华南理工大学学报(自然科学版) ›› 2025, Vol. 53 ›› Issue (7): 1-.doi: 10.12141/j.issn.1000-565X.240353

• 土木建筑工程 •    

复杂环境下复合材料薄柱壳结构的双稳态特性

吴耀鹏  杨泉  刘莹   

  1. 西安建筑科技大学 土木工程学院, 陕西 西安 710055

  • 出版日期:2025-07-25 发布日期:2025-02-28

Bistable Behaviors of Composite Thin Cylindrical Shell in Complex Environment

WU Yaopeng  YANG Quan  LIU Ying   

  1. School of Civil Engineering, Xi’an University of Architecture and Technology,Xi’an 710055, Shaanxi,China

  • Online:2025-07-25 Published:2025-02-28

摘要:

建立含热膨胀系数和湿膨胀系数的复合材料薄柱壳理论模型,推导复杂环境下薄柱壳应变能的解析表达式。基于最小势能原理,研究环境参数对T700/Epoxy、T300/5028 Graphite-Epoxy和AS7/M21碳纤维/环氧树脂基复合材料柱壳应变能、扭曲率和第二稳态主曲率的影响。建立柱壳结构的有限元模型,数值模拟柱壳的双稳态变形过程,并将数值结果与理论结果进行对比分析。结果表明,T700/Epoxy、AS7/M21在20°C~120°C以及0%~1%湿度范围内柱壳的扭曲率相对稳定,最大应变能分别减少32.7%和9.1%;T300/5028 Graphite-Epoxy柱壳的应变能增量高达914.6%,表明高温、高湿对结构的双稳态性能影响显著。通过定量分析不同温湿条件下复合材料的力学性能,可为双稳态结构的材料选择及应用环境优化提供科学依据,有助于提升结构设计的可靠性和耐久性。

关键词: 双稳态, 复合材料, 柱壳, 复杂环境, 曲率

Abstract:

This paper aims to develop a theoretical model for thin cylindrical shells made of composite materials with thermal expansion and hygroscopic expansion coefficients. The analytical expression of strain energy under complex environmental conditions is derived. Based on the principle of minimum potential energy, the effects of environmental parameters on the strain energy, twist curvature, and secondary stable principal curvature of T700/Epoxy, T300/5028 Graphite-Epoxy, and AS7/M21 carbon fiber/epoxy resin-based composite cylindrical shells are studied. A finite element model of the cylindrical shell structure is established to numerically simulate the bistable deformation process of the shell, and the numerical results are compared with the theoretical results. The results show that the twist curvature of T700/Epoxy and AS7/M21 is relatively stable within the temperature range of 20°C to 120°C and humidity range of 0% to 1%, with maximum strain energy reductions of 32.7% and 9.1% respectively. The strain energy increment of T300/5028 Graphite-Epoxy cylindrical shells is as high as 914.6%, indicating that high temperature and high humidity have a significant impact on the bistable performance of the structure. Through quantitative analysis of the mechanical properties of composite materials under different temperature and humidity conditions, this study provides a scientific basis for the selection of materials and optimization of the application environment for bistable structures, contributing to the improvement of structural design reliability and durability.

Key words: bistable state, composite material, cylindrical shell, complex environment, curvature