MECHANICAL-PROPERTIES OF THE GLASS-FIBER POLYESTER INTERPHASE .1. EFFECTS DUE TO SILANES

被引:34
作者
CHUA, PS
DAI, SR
PIGGOTT, MR
机构
[1] Advanced Composites Physics and Chemistry Group, Department of Chemical Engineering and Applied Chemistry, University of Toronto, Toronto, M5S 1A4, Ontario
关键词
D O I
10.1007/BF01197641
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Single-fibre pull-out experiments have been carried out with glass fibres with and without silane coupling agents. Debonding was easiest when the fibre had a commercial coating on it which contained a silane and processing aids, and was relatively thick. Solvent extraction of the coating increased the bond strength, and total removal of it increased it still further. The strongest bonds were stronger than the polymer and probably failed by brittle fracture with a work of about 0.25 kJ m-2, much less than the estimated work of fracture of the polymer. After debonding, frictional sliding took place, with an interfacial pressure of 17 MPa, and with a coefficient of friction that was influenced by the interface in the same way as was the bond strength, i.e. greatest for the bare fibre, and least for the coated fibre. The silane coupling agent plasticized the polyester, and it seems highly probable that debonding took place in the interphase, when the fibre was coated, so that frictional sliding during post-debond pull-out was between the chemisorbed layer of silane and the polymer. The physisorbed layer of silane probably dissolved in the polymer, because the friction was not affected by solvent extraction.
引用
收藏
页码:913 / 918
页数:6
相关论文
共 15 条
[1]   The ploughing and adhesion of sliding metals [J].
Bowden, FP ;
Moore, AJW ;
Tabor, D .
JOURNAL OF APPLIED PHYSICS, 1943, 14 (02) :80-91
[2]   THE GLASS-FIBER POLYMER INTERFACE .2. WORK OF FRACTURE AND SHEAR STRESSES [J].
CHUA, PS ;
PIGGOTT, MR .
COMPOSITES SCIENCE AND TECHNOLOGY, 1985, 22 (02) :107-119
[3]   THE GLASS-FIBER POLYMER INTERFACE .3. PRESSURE AND COEFFICIENT OF FRICTION [J].
CHUA, PS ;
PIGGOTT, MR .
COMPOSITES SCIENCE AND TECHNOLOGY, 1985, 22 (03) :185-196
[4]   THE GLASS-FIBER POLYMER INTERFACE .1. THEORETICAL CONSIDERATION FOR SINGLE FIBER PULL-OUT TESTS [J].
CHUA, PS ;
PIGGOTT, MR .
COMPOSITES SCIENCE AND TECHNOLOGY, 1985, 22 (01) :33-42
[5]  
ERICKSON PW, 1974, COMPOSITE MATERIALS, V6, pCH1
[6]   CARBON FIBER ADHESION TO ORGANIC MATRICES [J].
FAVRE, JP ;
PERRIN, J .
JOURNAL OF MATERIALS SCIENCE, 1972, 7 (10) :1113-&
[7]  
GAUR A, 1991, COMP SCI TECH, V42, P207
[8]   THE INFLUENCE OF INTERFACIAL STRUCTURE ON THE FLEXURAL STRENGTH OF E-GLASS REINFORCED POLYESTER [J].
GRAF, RT ;
KOENIG, JL ;
ISHIDA, H .
JOURNAL OF ADHESION, 1983, 16 (02) :97-113
[9]   STRENGTH AND FRACTURE TOUGHNESS OF CARBON FIBRE POLYESTER COMPOSITES [J].
HARRIS, B ;
BEAUMONT, WR ;
MONCUNIL.E .
JOURNAL OF MATERIALS SCIENCE, 1971, 6 (03) :238-&
[10]   A MICROBOND METHOD FOR DETERMINATION OF THE SHEAR-STRENGTH OF A FIBER-RESIN INTERFACE [J].
MILLER, B ;
MURI, P ;
REBENFELD, L .
COMPOSITES SCIENCE AND TECHNOLOGY, 1987, 28 (01) :17-32