Integrated a 3 kW laser with a 500 kW pulsed arcjet tunnel.
  • Conducted tests on graphite disks at varying preheating temperatures (700°C, 900°C, 1100°C).
  • Systematically varied flow enthalpy from 2 to 7 MJ/kg during tests.
  • Used infrared pyrometry and thermography to monitor surface temperatures.
  • Employed emission spectroscopy to study gas-surface interaction.
  • Surface temperatures were effectively elevated by preheating before exposure to plasma.
  • Oxidation effects differed significantly between air and nitrogen plasma flows.
  • Increased preheating temperature correlated with enhanced material performance under high-enthalpy conditions.

Abstract

This paper presents a novel and cost-effective experimental setup for high-temperature material testing and gas–surface interaction characterization. A 3 kW radiative heating laser has been integrated with the 500 kW pulsed arcjet tunnel of the University of Tennessee. This facility is a Mach 6, high-enthalpy wind tunnel with typical run times of approximately 500 ms. While the short test duration significantly reduces operating costs, it limits the ability to reach flight-relevant surface temperatures and to observe gas–surface interaction phenomena in detail. To overcome this limitation, the heating laser is used to preheat material samples before exposure to the high-enthalpy plasma flow. A validation campaign was conducted using graphite disks as target material, selected for their low cost, good machinability, and the abundance of reference data available in the literature. The effects of surface preheating temperature (700°C, 900°C, and 1100°C) and flow enthalpy (ranging from 2 to 7 MJ/kg) were systematically studied. Oxidation phenomena were assessed by comparing tests in air and nitrogen plasma flows. Infrared pyrometry and thermography were employed to monitor surface temperatures, and emission spectroscopy was used to investigate gas–surface interaction effects.

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Cite This Study

Isaacs et al. (2026) studied this question.

synapsesocial.com/papers/698828620fc35cd7a8847c9ahttps://doi.org/10.2514/1.t7305
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