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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >Non-linear panel flutter for temperature-dependent functionally graded material panels
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Non-linear panel flutter for temperature-dependent functionally graded material panels

机译:非线性面板颤振,用于温度相关的功能梯度材料面板

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摘要

The non-linear flutter and thermal buckling of an FGM panel under the combined effect of elevated temperature conditions and aerodynamic loading is investigated using a finite element model based on the thin plate theory and von Karman strain-displacement relations to account for moderately large deflection. The aerodynamic pressure is modeled using the quasi-steady first order piston theory. The governing non-linear equations are obtained using the principal of virtual work adopting an approach based on the thermal strain being a cumulative physical quantity to account for temperature dependent material properties. This system of non-linear equations is solved by Newton-Raphson numerical technique. It is found that the temperature increase has an adverse effect on the FGM panel flutter characteristics through decreasing the critical dynamic pressure. Decreasing the volume fraction enhances flutter characteristics but this is limited by structural integrity aspect. The presence of aerodynamic flow results in postponing the buckling temperature and in suppressing the post buckling deflection while the temperature increase gives way for higher limit cycle amplitude.
机译:利用基于薄板理论和von Karman应变-位移关系的有限元模型,研究了高温条件和气动载荷共同作用下FGM面板的非线性颤动和热屈曲,以解决中等偏大的问题。气动压力是使用准稳态一阶活塞理论建模的。控制非线性方程式是使用虚拟工作原理通过采用基于热应变的方法获得的,该方法基于热应变是一种累积的物理量,以解决与温度相关的材料特性。该非线性方程组通过牛顿-拉夫森数值技术求解。发现温度升高通过降低临界动压力而对FGM面板的颤动特性产生不利影响。减小体积分数可增强颤振特性,但这受到结构完整性方面的限制。空气动力流的存在导致屈曲温度的延迟和屈曲后挠度的抑制,而温度升高则让位于更高的极限循环幅度。

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