Mechanics of reinforcement in a hybrid graphene and continuous glass fibre reinforced thermoplastic

被引:9
|
作者
Liu, Mufeng [1 ]
Lin, Kailing [1 ]
Yao, Xudan [1 ]
Valles, Cristina [1 ]
Bissett, Mark A. [1 ]
Young, Robert J. [1 ]
Kinloch, Ian A. [1 ]
机构
[1] Univ Manchester, Natl Graphene Inst, Henry Royce Inst, Dept Mat, Oxford Rd, Manchester M13 9PL, Lancs, England
基金
英国工程与自然科学研究理事会;
关键词
GFRP; Graphene nanoplatelets; PP-MAH; Polypropylene; Micromechanics; NANOPLATELETS; POLYPROPYLENE; COMPOSITES; MICROSTRUCTURE; NANOCOMPOSITES; ORIENTATION;
D O I
10.1016/j.compscitech.2023.110001
中图分类号
TB33 [复合材料];
学科分类号
摘要
Hybrid nanomaterial-fibre-reinforced polymer composites show considerable promise but are often limited by the poor dispersion of the nanofillers, with filtering by the fibre weave being a common issue. Herein, a hybrid continuous glass fibre reinforced polymer (GFRP) was prepared based upon a polypropylene matrix, woven E -glass fibre (GF) and graphene nanoplatelets (GNP). The GNP flakes were melt-mixed with a polypropylene-graft- maleic anhydride (PP-MAH) compatibiliser and then melt-coated onto the GF mats, followed by layer-by-layer assembly using polypropylene films and coated fibre mats in a hot press. It was found that the stiffness and strength of the GFRP were increased by up to-3 GPa (25%) and-120 MPa (95%), respectively, by the addition of up to only -1.7 vol% of the GNP, to the composite. The experimental results enable us to extend our previous theory of mechanics of reinforcement by 2D materials to FRP. In-situ Raman band shift measurements on the flakes close to the glass fibres under strain found that the effective modulus of the flake is-130 GPa, indicating that a higher reinforcing efficiency of graphene was obtained in the FRP than in neat polymers due to improved local reinforcement effect of the matrix in the FRP.
引用
收藏
页数:8
相关论文
共 50 条
  • [31] Continuous fibre-reinforced thermoplastic profiles. Review of the state of technology in the field of thermoplastic pultrusion
    Michaeli, W
    Blaurock, J
    KUNSTSTOFFE-PLAST EUROPE, 1998, 88 (05): : 685 - +
  • [32] Flexural fatigue behaviour of random continuous-fibre-reinforced thermoplastic composites
    Caprino, G
    D'Amore, A
    COMPOSITES SCIENCE AND TECHNOLOGY, 1998, 58 (06) : 957 - 965
  • [33] DETERMINATION OF MECHANICAL PROPERTIES OF ADDITIVE MANUFACTURED CONTINUOUS FIBRE REINFORCED THERMOPLASTIC COMPOSITES
    Sedlacek, Frantisek
    Raz, Karel
    Chval, Zdenek
    7TH INTERNATIONAL CONFERENCE INTEGRITY-RELIABILITY-FAILURE (IRF2020), 2020, : 31 - 32
  • [34] Manufacturing of centrifuged continuous fibre-reinforced precision pipes with thermoplastic matrix
    Ehleben, Max
    Schuermann, Helmut
    COMPOSITES SCIENCE AND TECHNOLOGY, 2006, 66 (15) : 2601 - 2609
  • [35] Roll forming continuous fibre-reinforced thermoplastic sheets: experimental analysis
    Dykes, RJ
    Mander, SJ
    Bhattacharyya, D
    COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2000, 31 (12) : 1395 - 1407
  • [36] Fabrication and characterization of in situ structural health monitoring hybrid continuous carbon/glass fiber–reinforced thermoplastic composite
    Congcong Luan
    Xinhua Yao
    Jianzhong Fu
    The International Journal of Advanced Manufacturing Technology, 2021, 116 : 3207 - 3215
  • [37] Fibre misalignment and breakage in 3D printing of continuous carbon fibre reinforced thermoplastic composites
    Zhang, Haoqi
    Chen, Jiayun
    Yang, Dongmin
    ADDITIVE MANUFACTURING, 2021, 38
  • [38] Analysis of the glass fibre/chicken feathers reinforced hybrid composite
    Mishra, R. K.
    Singh, G.
    MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 2024, 55 (06) : 864 - 876
  • [39] Processing of fibre reinforced thermoplastic composites
    Vaidya, U. K.
    Chawla, K. K.
    INTERNATIONAL MATERIALS REVIEWS, 2008, 53 (04) : 185 - 218
  • [40] Fibre Reinforced Thermoplastic Composite Rods
    Kling, Veronika
    Rana, Sohel
    Fangueiro, Raul
    ADVANCED MATERIALS FORUM VI, PTS 1 AND 2, 2013, 730-732 : 331 - 336