Thermal expansion behavior of nylon 6 nanocomposites

被引:257
作者
Yoon, PJ
Fornes, TD
Paul, DR [1 ]
机构
[1] Univ Texas, Dept Chem Engn, Austin, TX 78712 USA
[2] Univ Texas, Texas Mat Inst, Austin, TX 78712 USA
关键词
nylon; 6; nanocomposites; linear thermal expansion coefficient;
D O I
10.1016/S0032-3861(02)00638-9
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The linear thermal expansion behavior of nanocomposites was measured and compared with the theory by Chow. Nanocomposites were prepared by melt mixing organically modified montmorillonite with high and low molecular weight (LMW) grades of nylon 6 using a twin screw extruder. Thermal expansion measurements were made on samples taken from injection-molded Izod bars in the flow direction (FD), transverse direction (TD), and normal direction (ND). Addition of clay reduces the thermal expansion coefficient in both FD and TD while an increase is seen in ND; FD has a lower thermal expansion coefficient than TD. The latter suggests non-uniform orientation of exfoliated platelets about 1713, since perfect alignment of disk-like platelets in an isotropic matrix must yield identical expansion coefficients for both FD and TD. High molecular weight (HMW) nylon 6 nanocomposites resulted in lower thermal expansion than LMW nylon 6 nanocomposites at the same organoclay content. This difference was attributed to the higher aspect ratio of particles (better exfoliation) in HMW nylon 6 nanocomposites. Thermal expansion coefficients predicted from a theoretical composite model were compared to the experimental data. Platelet aspect ratios deduced in this way were found to be dependent on the specimen direction, which further suggests imperfect orientation of particles about FD. Morphological analysis by transmission electron microscopy support the conclusions drawn above. (C) 2002 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:6727 / 6741
页数:15
相关论文
共 39 条
[1]  
ASHTON JF, 1969, STRUCTURE PROPERTY R, pCH5
[2]   Micromechanics of nanocomposites: comparison of tensile and compressive elastic moduli, and prediction of effects of incomplete exfoliation and imperfect alignment on modulus [J].
Brune, DA ;
Bicerano, J .
POLYMER, 2002, 43 (02) :369-387
[3]   In situ synthesis of polymer-clay nanocomposites from silicate gels [J].
Carrado, KA ;
Xu, LQ .
CHEMISTRY OF MATERIALS, 1998, 10 (05) :1440-1445
[4]   Nylon 6 nanocomposites by melt compounding [J].
Cho, JW ;
Paul, DR .
POLYMER, 2001, 42 (03) :1083-1094
[7]   A diffraction technique to investigate the orientational alignment of anisotropic particles: Studies of clay under flow [J].
Clarke, SM ;
Rennie, AR ;
Convert, P .
EUROPHYSICS LETTERS, 1996, 35 (03) :233-238
[8]   Effect of melt processing conditions on the extent of exfoliation in organoclay-based nanocomposites [J].
Dennis, HR ;
Hunter, DL ;
Chang, D ;
Kim, S ;
White, JL ;
Cho, JW ;
Paul, DR .
POLYMER, 2001, 42 (23) :9513-9522
[9]   THE THERMAL-EXPANSION OF PARTICULATE-REINFORCED COMPOSITES [J].
FELTHAM, SJ ;
YATES, B ;
MARTIN, RJ .
JOURNAL OF MATERIALS SCIENCE, 1982, 17 (08) :2309-2323
[10]   Nylon 6 nanocomposites: the effect of matrix molecular weight (vol 42, pg 9929, 2001) [J].
Fornes, TD ;
Yoon, PJ ;
Keskkula, H ;
Paul, DR .
POLYMER, 2002, 43 (07) :2121-2122