Effect of polysiloxane modified epoxy on high temperature residual strength of glass fiber/phenolic composites

被引:0
|
作者
Li C. [1 ]
Li S. [2 ,3 ,4 ,5 ]
Ji Y. [1 ,2 ]
Cao D. [2 ,4 ,5 ]
Hu H. [3 ,4 ,5 ]
Chen Z. [1 ]
机构
[1] School of Materials Science and Engineering, Wuhan University of Technology, Wuhan
[2] State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan
[3] Hubei Key Laboratory of Theory and Application of Advanced Materials Mechanics, Wuhan University of Technology, Wuhan
[4] Foshan Xianhu Laboratory of the Advanced Energy Science and Technology Guangdong Laboratory, Foshan
[5] Institute of Advanced Materials and Manufacturing Technology, Wuhan University of Technology, Wuhan
基金
中国国家自然科学基金;
关键词
composite; high temperature residual strength; oxidative degradation; phenolic resin; polysiloxane modified epoxy resin;
D O I
10.13801/j.cnki.fhclxb.20230301.001
中图分类号
学科分类号
摘要
The ASTM 3059-18 standard incorporated high temperature residual mechanical properties into the flame retardant index of resin matrix composites, which broke through the traditional chemical flame retardant concept of composites, and marked that the concept of structural flame-retardant has been valued by the designer. In this work, the self-made polysiloxane modified epoxy resin (EP-Si) was blended with phenolic resin (PF), supplemented with inorganic powder and glass fiber reinforcement. The effects of polysiloxane modified epoxy resin and inorganic powder on the high temperature residual strength of glass fiber/phenolic composites were studied by means of mechanical properties, thermogravimetric analysis (TGA), cone calorimeter (CCT) and scanning electron microscope (SEM). The experimental results show that when the amount of EP-Si is 40wt%, the flexural strength and high temperature residual flexural strength of the composite is 384.4 MPa and 53.3 MPa, respectively, which is 78.7% and 85.1% higher than PF composite. With appropriate proportion of inorganic powder, the maximum residual flexural strength can reach 85.1 MPa, which is 195.5% higher than PF composite. After heat-treated, PF composite containing silicon expands along thickness, while PF composite shrinks along thickness. The pyrolysis residual rate of the PF composite containing silicon is higher and oxidative degradation of the surface layer is faster, but the content of CO generated in the inner layer is lower than that of PF composite. The inorganic pyrolysis product of resin matrix containing silicon protects inner layer resin and fibers. The distribution of the in-situ pyrolysis inorganic product is more uniform, the good compatibility with inorganic powder and possible co-sintering effect further isolates the oxygen intrusion, improves structural integrity and high temperature residual strength. © 2023 Beijing University of Aeronautics and Astronautics (BUAA). All rights reserved.
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页码:6619 / 6629
页数:10
相关论文
共 38 条
  • [1] YANG Xiaoguang, JIA Xuhong, XU Songtao, Et al., Fire hazard evaluation of phenolic resin/glass fiber aircraft cargo lining composite material[J], Fire Science and Technology, 41, 3, pp. 367-370, (2022)
  • [2] REN X W, ZHU Y P, WANG F, Et al., Flame-retardant properties of polyester fabrics reinforced phenolic resin modified with silazanes composites[J], Advanced Materials Research, 1120-1121, 1, pp. 519-522, (2015)
  • [3] AVILA M B, DEMBSEY N A, DORE C., Effect of resin type and glass content on the reaction to fire characteristics of typical FRP composites, Composites Part A: Applied Science and Manufacturing, 39, 9, pp. 1503-1511, (2008)
  • [4] Standard spec-ification for fiber-reinforced polymer (FRP) gratings used in marine construction and shipbuilding: ASTM F3059-18, (2018)
  • [5] HUA Youqing, JIN Riguang, Polymer physics, (2013)
  • [6] ZHANG X P, ZHANG L X, ZHANG D X, Et al., Mechanism of the temperature-responsive material regulating porous morphology on epoxy phenolic novolac resin microcapsule surface[J], Colloids and Surfaces A: Physicochemical and Engineering Aspects, 593, (2020)
  • [7] KNOP A, PILATO L A., Phenolic resins: Chemistry, applications and performance, pp. 139-147, (2013)
  • [8] YAN Kan, HUANG Peng, Application of composite materials in marine engineering, Fiber Reinforced Plastics/Composites, 12, pp. 99-104, (2017)
  • [9] SUTHERLAND L S., A review of impact testing on marine composite materials: Part I-Marine impacts on marine composites[J], Composite Structures, 188, pp. 197-208, (2018)
  • [10] SHI Jinkun, LIU Hui, ZHANG Xiwei, Et al., Application of composite materials protector in the subsea of offshore oil, Composites Science and Engineering, 12, pp. 78-81, (2021)