基于 "之 "字形精炼理论的曲线纤维复合板的气动弹性行为

IF 2.2 3区 工程技术 Q2 MECHANICS
Panpan Hao, Jingbo Duan, Yating Liu, Yihang Gao, Yanmei Yue, Wei Wang
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引用次数: 0

摘要

提出了曲面纤维复合材料层压板在超音速气流作用下的气动弹性特性。在细化之字形理论的基础上,采用细化之字形理论描述面板,并利用准稳一阶活塞理论计算气动力。在考虑整个面板厚度上均匀分布的温度作为热负荷的情况下,采用有限元法,利用复模法求解气弹运动的离散方程。通过将计算结果与文献中的现有解决方案进行细致比较,证实了这一气热弹模型的有效性。与文献相比,目前曲线纤维复合材料层压板临界扑翼动压的最大误差为 0.16%。此外,还研究了不同的板理论,以探索气动弹性稳定性,包括曲线纤维复合材料层压板的平面、临界屈曲和极限循环振荡。详细讨论了曲线纤维角度和温升如何影响复合材料层压板的固有频率和扑动特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aerothermoelastic behaviors of curvilinear fiber composite panels based on the refined zig-zag theory

The aerothermoelastic characteristics of curved fiber composite laminated panels subjected to supersonic airflow are proposed. Based on the refined zig-zag theory, the refined zig-zag theory is adopted to describe the panel and the quasi-steady first-order piston theory is utilized for calculating the aerodynamic force. With considering uniformly distributed temperatures as thermal loads throughout the panel thickness, a finite element method is employed to solve the discretization equation of aerothermoelastic motion using the complex mode method. The validity of this aerothermoelastic model is substantiated through a meticulous comparison of computed results with existing solutions documented in the literature. The maximum error of the present critical flutter dynamic pressure of the curvilinear fiber composite laminates is 0.16% comparing with the literature. Furthermore, different plate theories are investigated to explore aerothermoelastic stability, including flat, critical buckling, and limit cycle oscillation for curvilinear fiber composite laminated panels. Detailed discussions are provided on how curvilinear fiber angle and temperature rise influence natural frequencies and flutter characteristics of composite laminates.

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来源期刊
CiteScore
4.40
自引率
10.70%
发文量
234
审稿时长
4-8 weeks
期刊介绍: Archive of Applied Mechanics serves as a platform to communicate original research of scholarly value in all branches of theoretical and applied mechanics, i.e., in solid and fluid mechanics, dynamics and vibrations. It focuses on continuum mechanics in general, structural mechanics, biomechanics, micro- and nano-mechanics as well as hydrodynamics. In particular, the following topics are emphasised: thermodynamics of materials, material modeling, multi-physics, mechanical properties of materials, homogenisation, phase transitions, fracture and damage mechanics, vibration, wave propagation experimental mechanics as well as machine learning techniques in the context of applied mechanics.
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