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Whirl flutter optimisation-based solution of twin turboprop aircraft using a full-span model

机译:使用全跨度模型的基于涡颤优化的双涡桨飞机解决方案

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Whirl flutter is a specific type of flutter instability, relevant for turboprop aircraft, caused by the effect of rotating parts as a propeller or a gas-turbine engine rotor. The proposed optimisation-based analytical procedure is used to determine the critical values of the engine attachment stiffness parameters for the preselected flutter speed. For the half-span model, two design variables are used. The objective function is defined as the minimization of the engine vibration mode frequency sum. Design constraints keep the engine frequency ratio and the flutter stability at the selected velocity. However, application of a full-span model is necessary in some cases. In this case, special models of both symmetric and antisymmetric engine vibrations and four design variables must be used. Design constraints maintain the pitch mode frequency ratio, the yaw mode frequency ratio and the critical mode frequency ratio. Critical modes are dependent on the relation between the rotational direction of both propellers (identical or inverse). A flutter design constraint is applied as well. The described methodology is demonstrated on the application example of a twin-engine commuter aircraft. Demonstrated cases include symmetrical revolutions of propellers for both identical and inverse directions of rotation, cases of single engine failure and single propeller feathering, and finally, cases of unsymmetrical revolutions including the reduced and increased revolutions of a single propeller, for both identical and inverse directions of rotation.
机译:旋转颤振是一种特定类型的颤振不稳定性,与涡轮螺旋桨飞机有关,是由作为螺旋桨或燃气涡轮发动机转子的旋转部件的作用引起的。所提出的基于优化的分析程序用于确定预选扑扑速度的发动机附件刚度参数的临界值。对于半跨度模型,使用两个设计变量。目标函数定义为发动机振动模式频率总和的最小化。设计约束使发动机的频率比和颤振稳定性保持在选定的速度。但是,在某些情况下,必须使用全跨度模型。在这种情况下,必须使用对称和反对称发动机振动的特殊模型以及四个设计变量。设计约束条件保持了俯仰模式频率比,偏航模式频率比和临界模式频率比。临界模式取决于两个螺旋桨的旋转方向(相同或相反)之间的关系。颤振设计约束也被应用。在双引擎通勤飞机的应用示例中演示了所描述的方法。演示的案例包括相同旋转方向和反向旋转的螺旋桨对称旋转,单引擎故障和单个螺旋桨旋转的情况,最后,非对称旋转案例包括相同和反向旋转的单个螺旋桨减小和增加的旋转旋转。

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