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April 17, 2026Journal of Aircraft0 citations

On-Board Flow Sensing for Forebody Vortex-Induced Yaw at High Angle of Attack

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ZHZi HuangLLLinkai LiYGYunsong Gu

Key Points

  • The aim is to develop a flow sensing method to detect forebody vortices and predict the yaw moment in high angle of attack conditions.
  • Conducted experiments in the Low-speed and Low-turbulence Wind Tunnel (LLW) facility.
  • Utilized a slender forebody model and advanced flow visualization techniques.
  • Employed multichannel pressure transducers and a five-component strain-gauge balance for data collection.
  • Applied Pearson correlation coefficient analysis to optimize pressure tap placement.
  • Identified the second sectional plane (Sec 2) as optimal for yaw moment sensing.
  • Pressure taps demonstrated superior performance in characterizing yaw moments.
  • Validated the on-board flow sensing capability in a free-flight model aircraft during flight maneuvers.

Abstract

This study proposes a flow sensing methodology for detecting asymmetric forebody vortices and predicting the yaw moment of a slender nose forebody at high angles of attack, utilizing finite surface pressure information. A comprehensive experimental validation was conducted in the Low-speed and Low-turbulence Wind Tunnel (LLW) facility at Nanjing University of Aeronautics & Astronautics (LLW-NUAA) using a slender forebody model to assess the methodology’s efficacy. Smoke-wire flow visualization, a five-component strain-gauge balance, and multichannel pressure transducers were employed to correlate sectional pressure distributions, flowfield structures, and the model’s lateral force/yaw moment. The Pearson correlation coefficient analysis method was applied to identify optimal characteristic pressure taps for flow sensing. Comparative plot analysis and Pearson correlation calculations determined the second sectional plane (Sec 2, Formula: see text) as the characteristic plane for lateral force/yaw moment sensing, with pressure taps at Formula: see text demonstrating superior yaw moment characterization. Finally, a free-flight model aircraft was developed to validate the onboard flow sensing capability during high-angle-of-attack flight maneuvers.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69e1cf375cdc762e9d8581e3https://doi.org/10.2514/1.c038842
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