航空航天
工程类
蜂巢
机身
变形
比模量
蜂窝结构
机械工程
灵活性(工程)
转子(电动)
直升机旋翼
机身
陶瓷复合材料
复合数
刚度
损伤容限
耐撞性
航空航天工程
先进复合材料
制造工程
韧性
夹层结构复合材料
空气动力学
陶瓷
结构工程
3D打印
汽车工业
推进
作者
A. Jaberi,A. Alimohammadi,S. Mahboubizadeh,E.N. Dresvyanina
出处
期刊:Reviews on advanced materials and technologies
[ITMO University]
日期:2025-09-30
卷期号:7 (3): 155-183
标识
DOI:10.17586/2687-0568-2025-7-3-155-183
摘要
In recent years, the aerospace industry has increasingly adopted composite materials and honeycomb structures to address the need for lightweight, high-performance, and energy-efficient designs. These advancements have led to the replacement of traditional metallic components with fiber-reinforced polymers, ceramic matrix composites, and advanced honeycomb cores in critical structural parts such as wings, fuselage skins, and rotor blades. Honeycomb sandwich panel structures, due to their superior specific stiffness and energy absorption capabilities, are widely used in both civilian and military aircraft. This paper investigates the mechanical performance, design applications, and manufacturing techniques of these structures. Special attention is given to the integration of gradient-density honeycomb cores, radar-absorbing materials, and morphing wing technologies that enhance aerodynamic efficiency and stealth capabilities. The study also addresses prevalent challenges such as impact resistance, lightning strike vulnerability, flutter phenomena, and water ingress, which can compromise structural integrity. Furthermore, the paper explores recent innovations in additive manufacturing and bioinspired designs that support the development of complex geometries and adaptive structures. This article is prepared as a comprehensive review, aiming to synthesize and critically evaluate recent advances in composite materials and multifunctional cellular structures in aerospace engineering.
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