1. 浙江大学,杭州,310058
2. 航空工业沈阳飞机工业(集团)有限公司,沈阳,110034
3. 杭州师范大学,杭州,310036
纸质出版:2026
移动端阅览
张永亮, 姜杰凤, 张辉, 等. 飞机复合材料壁板装配应力控制技术研究现状与展望[J]. 航空制造技术, 2026,69(1/2).
ZHANG Yongliang, JIANG Jiefeng, ZHANG Hui, et al. Research Status and Prospect of Stress Control Technology for Aircraft Composite Panel Assembly[J]. Aeronautical Manufacturing Technology, 2026, 69(1/2).
张永亮, 姜杰凤, 张辉, 等. 飞机复合材料壁板装配应力控制技术研究现状与展望[J]. 航空制造技术, 2026,69(1/2). DOI: 10.16080/j.issn1671-833x.25010039.
ZHANG Yongliang, JIANG Jiefeng, ZHANG Hui, et al. Research Status and Prospect of Stress Control Technology for Aircraft Composite Panel Assembly[J]. Aeronautical Manufacturing Technology, 2026, 69(1/2). DOI: 10.16080/j.issn1671-833x.25010039.
碳纤维增强树脂基复合材料(Carbon fiber reinforced polymer,CFRP)凭借优异的比强度–刚度特性、耐环境腐蚀性及结构可设计性,已成为新一代航空飞行器主承力构件轻量化设计的核心材料体系。然而,受材料本征各向异性力学行为与层间界面弱结合特性制约,CFRP构件在装配过程中易因制造公差累积效应与装配协调性要求,诱发变形与应力集中,严重时会导致纤维/基体界面脱黏、层间剪切失效及基体微裂纹扩展等不可逆损伤。本文面向飞机复合材料壁板装配应力协调控制需求,综合考虑装夹定位、间隙补偿、机械连接等关键工艺环节,从定位布局优化与在线调控、间隙测量与填隙补偿、连接工艺控制等方面,综述了国内外相关技术研究和应用现状,指出了复合材料壁板装配应力控制技术未来发展方向,为复合材料柔性部件少/无应力装配提供参考。
Carbon Fiber Reinforced Polymer (CFRP) has become a core material for the lightweight design of primary load-bearing components in next-generation aircraft
owing to its high specific strength and stiffness
corrosion resistance
and structural tailorability. However
due to the intrinsic anisotropic mechanical behavior and weak interlaminar strrength
CFRP components are prone to non-uniform deformation and stress distribution during assembly
resulting from accumulated manufacturing tolerances and assembly coordination requirements. In severe cases
this can lead to irreversible damage modes such as fiber/matrix interface debonding
interlaminar shear failure
and matrix microcrack propagation. Focusing on the need for stress control during the assembly of aircraft composite panels
this study comprehensively considers key process steps including clamping and positioning
gap compensation
and mechanical joining. It reviews the current state of research and application of related technologies domestically and internationally—from the optimization and online adjustment of positioning layouts
gap measurement and compensation
to process control in mechanical joining. Future development directions for stress control technology in composite panel assembly are proposed
providing a reference for low- or no-stress assembly of flexible composite components.
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