航空学报 > 2026, Vol. 47 Issue (13): 533206-533206   doi: 10.7527/S1000-6893.2026.33206

AC-DBD等离子体控制的飞行减阻试验

耿玺1,2, 董鹏昌1, 孙琪杰1, 孙志坤2,3, 朱赫1, 钱晓辉1(), 程克明1,2, 史志伟1,2   

  1. 1.南京航空航天大学 航空宇航学院,南京 210016
    2.非定常空气动力学与流动控制工信部重点实验室,南京 210016
    3.低空无人驾驶航空器安全运行技术江苏省产业技术工程化中心,宿迁 223800
  • 收稿日期:2025-12-08 修回日期:2026-01-06 接受日期:2026-02-27 出版日期:2026-03-26 发布日期:2026-03-16
  • 通讯作者: 钱晓辉 E-mail:xhqian@nuaa.edu.cn
  • 基金资助:
    国家自然科学基金(92471111);国家自然科学基金(52572409);航空科学基金(20240012052001);直升机动力学全国重点实验室基金(ZAG2500624)

Tests on in-flight drag reduction using AC-DBD plasma flow control

Xi GENG1,2, Pengchang DONG1, Qijie SUN1, Zhikun SUN2,3, He ZHU1, Xiaohui QIAN1(), Keming CHENG1,2, Zhiwei SHI1,2   

  1. 1.College of Aerospace Engineering,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,China
    2.Ministerial Key Laboratory of Unsteady Aerodynamics and Flow Control,Nanjing 210016,China
    3.Jiangsu Industrial Technology Engineering Center for Safe Operations of Low-Altitude Unmanned Aerial Vehicles,Suqian 223800,China
  • Received:2025-12-08 Revised:2026-01-06 Accepted:2026-02-27 Online:2026-03-26 Published:2026-03-16
  • Contact: Xiaohui QIAN E-mail:xhqian@nuaa.edu.cn
  • Supported by:
    National Natural Science Foundation of China(92471111);Aeronautical Science Foundation of China(20240012052001);National Key Laboratory Foundation of Helicopter Dynamics(ZAG2500624)

摘要:

介质阻挡放电(DBD)等离子体激励器因其无机械运动部件、结构轻质、响应迅速等特性,在主动流动控制领域展现出良好的应用前景。在Davis机翼上布置24对交流DBD等离子体激励器,通过风洞测力试验、粒子图像测速(PIV)流场测量、真实飞行试验,系统评估其流动控制效果、减阻性能。风洞试验结果表明,等离子体激励可有效调控近壁面流动结构。激励诱导的壁面射流与近壁涡结构相互作用,促使相干结构流向尺度压缩、展向条带间距增大、结构倾斜角由15.94°减小至9.2°。该流动控制作用抑制了准流向涡对的抬升运动,削弱流体间的动量输运,削弱近壁区雷诺切应力,最终实现摩擦阻力的降低。在此基础上,开展无人机定高、定空速的盘旋飞行试验。在空速24 m/s、激励电压峰-峰值10 kV、迎角4°(接近最大升阻比状态)条件下,通过电机功率变化评估减阻效果。结果表明,开启等离子体激励后,飞行器地速提升约7.1%,峰值减阻率达7.59%,平均减阻率为6.15%。风洞与飞行试验所获得的减阻趋势一致,验证了该流动控制方法在真实飞行环境中的有效性、工程可行性。

关键词: 流动控制, 飞行试验, 气动力测量, 等离子体, 减阻

Abstract:

Dielectric Barrier Discharge (DBD) plasma actuators have demonstrated significant potential for active flow control, owing to their distinct advantages, including the absence of moving mechanical parts, a lightweight structure, and rapid response time. 24 pairs of alternating current DBD plasma actuators were arranged on a Davis wing. The flow control effectiveness and drag-reduction performance were systematically evaluated through wind-tunnel force measurements, Particle Image Velocimetry (PIV) flow-field measurements, and actual flight tests. Wind tunnel results indicate that plasma actuation effectively modulates near-wall flow structures. The wall jet induced by the actuation interacts with near-wall structures, leading to changes in coherent structures: compression of the streamwise extent, enlargement of the spanwise streak spacing, and a reduction in the inclination angle from 15.94° to 9.20°. This flow-control effect suppresses the lift-up motion of quasi-streamwise vortex pairs, weakening momentum transport and attenuating Reynolds shear stress in the near-wall region, thereby reducing skin-friction drag. Based on these findings, circling flight tests were conducted using an unmanned aerial vehicle at a fixed altitude and airspeed. Drag reduction effects were evaluated by monitoring changes in motor power under conditions of an airspeed of 24 m/s, a peak-to-peak actuation voltage of 10 kV, and an angle of attack of 4° (close to the maximum lift-to-drag ratio state). The results demonstrate that upon activating plasma actuation, the aircraft's ground speed increased by approximately 7.1%, with a peak drag reduction of 7.59% and an average drag reduction of 6.15%. The consistent drag-reduction trends observed in both wind tunnel and flight tests validate the effectiveness and engineering feasibility of this flow-control method in real-world flight environments.

Key words: flow control, flight test, aerodynamic measurement, plasma, drag reduction

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