Damage-Resistant Composites Using Electrospun Nanofibers: A Multiscale Analysis of the Toughening Mechanisms

被引:109
作者
Daelemans, Lode [1 ]
van der Heijden, Sam [1 ]
De Baere, Ives [2 ]
Rahier, Hubert [3 ]
Van Paepegem, Wim [2 ]
De Clerck, Karen [1 ]
机构
[1] Univ Ghent, Dept Text, Technol Pk Zwijnaarde 907, B-9052 Zwijnaarde, Belgium
[2] Univ Ghent, Dept Mat Sci & Engn, Technol Pk Zwijnaarde 903, B-9052 Zwijnaarde, Belgium
[3] Vrije Univ Brussel, Dept Mat & Chem, Pl Laan 2, B-1050 Brussels, Belgium
关键词
nanocomposites; fiber reinforced polymer; electrospinning; fracture toughness; delamination; nanofiber bridging; veils; INTERLAMINAR FRACTURE-TOUGHNESS; MODE-I; CARBON/EPOXY COMPOSITES; CURING CHARACTERISTICS; POLYMER DIFFUSION; PHASE-SEPARATION; EPOXY MATRIX; NANOCOMPOSITES; DELAMINATION; STRENGTH;
D O I
10.1021/acsami.6b02247
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Today, fiber-reinforced polymer composites are a standard material in applications where a high stiffness and strength are required at minimal weight, such as aerospace structures, ultralight vehicles, or even flywheels for highly efficient power storage systems. Although fiber-reinforced polymer composites show many advantages compared to other materials, delamination between reinforcing plies remains a major problem limiting further breakthrough. Traditional solutions that have been proposed to toughen the interlaminar region between reinforcing plies have already reached their limit or have important disadvantages such as a high cost or the need for adapted production processes. Recently, electrospun nanofibers have been suggested as a more viable interlaminar toughening method. Although the expected benefits are numerous, the research on composite laminates enhanced with electrospun nanofibrous veils is still very limited. The work that has been done so far is almost exclusively focused on interlaminar fracture toughness tests with different kinds of nanofibers, where typically a trial and error approach has been used. A thorough understanding of the micromechanical fracture mechanisms and the parameters to obtain toughened composites has not been reported as of yet, but it is crucial to advance the research and design highly damage-resistant composites. This article provides such insight by analyzing the nanofiber toughening effect on three different levels for several nanofiber types. Only by combining the results from different levels, a thorough understanding can be obtained. These levels correspond to the hierarchical nature of a composite: the laminate, the interlaminar region, and the matrix resin. It is found that each level corresponds to certain mechanisms that result in a toughening effect. The bridging of microcracks by electrospun nanofibers is the main toughening mechanism resulting in damage resistance. Nevertheless, the way in which the nanofiber bridging mechanism expresses itself is different for each scale and dependent on parameters linked to a certain scale. The multiscale analysis of the toughening mechanisms reported in this paper is therefore crucial for understanding the behavior of nanofiber toughened composites, and as such allows for designing novel, damage-resistant, nanofiber-toughened materials.
引用
收藏
页码:11806 / 11818
页数:13
相关论文
共 44 条
  • [1] Direct fracture toughness determination of a ductile epoxy polymer from digital image correlation measurements on a single edge notched bending sample
    Allaer, K.
    De Baere, I.
    Van Paepegem, W.
    Degrieck, J.
    [J]. POLYMER TESTING, 2015, 42 : 199 - 207
  • [2] ASTM, D5528 ASTM
  • [3] Mode I and Mode II interlaminar fracture toughness of composite laminates interleaved with electrospun nanofibre veils
    Beckermann, Gareth W.
    Pickering, Kim L.
    [J]. COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2015, 72 : 11 - 21
  • [4] Global and local nanofibrous interlayer toughened composites for higher in-plane strength
    Bilge, K.
    Venkataraman, S.
    Menceloglu, Y. Z.
    Papila, M.
    [J]. COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2014, 58 : 73 - 76
  • [5] Enhanced Epoxy/Silica Composites Mechanical Properties by introducing Graphene Oxide to the Interface
    Chen, Li
    Chai, Songgang
    Liu, Kai
    Ning, Nanying
    Gao, Jian
    Liu, Qianfa
    Chen, Feng
    Fu, Qiang
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2012, 4 (08) : 4398 - 4404
  • [6] Hybrid multi-scale composites developed from glass microfiber fabrics and nano-epoxy resins containing electrospun glass nanofibers
    Chen, Qi
    Zhang, Lifeng
    Zhao, Yong
    Wu, Xiang-Fa
    Fong, Hao
    [J]. COMPOSITES PART B-ENGINEERING, 2012, 43 (02) : 309 - 316
  • [7] Exploring the Application of Sustainable Poly(propylene carbonate) Copolymer in Toughening Epoxy Thermosets
    Chen, Shusheng
    Chen, Bin
    Fan, Jiashu
    Feng, Jiachun
    [J]. ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2015, 3 (09): : 2077 - 2083
  • [8] Toughening of cubic silsesquioxane epoxy nanocomposites using core-shell rubber particles: A three-component hybrid system
    Choi, J
    Yee, AF
    Laine, RM
    [J]. MACROMOLECULES, 2004, 37 (09) : 3267 - 3276
  • [9] Using aligned nanofibres for identifying the toughening micromechanisms in nanofibre interleaved laminates
    Daelemans, Lode
    van der Heijden, Sam
    De Baere, Ives
    Rahier, Hubert
    Van Paepegem, Wim
    De Clerck, Karen
    [J]. COMPOSITES SCIENCE AND TECHNOLOGY, 2016, 124 : 17 - 26
  • [10] Nanofibre bridging as a toughening mechanism in carbon/epoxy composite laminates interleaved with electrospun polyamide nanofibrous veils
    Daelemans, Lode
    van der Heijden, Sam
    De Baere, Ives
    Rahier, Hubert
    Van Paepegem, Wim
    De Clerck, Karen
    [J]. COMPOSITES SCIENCE AND TECHNOLOGY, 2015, 117 : 244 - 256