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Vortex Dynamics Study and Flow Visualization on Aircraft Model with Different Canard Configurations

机译:不同鸭筒配置飞机模型的涡旋动力学研究与流动可视化

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Canard configuration on fighter planes is essential for regulating flow and the occurrence of vortex interactions on the main wing, one of which is to delay stall. Stall delays are useful when the aircraft is making maneuvering or short-landing. This study observed the effect of canard configuration on various fighter aircraft models. Fighter models represented the different canard configurations, such as Sukhoi SU-30 MKI, Chengdu J-10, and Eurofighter Typhoon. Water tunnels and computational fluid dynamics (CFD) have made it easier to visualize the flow and aerodynamic forces. The results showed that at a low angle of attack (AoA) 30°, the Chengdu J-10 and Eurofighter models had the highest lift force coefficient (Cl). When at high AoA, Cl’s highest value occurred on the Sukhoi SU-30 model with a value of 1.45 at AoA 50°. Meanwhile, the highest AoA that still had a high Cl value occurred on the Sukhoi SU-30 and Chengdu J-10 aircraft models, namely at AoA 55° with Cl values more than 1.1. The canard position in the upper of the wing would increase the Cl at low AoA, while the parallel canard position could delay the stall.
机译:战斗机上的鸭管配置对于调节流动和主翼上的涡流交互的发生至关重要,其中一个是延迟失速。当飞机正在进行机动或短着陆时,失速延迟非常有用。本研究观察了迫筒配置对各种战斗机模型的影响。战斗机型号代表了不同的小鸭配置,例如Sukhoi Su-30 Mki,Chengdu J-10和Eurofighter Typhoon。水隧道和计算流体动力学(CFD)使其更容易可视化流动和空气动力。结果表明,以低迎角(AOA)& 30°,成都J-10和EureoGuter Models具有最高的提升力系数(CL)。当在高AOA时,CL的Sukhoi SU-30型号最高值在AOA 50°处具有1.45的值。同时,仍然在Sukhoi SU-30和成都J-10飞机模型上发生了高CL值的最高AOA,即在AOA 55°,CL值超过1.1。机翼上部的筒仓位置将在低AOA下增加CL,而平行的筒仓位置可能会延迟失速。

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