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Acta Aeronautica et Astronautica Sinica ›› 2026, Vol. 47 ›› Issue (5): 132504.doi: 10.7527/S1000-6893.2025.32504

• Fluid Mechanics and Flight Mechanics • Previous Articles    

Multiphase-modulated arc matrix control of supersonic cavity flow fields

Yakang KONG1, Haohua ZONG2(), Cheng WANG1, Jinping LI3, Zhi SU3, Yun WU3, Min JIA3, Hua LIANG3   

  1. 1.Fundamental Department,Air Force Engineering University,Xi’an 710038,China
    2.School of Mechanical Engineering,Xi’an Jiaotong University,Xi’an 710049,China
    3.National Key Lab of Aerospace Power System and Plasma Technology,Air Force Engineering University,Xi’an 710038,China
  • Received:2025-07-01 Revised:2025-07-22 Accepted:2025-08-20 Online:2025-08-29 Published:2025-08-28
  • Contact: Haohua ZONG E-mail:haohua_zong@163.com
  • Supported by:
    National Natural Science Foundation of China(52306059);National Key Laboratory Fund(APSPT202302003);Foundation Research Project(1002TJA22010)

Abstract:

Restricted by the cavity combustor configuration size and influenced by the high-speed airflow, fuel mixing efficiency within a scramjet combustor is low. To address this issue, based on a pulsed arc plasma actuator matrix, a synchronous actuation mode and two traveling wave actuation modes were designed. High-speed schlieren imaging was employed to conduct tests on plasma actuation for controlling the supersonic cavity flow field. The control effectiveness of the number of synchronously actuated actuator columns and the different actuation modes on cavity flow fields with three different aft-wall inclination angles were comparatively analyzed by synthesizing flow field evolution and statistical analysis of schlieren images. Plasma actuation can effectively excite density fluctuations in the cavity shear layer. Under baseline (no actuation) conditions, as the aft-wall inclination angle increases, the fluctuation intensity of the shear layer exhibits a monotonically increasing trend due to enhanced cavity resonance; moreover, the larger the aft-wall inclination angle, the smaller the increment in density fluctuations induced by plasma actuation. In the synchronous actuation mode, as the number of actuated columns increases, the disturbance range to the flow field expands, leading to a monotonic increase in the amplitude of shear layer density fluctuations. Both traveling wave actuation modes outperform the synchronous mode. The upstream traveling wave mode distributes disturbances evenly over one actuation cycle, aiming to increase the equivalent actuation frequency. Conversely, the downstream traveling wave mode superimposes the thermal bulbs induced by plasma actuation along the streamwise direction, enhancing the degree of interaction with the shear layer and causing a significant increase in its fluctuation amplitude. Physically, the shock waves and thermal bulbs induced by plasma actuation are the root causes of the disturbances. These disturbances thicken the boundary layer and excite instabilities in the shear layer, thereby leading to the generation of wavy oscillations.

Key words: cavity, supersonic flow, shear layer, plasma actuation, flow control

CLC Number: