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Aerodynamic modeling of an aircraft in atmospheric turbulence and correlation to hazard.

机译:飞机在大气湍流中的空气动力学模型及其与危害的关系。

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摘要

Improving aviation safety has become a focal point of present aeronautics research. Quantifying and predicting the hazards of flight into atmospheric turbulence is one area of interest. The present research investigates and extends the use of aerodynamic modeling techniques to better enhance the representation of nonlinear, unsteady effects in a turbulence encounter. The focus of the research is on flight dynamic, versus structural loads, aspects. Flight data from an intentional atmospheric turbulence penetration was used along with fuzzy logic techniques to develop and enhance longitudinal and lateral-directional aerodynamic coefficient models. These models indicated the presence of nonlinear and unsteady aerodynamic effects, including lateral-directional coupling into the longitudinal axis. Effective mass and damping were proposed as one means to correlate loads-induced hazards to the aerodynamic response of the aircraft, which were compared with results from an actual passenger flight. The results suggest that the cause of fast plunging motion may be shock-induced stall in largely static motion, i.e., low reduced frequency, whereas in oscillatory motion with higher reduced frequencies, dynamic stall may inhibit fast plunging motion. Therefore, some form of hazard index may relate to the magnitude of effective damping in plunging motion, or alternatively to the measure of unsteadiness in the aerodynamics of the encounter. A control strategy for countering a rapid plunge may benefit from means to artificially drive unsteady aerodynamic effects.
机译:改善航空安全已成为当前航空研究的重点。量化和预测飞行进入大气湍流的危险是人们关注的领域之一。本研究调查并扩展了空气动力学建模技术的使用,以更好地增强湍流相遇中非线性,非稳态效应的表示。研究的重点是飞行动力与结构载荷的关系。来自故意大气湍流穿透的飞行数据与模糊逻辑技术一起用于开发和增强纵向和横向空气动力学系数模型。这些模型表明存在非线性和不稳定的空气动力学效应,包括横向耦合到纵轴。提出了有效的质量和阻尼作为将载荷引起的危险与飞机的空气动力响应相关联的一种手段,并将其与实际乘客飞行的结果进行了比较。结果表明,快速跳入运动的原因可能是在很大程度上静止运动(即,降低的频率较低)中由震动引起的失速,而在具有较高降低的频率的振荡运动中,动态失速可能会抑制快速跳入运动。因此,某种形式的危险指数可能与突然运动中有效阻尼的大小有关,或者与遭遇的空气动力学不稳定有关。应对快速下降的控制策略可能会受益于人为驱动不稳定空气动力效应的手段。

著录项

  • 作者

    Stuever, Robert A.;

  • 作者单位

    University of Kansas.$bAerospace Engineering.;

  • 授予单位 University of Kansas.$bAerospace Engineering.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空、航天技术的研究与探索;
  • 关键词

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