Experimental determination of the interface residual stresses of carbon-fiber-reinforced polymers

被引:7
|
作者
Lang, F. C. [1 ]
Xing, Y. M. [1 ]
Zhao, Y. R. [2 ]
Zhu, J. [3 ]
Hou, X. H. [4 ]
Zhang, W. G. [1 ]
机构
[1] Inner Mongolia Univ Technol, Sch Sci, Hohhot 010051, Peoples R China
[2] Inner Mongolia Univ Technol, Sch Civil Engn, Hohhot 010051, Peoples R China
[3] China Aerosp Sci & Ind Corp, Acad 6, Hohhot 010010, Peoples R China
[4] Inner Mongolia Univ Technol, Coll Mat & Engn Sci, Hohhot 010051, Peoples R China
基金
中国国家自然科学基金;
关键词
Composite materials; Interface residual stress; Matrix crack method; Nanoscale; BRAGG GRATING SENSOR; NEUTRON-DIFFRACTION; STRAIN FIELDS; COMPOSITE; DISPLACEMENT; THICKNESS;
D O I
10.1016/j.compstruct.2020.112849
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Combining the matrix crack method with the geometric phase analysis (GPA) method, the interface residual stresses in carbon-fiber-reinforced polymers were measured at nanoscale. A cross-grating with a pitch of 138 nm was fabricated on the surface of composite material by electron beam lithography. The residual stresses around fibers located in the 90 degrees, 45 degrees, and 0 degrees fiber layers were released through the matrix crack method using a Berkovich nanoindenter. The released residual stresses led to a change in the pitch of the grating and the corresponding residual strains were obtained by the GPA method. The Hooke's law was employed to calculate the interfacial residual stress in the 90 degrees fiber layers (-6.7 +/- 1.3 MPa) in a range of 13.8 nm around the fiber, which agreed well with the result calculated by the Bright's equation, and then, the interfacial residual stresses in the 45 degrees fiber layers and residual stress along the fiber axial direction were obtained. The effect range of the radial residual stresses was equal to about one fiber radius.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] INTERFACIAL STUDIES OF CARBON-FIBER-REINFORCED COMPOSITES
    BRADLEY, RH
    ADVANCES IN ENGINEERING MATERIALS, 1995, 99-1 : 37 - 42
  • [42] Effect of Fabric Areal Weight on the Mechanical Properties of Composite Laminates in Carbon-Fiber-Reinforced Polymers
    Andreozzi, Marina
    Bianchi, Iacopo
    Gentili, Serena
    Mancia, Tommaso
    Simoncini, Michela
    JOURNAL OF COMPOSITES SCIENCE, 2023, 7 (09):
  • [43] CARBON-FIBER-REINFORCED CARBON COMPOSITES FABRICATED BY LIQUID IMPREGNATION
    FITZER, E
    GKOGKIDIS, A
    ACS SYMPOSIUM SERIES, 1986, 303 : 346 - 379
  • [44] CARBON-FIBER-REINFORCED CARBON COMPOSITES FABRICATED WITH MESOPHASE PITCH
    CHRIST, K
    HUTTINGER, KJ
    CARBON, 1993, 31 (05) : 731 - 750
  • [45] VAPOR-GROWN CARBON-FIBER-REINFORCED CARBON COMPOSITES
    TING, JM
    LAKE, ML
    CARBON, 1995, 33 (05) : 663 - 667
  • [46] Experimental and numerical study of the electrical anisotropy in unidirectional carbon-fiber-reinforced polymer composites
    Park, J. B.
    Hwang, T. K.
    Kim, H. G.
    Doh, Y. D.
    SMART MATERIALS & STRUCTURES, 2007, 16 (01): : 57 - 66
  • [47] The Use of Carbon-Fiber-Reinforced Plastics in Medicine: A Review
    I. N. Gulyaev
    Polymer Science, Series D, 2024, 17 (4) : 958 - 963
  • [48] Study on Frost Resistance of the Carbon-Fiber-Reinforced Concrete
    Kan, Wenguang
    Yang, Zailin
    Yu, Liangliang
    APPLIED SCIENCES-BASEL, 2022, 12 (08):
  • [49] Carbon-fiber-reinforced cement-based sensors
    Chacko, Rose Mary
    Banthia, Nemkumar
    Mufti, Aftab A.
    CANADIAN JOURNAL OF CIVIL ENGINEERING, 2007, 34 (03) : 284 - 290
  • [50] Strength and reliability of carbon-fiber-reinforced cement composites
    Toutanji, Houssam A.
    El-Korchi, Tahar
    Katz, R.Nathan
    Cement and Concrete Composites, 1994, 16 (01) : 15 - 21