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Aero-thermoelastic stability of functionally graded plates

机译:功能梯度板的气动热弹性稳定性

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摘要

In this paper, an analytical investigation intended to determine the aero-thermoelastic stability margins of functionally graded panels is carried out. For this purpose, piston theory aerodynamics has been employed to model quasi-steady aerodynamic loading. The material properties of the plate are assumed to be graded continuously across the panel thickness. A simple power-law and the Mori-Tanaka scheme are used for estimating the effective material properties such as temperature-dependent thermoelastic properties. The effects of compressive in-plane loads and both uniform and through the thickness non-linear temperature distributions are also considered. Hamilton's principle is used to determine the coupled partial differential equations of motion. Using Galerkin's method, the derived equations are transformed into a set of coupled ordinary differential equations, and then solved by numerical time integration. Some examples comparing the stability margins of functionally graded panels with those of plates made of pure metals and pure ceramics are presented. It is shown that the use of functionally graded materials can yield an increase or decrease of the aeroelastic stability in the supersonic flow for different regions.
机译:在本文中,进行了旨在确定功能梯度板的气动热弹性稳定性裕度的分析研究。为此,已采用活塞理论空气动力学来模拟准稳态空气动力学载荷。假定板的材料属性在整个板厚度上连续分级。使用简单的幂律和Mori-Tanaka方案来估算有效的材料特性,例如与温度有关的热弹性特性。还考虑了压缩面内载荷的影响,以及均匀和整个厚度非线性温度分布的影响。汉密尔顿原理用于确定运动的耦合偏微分方程。使用Galerkin方法,将导出的方程转换为一组耦合的常微分方程,然后通过数值时间积分求解。给出了一些例子,比较了功能梯度板与由纯金属和纯陶瓷制成的板的稳定性裕度。结果表明,功能梯度材料的使用可以在不同区域的超声速流动中增加或降低气动弹性稳定性。

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