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EXPERIMENTAL EVALUATION OF WIND TUNNEL TEST APPARATUS FOR ACTIVE FLOW CONTROL

机译:主动流量控制风洞试验装置的实验评价

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Active control of flow dynamics is an ever-increasing field of study. This paper presents details on a new experimental apparatus for the testing of dynamic fluid-structure interaction and the control thereof. Specifically, the experimental apparatus involves an open return wind tunnel with an actuated rigid airfoil. The airfoil is replaceable, but this initial evaluation uses a flat plate as a basic geometry airfoil. The pitch of the airfoil is actively controlled in real-time via an angle sensor, microcontroller, and brushed DC electric motor. For a given PID controller, sine sweeps are performed to identify the closed-loop frequency response at varying wind speeds. The wind creates a destabilizing feedback torque on the airfoil which increases with wind speed and results in a change in the closed-loop frequency response. A model of the system is augmented with a mathematical model for the wind dynamics. The assumed form wind model is manually tuned to match the closed-loop frequency response for all wind speeds. Finally, steady-state tests are conducted in which the setpoint for angle of attack is incrementally changed and the frequency spectrum is found for the angle sensor, in the control loop, and a hotwire behind the airfoil which is not in the control loop. The results from the angle sensor show the system holds steady, with slight variation at low frequencies for high angles of attack. The results from the hotwire show a distinct sheading frequency at low angles of attack, which is replaced by chaotic low frequency flow at high angles of attack characteristic of flow separation.
机译:主动控制流动动力学是一个不断发展的研究领域。本文介绍了一种用于测试动态流固耦合及其控制的新型实验设备的详细信息。具体地,该实验设备包括具有致动的刚性翼型的开放式返回风洞。机翼是可更换的,但此初始评估使用平板作为基本几何形状的机翼。机翼的俯仰通过角度传感器,微控制器和有刷直流电动机实时进行主动控制。对于给定的PID控制器,执行正弦波扫描以识别风速变化时的闭环频率响应。风在翼型上产生不稳定的反馈扭矩,该扭矩随风速增加并导致闭环频率响应发生变化。该系统的模型增加了用于风动力学的数学模型。手动调整假定的风模型以匹配所有风速的闭环频率响应。最后,进行稳态测试,其中攻角的设定点会逐渐变化,并在控制回路中以及机翼后面的热线(不在控制回路中)找到角度传感器的频谱。角度传感器的结果表明,该系统保持稳定,在低频范围内对于高攻角而言变化很小。热线的结果表明,在低攻角下有明显的甩头频率,被高分离角的高攻角下的混沌低频流所代替。

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