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Modeling of High-Speed Boundary-Layer Transition Across Wide Mach Number Regimes

  • Pengcheng Zheng
  • , Jiakuan Xu
  • , Yutian Wang
  • , Xiao Han
  • , Lei Qiao
  • , Junqiang Bai
  • Northwestern Polytechnical University Xian
  • Ningbo Institute of Northwestern Polytecnical University
  • Aviation University of Air Force
  • Chinese Flight Test Establishment
  • National Key Laboratory of Strength and Structural Integrity
  • National Key Laboratory of Unmanned Aerial Vehicle Technology

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Hypersonic boundary-layer transition prediction technique plays a critical role in the aerodynamic and thermal protection design of supersonic/hypersonic vehicles. To enhance the Mach number applicability of transition prediction models and meet modern aircraft design requirements for multicondition and high-precision predictions, this study improves the calculation methods of key variables required for constructing the Mack second-mode timescale in the transition-turbulence prediction model proposed by Qiao, L., Xu, J., Bai, J., and Zhang, Y. [“Fully local transition closure model for hypersonic boundary layers considering crossflow effects,” AIAA Journal, Vol. 59, No. 5, 2021, pp. 1692-1706. https://doi.org/10.2514/1.J059765]. Specifically, temperature correction was implemented for momentum thickness calculation to better reflect the overall flow characteristics of boundary layers. The correlation between boundary-layer thickness and momentum thickness was recalibrated by comprehensively considering Mach number effects and temperature effects under different wall conditions (adiabatic walls and cooled/heated walls). Additionally, inflow disturbance effects were incorporated to improve model adaptability to various experimental environments. After the model modification, validations were conducted through several wind-tunnel test configurations under various Mach numbers, Reynolds numbers, and wall temperature conditions. Results demonstrate that, compared with previous studies, the improved model performs well in transition prediction across a wider Mach number range, effectively validating the rationality and accuracy of the proposed modifications. This advancement establishes a more extensive application foundation for the overall aerodynamic design, thermal protection structure design, and flight stability evaluation of hypersonic vehicles.

Original languageEnglish
Pages (from-to)668-680
Number of pages13
JournalAIAA Journal
Volume64
Issue number2
DOIs
StatePublished - Feb 2026

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