Research progress of carbon fiber sizing agents for thermoplastic composites

被引:0
|
作者
Zhou D. [1 ]
Gao L. [1 ]
Huo H. [1 ]
Zhang B. [1 ,2 ]
机构
[1] AVIC Manufacturing Technology Institute Composite Technology Center, Beijing
[2] National Key Laboratory of Science and Technology on Advanced Composites, Beijing
关键词
Composite; Interface property; Sizing agent; Surface treatment; Thermoplastic resin;
D O I
10.13801/j.cnki.fhclxb.20200507.001
中图分类号
学科分类号
摘要
With the rapid development of thermoplastic composites, traditional sizing agents are no longer able to meet the requirements as its incompatibility with thermoplastic matrices and low heat resistance. In light of this, it is fairly significant to master the technologies of sizing agents suitable for high performance thermoplastic composites. Brief introductions including chief purposes of sizing treatment, strengthening mechanisms at the interfaces between reinforcements and matrices, distinguishing features as well as main requirements of carbon fiber sizing agents for thermoplastic composites were presented in this paper. Researches of novel carbon fiber sizing agents consisting of polyamide, polyurethane, polyaryl ether, polyimide and other constituents for various thermoplastic matrices were reviewed in the order of service temperature. Both modification routes of diverse sizing agents for high performance thermoplastic composites and commercial applications provided by carbon fiber manufacturers were presented with their relative merits and existing drawbacks. Furthermore, their corresponding mechanisms and development status were also clarified. Finally, the future trends of sizing agents for thermoplastic composites were forecasted with relevant suggestions provided subsequently in view of different sizing agents to overcome current problems. © 2020, Editorial Office of Acta Materiae Compositae Sinica. All right reserved.
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页码:1785 / 1795
页数:10
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  • [1] SU Y S, ZHANG D, GONG X L, Et al., Mechanical behavior in bending deformation of thermoplastic composite laminates with different stacking sequences, Journal of Composite Materials, 50, 8, pp. 1037-1048, (2015)
  • [2] BORIA S, SCATTINA A, BELINGARDI G., Impact behavior of a fully thermoplastic composite, Composite Structures, 167, pp. 63-75, (2017)
  • [3] LU K, SHANKAR K., Wrinkling behavior of a woven thermoplastic composite material, Materials Science Forum, 893, pp. 26-30, (2017)
  • [4] SHI F H, DAI Z S, ZHANG B Y., Characterization of surface properties of carbon fibers and interfacial properties of carbon fiber reinforced matrix composites, Journal of Aeronautical Materials, 30, 3, pp. 43-47, (2010)
  • [5] WU Z J, CUI H Y, CHEN L, Et al., Interfacially reinforced unsaturated polyester carbon fiber composites with a vinyl ester-carbon nanotubes sizing agent[J], Composites Science and Technology, 164, pp. 195-203, (2018)
  • [6] DAI Z S, ZHANG B Y, SHI F H, Et al., Chemical interaction between carbon fibers and surface sizing[J], Journal of Applied Polymer Science, 124, 3, pp. 2127-2132, (2012)
  • [7] GAMZE KARSLI N, OZKAN C, AYTAC A, Et al., Effects of sizing materials on the properties of carbon fiber-reinforced polyamide 6, 6 composites, Polymer Composites, 34, 10, pp. 1583-1590, (2013)
  • [8] LU J T, YAN C, XU H B, Et al., Research progress on thermoplastic sizing agent for carbon fibers, Fiber Reinforced Plastics/Composites, 6, pp. 94-99, (2017)
  • [9] ZHANG B Y., Interfacial technology of advanced composites, (2017)
  • [10] ZHANG F F., Raw materials for advanced thermoplastic resin prepreg, Hi-Tech Fiber & Application, 39, 3, pp. 1-6, (2014)