Tensile Properties, Fracture Mechanics Properties and Toughening Mechanisms of Epoxy Systems Modified with Soft Block Copolymers, Rigid TiO2 Nanoparticles and Their Hybrids

被引:26
作者
Bajpai, Ankur [1 ,2 ]
Alapati, Arun Kumar [1 ]
Klingler, Andreas [1 ]
Wetzel, Bernd [1 ]
机构
[1] Univ Kaiserslautern, Inst Verbundwerkstoffe GmbH IVW, Erwin Schrodinger Str,Bldg 58, D-67663 Kaiserslautern, Germany
[2] Univ Bordeaux, Lab Chim Polymeres Organ LCPO, ENSCBP, Bordeaux INP,CNRS,UMR 5629, 16 Ave Pey Berland, F-33607 CED Pessac, France
关键词
epoxy; block copolymers; fracture toughness; TiO2; hybrids;
D O I
10.3390/jcs2040072
中图分类号
TB33 [复合材料];
学科分类号
摘要
The effect of the hybridization of a triblock copolymer and a rigid TiO2 nanofiller on the tensile, fracture mechanics and thermo-mechanical properties of bisphenol F based epoxy resin were studied. The self-assembling block copolymer, constituted of a center block of poly (butyl acrylate) and two side blocks of poly (methyl) methacrylate-co-polar co-monomer was used as a soft filler, and TiO2 nanoparticles were employed as rigid modifiers. Toughening solely by block copolymers (BCP's) led to the highest fracture toughness and fracture energy in the study, K-Ic = 2.18 MPa.m(1/2) and G(Ic) = 1.58 kJ/m(2). This corresponds to a 4- and 16 -fold improvement, respectively, over the neat reference epoxy system. However, a reduction of 15% of the tensile strength was observed. The hybrid nanocomposites, containing the same absolute amounts of modifiers, showed a maximum value of K-Ic = 1.72 MPa.m(1/2) and G(Ic) = 0.90 kJ/m(2). Yet, only a minor reduction of 4% of the tensile strength was observed. The fracture toughness and fracture energy were co-related to the plastic zone size for all the modified systems. Finally, the analysis of the fracture surfaces revealed the toughening mechanisms of the nanocomposites.
引用
收藏
页数:17
相关论文
共 50 条
[21]  
Kinloch J., 1983, FRACTURE BEHAV POLYM
[22]   Relationship between the mechanical properties of epoxy/PMMA-b-PnBA-b-PMMA block copolymer blends and their three-dimensional nanostructures [J].
Kishi, H. ;
Kunimitsu, Y. ;
Nakashima, Y. ;
Imade, J. ;
Oshita, S. ;
Morishita, Y. ;
Asada, M. .
EXPRESS POLYMER LETTERS, 2017, 11 (10) :765-777
[23]   Control of nanostructures generated in epoxy matrices blended with PMMA-b-PnBA-b-PMMA triblock copolymers [J].
Kishi, H. ;
Kunimitsu, Y. ;
Nakashima, Y. ;
Abe, T. ;
Imade, J. ;
Oshita, S. ;
Morishita, Y. ;
Asada, M. .
EXPRESS POLYMER LETTERS, 2015, 9 (01) :23-35
[24]   The effect of block copolymer and core-shell rubber hybrid toughening on morphology and fracture of epoxy-based fibre reinforced composites [J].
Klingler, Andreas ;
Bajpai, Ankur ;
Wetzel, Bernd .
ENGINEERING FRACTURE MECHANICS, 2018, 203 :81-101
[25]   Fatigue crack propagation in triblock copolymer toughened epoxy nanocomposites [J].
Klingler, Andreas ;
Wetzel, Bernd .
POLYMER ENGINEERING AND SCIENCE, 2017, 57 (06) :579-587
[26]   MORPHOLOGY AND TOUGHNESS CHARACTERIZATION OF EPOXY-RESINS MODIFIED WITH AMINE AND CARBOXYL TERMINATED RUBBERS [J].
KUNZ, SC ;
SAYRE, JA ;
ASSINK, RA .
POLYMER, 1982, 23 (13) :1897-1906
[27]   Fracture of glass bead/epoxy composites: on micro-mechanical deformations [J].
Lee, J ;
Yee, AF .
POLYMER, 2000, 41 (23) :8363-8373
[28]   The toughening mechanism in hybrid epoxy-silica-rubber nanocomposites (HESRNs) [J].
Liang, Y. L. ;
Pearson, R. A. .
POLYMER, 2010, 51 (21) :4880-4890
[29]  
Lin KF, 1998, J APPL POLYM SCI, V70, P2313, DOI 10.1002/(SICI)1097-4628(19981219)70:12<2313::AID-APP2>3.0.CO
[30]  
2-P