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APPLICATION OF SIMPLIFIED PARAMETRIC MODEL TO ESTIMATE FAN BLADE-OUT RESPONSE

机译:简化的参数模型在估计风机叶片失灵响应中的应用

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A six-degree-of-freedom non-linear model is developed using Lagrange's equation. The model is used to estimate transient fan-stage dynamic response during a fan-blade-out event in a turbo fan engine. The coupled degrees of freedom in the model include the fan whirl in the fan plane, the torsional response of the fan and low-pressure turbines (LPTs) about the engine cen-terline, the radial position of the released blade fragment, and the angular rotation of the trailing blade from its free state due to acceleration of the released blade. The released blade is assumed to slide radially outward along the trailing blade without friction. The external loading applied to the system includes fan imbalance, the remaining fan blades machining away the rub strip, rubbing of the blades with the fan case, and slowly-varying torques on the low pressure (LP) spool as engine performance degrades. The machining of the abradable imparts tangential loading on the fan blades as momentum is transferred to the liberated rub strip material. After application of the initial conditions including angular positions, angular velocities, released blade fragment position, and torsional wind-up, the governing equations are integrated forward in time from the instant the blade fragment is released. A reasonable match to test data is shown. Parameters affecting the fan-system response are varied to study the impact on fan peak lateral whirl amplitude, peak LP shaft torque, and peak loading on the trailing blade. It is found that the rub strip and mass eccentricity have the strongest influence on the LP shaft torsional loading. It is found that mass eccentricity has the largest influence on peak fan whirl. It is also found that released blade mass and attachment stiffness have the largest influence on the trailing blade loading.
机译:使用拉格朗日方程建立了六自由度非线性模型。该模型用于估计涡轮风扇发动机中的风扇叶片熄灭事件期间的瞬态风扇级动态响应。模型中的耦合自由度包括风扇在风扇平面中的旋转,风扇和低压涡轮(LPT)围绕发动机中心的扭转响应,释放的叶片碎片的径向位置以及角度由于释放叶片的加速,后叶片从其自由状态开始旋转。假定释放的叶片沿后叶片径向向外滑动而没有摩擦。施加给系统的外部负载包括风扇不平衡,剩余的风扇叶片加工掉了摩擦条,叶片与风扇壳体的摩擦以及随着发动机性能下降而在低压(LP)阀芯上缓慢变化的扭矩。当动量传递到释放的摩擦条材料上时,可磨耗材料的加工会在风扇叶片上产生切向载荷。在施加包括角度位置,角速度,释放的叶片碎片位置和扭转缠绕的初始条件之后,控制方程式从叶片碎片被释放的那一刻起就被及时向前积分。显示了与测试数据的合理匹配。改变影响风扇系统响应的参数,以研究对风扇峰值横向涡流幅度,峰值LP轴扭矩和峰值对后叶片的影响。发现摩擦条和质量偏心距对LP轴的扭转载荷影响最大。发现质量偏心率对峰值风扇涡动具有最大的影响。还发现,释放的叶片质量和附接刚度对后叶片载荷具有最大的影响。

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