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February 22, 2026Applied Sciences0 citationsOpen Access

CFD-Based Aerodynamic Shape Optimization and Comparative Aeroacoustics Source Analysis of Modified Leading-Edge Wavy-Wing Configurations for the NACA 0020 Airfoil

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AŞAhmet Şumnu

Key Points

  • The aim is to optimize aerodynamic performance and analyze aeroacoustics in modified leading-edge wavy wings for the NACA 0020 airfoil.
  • Utilized Computational Fluid Dynamics to analyze flow fields at a Reynolds number of 290,000.
  • Examined three leading-edge wavy wing configurations with different slot diameters.
  • Performed shape optimization using a Genetic Algorithm for slot parameters.
  • Validated numerical results against existing experimental data.
  • The A3L11 configuration with a 0.07c slot diameter showed significant performance improvements.
  • An increase of approximately 27.76% in aerodynamic efficiency compared to the baseline smooth wing.
  • Broadband aeroacoustic modeling indicated reduced noise intensity relative to the modified wings.

Abstract

The present numerical study simultaneously investigates the aerodynamic performance, shape optimization, and aeroacoustic characteristics of modified leading-edge wavy wings for the NACA 0020 airfoil. Unlike conventional passive flow-control approaches, the present study proposes a collaborative vortex–slot control strategy, where streamwise vortices induced by a wavy leading edge interact constructively with momentum injection from upper-surface slot channels. Flow field is analyzed at a Reynolds number of 290,000 and various angles of attack (AoA) utilizing Computational Fluid Dynamics (CFD). Three leading-edge wavy wing configurations, namely A3L11, A3L40 and A11L40, are examined and further modified by introducing streamwise slots near the leading edge on the upper surface of the wing. Three slot diameters (0.07c, 0.10c, and 0.13c) are examined at a constant draft angle of 7.5°, which represents the inclination of the slot relative to the wing surface. The numerical results are validated against experimental data available in the literature. The findings indicate that the A3L11 configuration with a 0.07c slot diameter, as well as the A11L40 configuration at high angles of attack, outperform the baseline wavy wing. This improvement is attributed to the slotting mechanism, which enhances surface suction and streamwise momentum, thereby improving boundary-layer behavior. An increase in aerodynamic efficiency, quantified by the lift-to-drag ratio, is observed at 20° AoA for all configurations. To further enhance performance, shape optimization is performed by optimizing the slot diameter and the distance between the chord line and the slot center using a Genetic Algorithm (GA), with the A11L40 configuration at 20° AoA identified as the optimal design. The optimized configuration yields an overall aerodynamic performance improvement of approximately 27.76% compared to the smooth wing, while broadband aeroacoustic source modeling indicates a relative reduction in predicted noise-source intensity relative to the baseline modified wing. The results are presented through combined quantitative metrics and qualitative flow analyses, demonstrating the potential applicability of the proposed optimization framework to low-Reynolds-number aerodynamic and aeroacoustic design problems, such as those encountered in small-scale air vehicles, bio-inspired wings, and noise-sensitive systems.

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Cite This Study

Ahmet Şumnu (2026) studied this question.

synapsesocial.com/papers/699a9d50482488d673cd3128https://doi.org/10.3390/app16042078
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