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Modeling of freestream disturbance intensity effects on crossflow instability induced transition in high-speed boundary layers

  • Northwestern Polytechnical University Xian
  • National Key Laboratory of Aircraft Configuration Design
  • Aviation University of Air Force
  • National Key Laboratory of Unmanned Aerial Vehicle Technology

Research output: Contribution to journalArticlepeer-review

Abstract

The development of hypersonic boundary-layer transition and turbulence prediction models within the Reynolds-averaged Navier–Stokes (RANS) framework remains a key research focus and challenge in high-speed aerodynamics, owing to the need for a balanced integration of computational efficiency, predictive accuracy, and applicability to complex engineering configurations. In 2025, Zheng et al. proposed a streamwise transition–turbulence prediction model capable of covering a broad Mach number range under varying freestream disturbance intensities; while demonstrating satisfactory performance across diverse hypersonic transition scenarios, this model does not account for crossflow-instability-dominated transition. To address this limitation, the present study focuses on modeling hypersonic boundary-layer transition driven by crossflow instability. Guided by wind tunnel experimental data, the freestream disturbance intensity is explicitly incorporated into the crossflow-induced transition criterion. A local closure for nonlocal variables is then formulated using similarity solution analysis. This enhancement is subsequently integrated into the four-equation transition–turbulence prediction framework originally proposed by Zheng et al. The improved model is applied to a set of canonical wind tunnel benchmark cases, including the HIFiRE-5 elliptic cone, the HyTRV lifting body, the X-33 lifting body, and an inclined straight cone. Predicted transition locations are in good agreement with experimental measurements, confirming both the accuracy and robustness of the proposed modeling approach.

Original languageEnglish
Article number100795
JournalEnergy and AI
Volume25
DOIs
StatePublished - Sep 2026

Keywords

  • Crossflow instability
  • Freestream disturbance intensity effect
  • High-speed boundary layer
  • Transition–turbulence prediction model

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