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Quantifying and scaling airplane performance in turbulence.

机译:量化和缩放湍流中的飞机性能。

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This dissertation studies the effects of turbulent wind on airplane airspeed and normal load factor, determining how these effects scale with airplane size and developing envelopes to account for them. The results have applications in design and control of aircraft, especially small scale aircraft, for robustness with respect to turbulence. Using linearized airplane dynamics and the Dryden gust model, this dissertation presents analytical and numerical scaling laws for airplane performance in gusts, safety margins that guarantee, with specified probability, that steady flight can be maintained when stochastic wind gusts act upon an airplane, and envelopes to visualize these safety margins.;Presented here for the first time are scaling laws for the phugoid natural frequency, phugoid damping ratio, airspeed variance in turbulence, and flight path angle variance in turbulence. The results show that small aircraft are more susceptible to high frequency gusts, that the phugoid damping ratio does not depend directly on airplane size, that the airspeed and flight path angle variances can be parameterized by the ratio of the phugoid natural frequency to a characteristic turbulence frequency, and that the coefficient of variation of the airspeed decreases with increasing airplane size. Accompanying numerical examples validate the results using eleven different airplanes models, focusing on NASA's hypothetical Boeing 757 analog the Generic Transport Model and its operational 5.5% scale model, the NASA T2.;Also presented here for the first time are stationary flight, where the flight state is a stationary random process, and the stationary flight envelope, an adjusted steady flight envelope to visualize safety margins for stationary flight. The dissertation shows that driving the linearized airplane equations of motion with stationary, stochastic gusts results in stationary flight. It also shows how feedback control can enlarge the stationary flight envelope by alleviating gust loads, though the enlargement is significantly limited by control surface saturation. The results end with a numerical example of a Navion general aviation aircraft performing various steady flight maneuvers in moderate turbulence, showing substantial reductions in the steady flight envelope for some combinations of maneuvers, turbulence, and safety margins.
机译:本文研究了湍流风对飞机空速和正常负荷率的影响,确定了这些影响如何随飞机尺寸而变化,并发展出包络来解决这些问题。该结果在飞机,特别是小型飞机的设计和控制中具有湍流鲁棒性的应用。利用线性化的飞机动力学和Dryden阵风模型,本文给出了阵风中飞机性能的解析和数值缩放定律,安全裕度,以随机概率保证当随机阵风作用于飞机上时能够保持稳定的飞行,以及包络可视化这些安全裕度。首次在此展示的是飞石固有频率,飞石阻尼比,湍流中的空速方差以及湍流中的飞行路径角方差的缩放定律。结果表明,小型飞机更容易受到高频阵风的影响,斜面阻尼比并不直接取决于飞机的大小,空速和飞行路径角度的变化可以通过斜面自然频率与特征湍流之比来参数化频率,并且空速变化系数随飞机尺寸的增加而减小。伴随的数值示例使用11种不同的飞机模型验证了结果,重点是NASA的假设波音757模拟通用运输模型及其可操作的5.5%比例模型NASA T2。这也是首次在此展示的是固定飞行,状态是固定的随机过程,固定飞行包线是调整后的稳定飞行包线,以可视化固定飞行的安全裕度。论文表明,以平稳,随机阵风驱动线性化的飞机运动方程会导致平稳的飞行。它还显示了反馈控制如何通过减轻阵风载荷来扩大固定飞行范围,尽管这种扩大受到控制面饱和度的明显限制。结果以一个Navion通用航空飞机在中等湍流下执行各种稳定飞行操纵的数值示例结尾,显示出操纵,湍流和安全裕度的某些组合在稳定飞行范围内的显着降低。

著录项

  • 作者

    Richardson, Johnhenri R.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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