Semianalytical Research on Aerothermoelastic Behaviors of Functionally Graded Plates under Arbitrary Temperature Fields in Hypersonic Vehicles

Chang Li, Zhiqiang Wan, Xiaozhe Wang, Chao Yang, Keyu Li
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Abstract

Hypersonic vehicles are susceptible to considerable aerodynamic heating and noticeable aerothermoelastic effects during flight due to their high speeds. Functionally graded materials (FGMs), which enable continuous changes in material properties by varying the ratio of different materials, provide both thermal protection and load-bearing capabilities. Therefore, they are widely used in thermal protection structures for hypersonic vehicles. In this work, the aerothermoelastic behaviors of functionally graded (FG) plates under arbitrary temperature fields are analyzed via a semianalytical method. This research develops a method considering the influence of thermal loading, specifically the decrease in stiffness due to thermal stresses, as well as the correlation between material properties and temperatures under arbitrary temperature fields, based on Ritz’s method. The classical plate theory, von–Karman’s large defection plate theory and piston theory are employed to formulate the strain energy, kinetic energy and external work functions of the system. This paper presents a novel analysis of static aerothermoelasticity of FG plates, in addition to the linear/nonlinear flutter under arbitrary temperature fields, such as uniform, linear and nonlinear temperature fields. In addition, the effects of the volume fraction index, dynamic pressure, and temperature increase on the aerothermoelastic characteristics of FG plates are analyzed.
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高超声速飞行器中任意温度场下功能分级板的气动热弹性行为的半解析研究
高超音速飞行器在飞行过程中由于速度较高,很容易产生大量气动热和明显的气动热弹效应。功能分级材料(FGM)可通过改变不同材料的比例实现材料性能的持续变化,具有热保护和承载能力。因此,它们被广泛应用于高超音速飞行器的热防护结构中。在这项工作中,通过半解析方法分析了功能分级(FG)板在任意温度场下的气动弹性行为。这项研究基于里茨方法,开发了一种考虑热负荷影响的方法,特别是热应力导致的刚度下降,以及任意温度场下材料特性与温度之间的相关性。本文采用经典的板块理论、von-Karman 大变形板块理论和活塞理论来计算系统的应变能、动能和外功函数。本文对 FG 板的静态气动弹性进行了新颖的分析,此外还分析了在任意温度场(如均匀、线性和非线性温度场)下的线性/非线性扑动。此外,还分析了体积分数指数、动态压力和温度升高对 FG 板气弹特性的影响。
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