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Testing-Based Approach to Determining the Divergence Speed of Slung Loads

机译:基于测试的确定倾斜负载发散速度的方法

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When a rotorcraft carries an external slung load, flight speed is often limited by the fear of divergent oscillations, rather than vehicle performance. Since slung objects can be of any shape, incorporating the aerodynamics with sufficient accuracy to predict safe speed has been a problem. The uncertainty forces certifying authorities to set conservative limits on speed to avoid divergence. Obtaining the aerodynamic coefficients of bluff bodies was excessively time-consuming in experiments, and impractical in computations. This review traces the evolution of progress in the area. Prior thinking was to use computations for prediction, with the computational codes validated using a few samples of experiments. This approach has not led to valid general predictions. Data were sparse and a-priori predictions were rarer. A continuous rotation approach has enabled swift measurements of 6-degrees-of-freedom aerodynamic load maps with high resolution about several axes of rotation. The resulting knowledge base in turn permits a swift determination of dynamics up to divergence, with wind tunnel tests where necessary to fill interpolation gaps in the knowledge base. The essence of efficient and swift dynamics simulation with a few well-tested assumptions is described. Under many relevant conditions, the vehicle flight dynamics can be safely decoupled from those of the slung load. While rotor wake swirl causes the payload to rotate at liftoff and landing, this effect can be incorporated into the simulation. Recent success in explaining two well-documented flight test cases provides strong evidence that predictions can be made for most missions swiftly.
机译:当旋翼航空器承受外部悬吊负载时,飞行速度通常受发散振荡(而不是飞行器性能)的担忧所限制。由于悬挂的物体可以是任何形状,因此以足够的精度结合空气动力学来预测安全速度一直是一个问题。这种不确定性迫使认证机构对速度设置保守的限制,以避免差异。获得钝体的空气动力学系数在实验中非常耗时,并且在计算中不切实际。这篇评论追踪了该地区进展的演变。先前的想法是将计算用于预测,并使用一些实验样本来验证计算代码。这种方法没有导致有效的一般预测。数据稀疏,先验预测少见。连续旋转方法可以快速测量6个自由度的气动负载图,并具有围绕多个旋转轴的高分辨率。所得的知识库进而允许快速确定直至发散的动力学,并在必要时进行风洞测试以填补知识库中的内插间隙。描述了一些经过充分测试的假设的高效,快速动力学仿真的本质。在许多相关条件下,可以将车辆飞行动力学与倾斜负载的动力学安全地分离。转子尾流涡旋导致有效载荷在升空和着陆时旋转时,可以将此效果纳入仿真中。最近在解释两个有据可查的飞行测试用例方面的成功提供了有力的证据,表明可以对大多数任务迅速做出预测。

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