混合频响技术及其在飞机颤振试验中的应用

J. Simmons, J. Benson, J. Fiedler
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引用次数: 0

摘要

大型飞机,如洛克希德C-5A,可以被迫在地面上产生大量紧密耦合的振动模式,这些振动模式涉及升力和控制面,机身和发动机的联合运动。在飞行过程中,大气扰动也可以激发这些振动共振,尽管在正常情况下,它们被抑制到一个安全的水平,因为气流能够从振动结构中提取能量。然而,存在一种称为颤振的气动弹性现象——在某些条件下,结构能够从气流中提取能量,共振的振幅可以非常迅速地增加到破坏性的水平。显然,所有共振的阻尼必须在大范围的飞行条件下保持正值。飞行颤振测试程序证实了这一点,在此过程中,飞机在进入更高的空速之前,在一定的空速和高度上是安全的。在一种大型飞机颤振试验方法中,在飞行过程中由气动叶片的振荡力激发振动模态。使用频率扫描技术;振荡力的频率在1 ~ 30hz之间连续变化。加速度计或其他传感器指示飞机上不同位置的响应。在励磁扫描后,确定了共振频率和阻尼措施,并对高空速的安全性做出了决定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A hybrid frequency response technique and its application to aircraft flight flutter testing
Large aircraft, such as the Lockheed C-5A, can be forced to resonate on the ground in a large number of closely coupled vibration modes which involve the combined motion of lifting and control surfaces, fuselage and engines. During flight, atmospheric disturbances can also excite these vibrational resonances, though, under normal conditions, they are damped to a safe level because the airstream is able to extract energy from the vibrating structure. However, there exists the aeroelastic phenomenon called flutter---under certain conditions the structure is able to extract energy from the airstream and the amplitude of a resonance can very rapidly increase to a destructive level. Clearly, the damping of all resonances must remain positive throughout a wide range of flight conditions. This is verified by flight flutter test programs during which aircraft are proven safe at an airspeed and altitude before proceeding to a higher airspeed. In one method of flutter testing of large aircraft, the resonant modes are excited during flight by oscillatory forces from aerodynamic vanes. A frequency sweep technique is used; the frequency of the oscillatory forces is varied continuously from about 1 to 30 Hz. Accelerometers or other transducers indicate the response at various locations on the aircraft. After an excitation sweep, the frequencies and measures of damping of the resonances are determined, and a decision is made about the safety of a higher airspeed.
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