首页> 外文期刊>Journal of the American Helicopter Society >Prediction of Air and Ground Resonance Stability of Soft-Inplane Tiltrotors Using a Semispan Analytical Model
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Prediction of Air and Ground Resonance Stability of Soft-Inplane Tiltrotors Using a Semispan Analytical Model

机译:使用半跨分析模型预测软平面倾斜旋翼的空中和地面共振稳定性

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A soft-inplane tiltrotor can be subject to the aeromechanical instabilities of ground and air resonance in addition to whirl flutter. An investigation of these tiltrotor aeromechanical instabilities was undertaken along with an assessment of some methods for improving the stability of a soft-inplane tiltrotor. A new semispan analytical model was developed consisting of a rigid blade rotor coupled to a rigid pylon and an elastic wing with bending-torsion couplings. The results from this model were validated using a 1972 wind tunnel test of the Boeing model 222 tiltrotor. Hover, transition, and cruise configurations were investigated. While the analysis did not predict a ground resonance instability or an air resonance instability in hover, air resonance instabilities are predicted for transition and cruise configurations as well as whirl flutter instabilities at high speeds. Aeroelastic couplings in the rotor blades and wing are shown to affect the air resonance stability in cruise and transition and to be useful in augmenting the inherent stability of the aircraft. Wing vertical bending coupled to wing torsion and rotor low-frequency lag coupled to blade torsion were helpful in avoiding air resonance. Positive blade pitch-lag coupling was quite detrimental to whirl flutter stability. Wing vertical bending-torsion coupling was unable to stabilize all the air resonance regions completely.
机译:除了旋振之外,软面倾转旋翼还可能受到地面和空气共振的气动机械不稳定性的影响。对这些倾斜转子的气动机械不稳定性进行了调查,并评估了一些改善软平面倾斜转子稳定性的方法。开发了一种新的半跨分析模型,该模型由与刚性塔架相连的刚性叶片转子和带有弯曲-扭转联接器的弹性机翼组成。使用1972年的波音222型倾斜转子的风洞试验验证了该模型的结果。悬停,过渡和巡航配置进行了调查。尽管该分析并未预测悬停时的地面共振不稳定性或空气共振不稳定性,但可以预测过渡和巡航配置以及高速旋转的颤振不稳定性中的空气共振不稳定性。旋翼桨叶和机翼中的气动弹性联轴器可影响巡航和过渡过程中的空气共振稳定性,并有助于增强飞机的固有稳定性。机翼垂直弯曲耦合到机翼扭转,以及转子低频滞后耦合到叶片扭转,有助于避免空气共振。正叶片桨距-滞后耦合非常不利于旋振稳定性。机翼垂直弯曲-扭转耦合无法完全稳定所有的空气共振区域。

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