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A pilot model for investigating biodynamic coupling due to aeroservoelastic accelerations.

机译:一个试验模型,用于研究由于气动弹性加速产生的生物动力耦合。

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摘要

Supersonic Transport Aircraft tend to have slender fuselages with respect to their subsonic counterparts. This design feature leads to increased aeroservoelastic bending at low resonant frequencies closer to the frequencies of pilot commands and the corresponding rigid body accelerations. Aeroelastic accelerations of certain frequencies and phase lags at the pilot station have been seen to involuntarily pass through the pilot's body to the control inceptor. When the pilot commands rigid body accelerations in phase with the structural response, the structural accelerations grow. Thus biodynamic coupling represents the coupling between the feedthrough of pilot station acceleration through the pilot's body, with the pilot control strategy. A pilot model has been constructed to simulate the lateral-directional component of this interaction. The model attempts to break down the biodynamic coupling phenomenon into involuntary biodynamic feedthrough and cognitive commands that include rigid body control strategy and the aeroservoelastic response. The final model will generate maneuvers from predicted pilot control strategy and the resultant biodynamic feedthrough and coupling in the lateral axis when paired with an airplane model incorporating both rigid body and structural accelerations. Utilizing the resulting model, the impact of the phase lag of each integral part of the total system will be studied and shown to drastically impact the overall level of biodynamic coupling.
机译:超音速运输机相对于亚音速运输机而言机身纤细。这种设计特征导致在较低的共振频率下更接近航空器指令和相应的刚体加速度的频率的航空弹性弯曲增加。已经发现,飞行员位置上某些频率和相位滞后的气动弹性加速度会不随意地通过飞行员的身体到达控制感受器。当飞行员命令刚体加速度与结构响应同相时,结构加速度会增大。因此,生物动力耦合表示通过飞行员身体的飞行员站加速度馈通与飞行员控制策略之间的耦合。已经构建了一个试验模型来模拟这种相互作用的横向分量。该模型试图将生物动力耦合现象分解为非自愿的生物动力馈通和认知命令,其中包括刚体控制策略和航空弹性响应。当与结合了刚体和结构加速度的飞机模型配对时,最终模型将根据预测的飞行员控制策略以及由此产生的生物动力馈通和横轴耦合产生机动。利用得到的模型,将研究整个系统每个组成部分的相位滞后的影响,并显示将极大地影响生物动力耦合的整体水平。

著录项

  • 作者

    Cowen, Brandon.;

  • 作者单位

    Old Dominion University.;

  • 授予单位 Old Dominion University.;
  • 学科 Engineering Aerospace.;Engineering Mechanical.
  • 学位 M.Sc.
  • 年度 2011
  • 页码 70 p.
  • 总页数 70
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 古生物学;
  • 关键词

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