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Publishing Language: Chinese | Open Access

Direct numerical simulation of gas injection into a high-enthalpy turbulent boundary layer based on OpenCFD-Comb

Guangkang Zeng1,2Xinliang Li1,2Hongwei Liu1( )
State Key Laboratory of High Temperature Gas Dynamics, Institute of Mechanics, Chinese Academy of Sciences, Beijing 100190, China
School of Engineering Science, University of Chinese Academy of Sciences, Beijing 100049, China
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Abstract

Cooling-gas injection is crucial to the thermal protection of hypersonic vehicles. As a commonly used coolant, air contains N2 and O2, which exhibit different chemical reactivities under temperature conditions where N2 dissociation is not yet significant. Understanding their behavior in high-enthalpy turbulent boundary layers is of practical importance for vehicle thermal management under realistic flight conditions. Using OpenCFD-Comb, an open-source high-order solver for chemically reacting turbulence developed by our group, direct numerical simulations are performed to investigate species evolution and turbulence–chemistry interactions in a Mach 10 high-enthalpy turbulent boundary layer over a flat plate, with O2 injected through a slit in the fully turbulent region. Pure O2 is injected at the free-stream temperature with a blowing ratio of 0.001. Results show that the injection creates a localized oxygen-rich zone downstream, leading to a non-monotonic O2 distribution and significantly enhanced production of atomic oxygen. Mass-fraction fluctuations of O2 and N2 are amplified, while those of N and NO are weakened. The injection strengthens chemical reactions involving O2, O and NO, but has limited effect on the relatively inactive N2 and N. Compared with species fluctuations, turbulence–chemistry coupling is more sensitive to temperature fluctuations.

CLC number: V233.1;V211.3 Document code: A Article ID: 0258-1825(2026)03-0097-12

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Acta Aerodynamica Sinica
Pages 97-108

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Cite this article:
Zeng G, Li X, Liu H. Direct numerical simulation of gas injection into a high-enthalpy turbulent boundary layer based on OpenCFD-Comb. Acta Aerodynamica Sinica, 2026, 44(3): 97-108. https://doi.org/10.7638/kqdlxxb-2025.0250

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Received: 26 November 2025
Revised: 25 December 2025
Published: 28 March 2026
© The journal of Acta Aerodynamica Sinica.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).