气动弹性
颤振
结构工程
空气动力学
超音速
悬臂梁
休克(循环)
夹层结构复合材料
振动
阻塞流
空气动力
机械
动压
材料科学
不稳定性
伽辽金法
参数统计
马赫数
流离失所(心理学)
工程类
蜂巢
边值问题
流量(数学)
高超音速
蜂窝结构
作者
Jianfei WANG,Shuang Zhao,Dongxing Cao,Yue Jiang
标识
DOI:10.1142/s0219455427503500
摘要
Flutter is a critical aeroelastic instability of panel structures under aerodynamic loading, which may cause severe vibration and structural failure in high-speed flight. Most flutter analyses in supersonic are conducted with the traditional stable-flow assumption, and the shock-induced instability subjected to spatially varying aerodynamic pressure remains insufficiently explored. The present study investigates the effects of key structural parameters and shock-related aerodynamic variations on the critical aerodynamic pressure and transient vibration response of the cantilever honeycomb sandwich panel in yawed supersonic flow. In the theoretical model, the first-order piston theory is employed in the pre-shock and post-shock regions separately to estimate the aerodynamic pressure discontinuous flow. The aeroelastic governing equations are derived via Hamilton’s principle based on classical plate theory with von Karman strain-displacement relations, and then spatially discretized using the Galerkin method. The flutter boundary is obtained by solving the resulting eigenvalue problem, followed by a systematic parametric study accounting for structural parameters and shock characteristics. Subsequently, the fourth-order Runge-Kutta method is applied to integrate the governing equations in the time domain, and the vibration response of the panel is analyzed through time history and wavelet transform. This study provides guidance for the aeroelastic stability design and optimization of cantilever honeycomb sandwich panels.
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