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Axially functionally graded beams and panels in supersonic airflow and their excellent capability for passive flutter suppression

机译:超音速气流中的轴向功能梯度梁和面板及其出色的被动颤振抑制能力

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Mode localization in the airflow direction can be observed in aeroelastic structures. On the contrary, can the aeroelastic stability of the structure be enhanced if the geometric sizes and material properties vary along the airflow direction? The present study mainly solves this problem. The mode localization phenomenon in panel flutter in supersonic airflow is displayed. Three arbitrary thickness functions according to the flutter mode are taken into account. Their panel flutter behaviors show that although the consistency between the variation of thickness and flutter mode can increase the flutter bound slightly, the increments are limited. Consequently, a novel strategy for passive control of the panel flutter is proposed by the optimal axially functionally graded (AFG) design of the panel. By investigating the sensitivity of each element in the aerodynamic stiffness matrix to the aeroelastic stability of the structure, the optimal thickness and Young's modulus functions are given out. Simulation results show that the optimal AFG design in this study can suppress the flutter essentially. It can increase the flutter bound of the structure by changing the flutter modes rather than only makes a slight extension on the original basis. Moreover, the designed thickness and Young's modulus are reasonable and applicable. (C) 2019 Elsevier Masson SAS. All rights reserved.
机译:在空气弹性结构中可以观察到在气流方向上的模式定位。相反,如果几何尺寸和材料特性沿气流方向变化,是否可以增强结构的气动弹性稳定性?本研究主要解决了这一问题。显示了超声气流中面板颤振中的模式定位现象。考虑了根据颤动模式的三个任意厚度函数。他们的面板颤振行为表明,尽管厚度变化和颤振模式之间的一致性可以稍微增加颤振边界,但是增量受到限制。因此,通过面板的最佳轴向功能梯度(AFG)设计,提出了一种用于面板颤振被动控制的新颖策略。通过研究气动刚度矩阵中每个元素对结构气动弹性稳定性的敏感性,给出了最佳厚度和杨氏模量函数。仿真结果表明,本研究中的最佳AFG设计可以从根本上抑制抖动。它可以通过更改颤动模式来增加结构的颤动边界,而不是仅在原始基础上进行少许扩展。而且,设计的厚度和杨氏模量是合理和适用的。 (C)2019 Elsevier Masson SAS。版权所有。

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