THE INFLUENCE OF MATRIX MICROSTRUCTURE ON THE MECHANICAL-PROPERTIES OF CFRC COMPOSITES

被引:43
作者
DILLON, F [1 ]
THOMAS, KM [1 ]
MARSH, H [1 ]
机构
[1] UNIV NEWCASTLE UPON TYNE,DEPT CHEM,NO CARBON RES LABS,NEWCASTLE TYNE NE1 7RU,TYNE & WEAR,ENGLAND
关键词
COMPOSITES; CARBON; MICROSTRUCTURE; PITCH; RESIN;
D O I
10.1016/0008-6223(93)90095-R
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A suite of carbon fibre reinforced carbon (CFRC) composites and carbon matrices with a range of matrix microstructures have been fabricated using a multiple liquid vacuum impregnation process and high-pressure carbonization. The carbon matrices were derived from a range of petroleum and coal tar pitches in addition to pitch/phenolic resin mixtures. The efficiency with which the pitches densified their- respective CFRC composites was dependent initially on their carbon yield, but after repeated densification on their rheological properties. The densification efficiency of the pitch/phenolic resin matrix precursors was dependent solely on their carbon yields. The variation of phenolic resin/pitch composition of the precursor for the matrix carbon had a profound influence on the structural and mechanical properties of the resultant carbon. The intrinsic mechanical strength (microstrength) of a matrix carbon cannot always be translated to its corresponding CFRC composite because of fibre matrix interfacial phenomena. Studies of the systematic variation of matrix microstructure have shown that in the absence of transverse shrinkage phenomena. maximum interlaminar shear strength (ILSS) corresponds to a matrix of mosaic optical texture. Maximum compressive strength corresponds to a matrix with an axial preferred anisotropic optical texture Consequently, it is possible to fabricate CFRC composites with specific properties by modifying their matrix microstructures.
引用
收藏
页码:1337 / 1348
页数:12
相关论文
共 16 条
[1]  
BLAYDEN HE, 1937, J IRON STEEL I, P47
[2]  
Blayden W.E., 1944, ULTRAFINE STRUCTURE, P176
[3]  
Brooks J. D., 1968, Chemistry and physics of carbon. Vol.4, P243
[4]  
DELMONTE J, 1981, TECHNOLOGY CARBON GR, P14
[5]  
Donnet J. B., 1984, CARBON FIBRES
[6]  
EVANGELIDES JS, 1987, 4TH P ANN C MAT TECH, P42
[7]  
Fitzer E, 1985, CARBON FIBERS THEIR
[8]   CARBONIZATION AND LIQUID-CRYSTAL (MESOPHASE) DEVELOPMENT .9. CO-CARBONIZATION OF VITRAINS WITH ASHLAND A200 PETROLEUM PITCH [J].
GRINT, A ;
SWIETLIK, U ;
MARSH, H .
FUEL, 1979, 58 (09) :642-650
[9]  
Huttner W., 1985, Zeitschrift fur Werkstofftechnik, V16, P430, DOI 10.1002/mawe.19850161209
[10]  
INAGAKI M, 1989, 19TH P BIENN C CARB, P206