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Structural design optimization of a tiltrotor aircraft composite wing to enhance whirl flutter stability

机译:倾转旋翼飞机复合机翼的结构设计优化,以增强旋振稳定性

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摘要

In order to enhance the aeroelastic stability of a tiltrotor aircraft, a structural optimization framework is developed by applying a multi-level optimization approach. Each optimization level is designed to achieve a different purpose; therefore, relevant optimization schemes are selected for each level. Enhancement of the aeroelastic stability is selected as an objective in the upper-level optimization. This is achieved by seeking the optimal structural properties of a composite wing, including its mass, vertical, chordwise, and torsional stiffness. In the upper-level optimization, the response surface method (RSM), is selected. On the other hand, lower-level optimization seeks to determine the local detailed cross-sectional parameters, such as the ply orientation angles and ply thickness, which are relevant to the wing structural properties obtained at the upper-level. To avoid manufacturing difficulties, only a few discrete ply orientation angles and an integral number of plies are considered as constraints. A genetic algorithm is selected as the optimizer at the lower-level. Use of the upper-level optimization causes a 13-18% increase in the flutter speed when compared to the baseline configuration. In the lower-level optimization, the optimization results were obtained considering the resulting failure margin and the location of the shear center.
机译:为了提高倾转旋翼飞机的气动弹性稳定性,通过应用多级优化方法来开发结构优化框架。每个优化级别都旨在实现不同的目的。因此,为每个级别选择相关的优化方案。在上级优化中,选择提高气动弹性稳定性为目标。这是通过寻找复合材料机翼的最佳结构特性(包括其质量,垂直,弦向和扭转刚度)来实现的。在上层优化中,选择了响应面法(RSM)。另一方面,较低层的优化试图确定局部的详细横截面参数,例如层定向角和层厚度,这些参数与在较高层获得的机翼结构特性有关。为了避免制造困难,仅将几个离散的层定向角和整数个层视为约束。遗传算法被选为较低级别的优化器。与基线配置相比,使用上级优化会导致颤振速度提高13-18%。在较低级别的优化中,考虑到最终的失效余量和剪切中心的位置,获得了优化结果。

著录项

  • 来源
    《Composite Structures》 |2013年第1期|283-294|共12页
  • 作者单位

    Wind Energy Department, Technical University of Denmark, Rise Campus, Building 114, Roskilde 4000, Denmark;

    Schooi of Mechanical and Aerospace Engineering, Building 301, Room 1357, Seoul National University, Seoul 151-744, Republic of Korea;

    School of Mechanical and Aerospace Engineering, Institute of Advanced Aerospace Technology, Building 301, Room 1418, Seoul National University, Seoul 151-744, Republic of Korea;

    Rotor Team, Korea Aerospace Research Institute, 45 Eoeun-dong, Yuseong-gu, Daejeon 305-333, Republic of Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    multi-level optimization; response surface method; tiltrotor aircraft; whirl flutter analysis; composite wing;

    机译:多级优化;响应面法俯仰旋翼飞机旋振分析;复合机翼;

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