Effect of Viscosity Ratio on the Morphology of PET Microfibrils in Uncompatibilized and Compatibilized Drawn PET/PP/TiO2 Blends

被引:21
作者
Li, Wenjing [1 ]
Schlarb, Alois K. [1 ]
Evstatiev, Michael [2 ]
机构
[1] Univ Kaiserslautern, Inst Verbundwerkstoffe, Inst Composite Mat, D-67663 Kaiserslautern, Germany
[2] Univ Sofia, Lab Polymers, BU-1126 Sofia, Bulgaria
关键词
blends; fibers; morphology; preferential location; viscosity ratio; SLIT DIE EXTRUSION; POLYMER BLENDS; REINFORCED COMPOSITES; COALESCENCE; RHEOLOGY; IPP;
D O I
10.1002/polb.21658
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Uncompatibilized and compatibilized (polypropylene-grafted maleic anhydride (PP-g-MA) as compatibilizer) PET (polyethylene terephthalate)/PP (polypropylene)/TiO2 drawn strands were prepared by extrusion of the blends and cold drawing of the extrudates. In the uncompatibilized drawn strand, the generated PET microfibrils show large aspect ratio and wide distribution in diameter; whereas in the compatibilized drawn strand numbers of short needle-like PET formations appear and demonstrate uniform diameter distribution. Derived from PET droplets, the microfibril morphology is greatly influenced by the size of PET droplets in the extrudates: small droplet deforms into needle-like shape and large one becomes microfibril. In the compatibilized PET/PP/TiO2 extrudate, the size of PET droplet is much smaller than that in the uncompatibilized one. The reduction of droplet size is attributed to the low viscosity ratio between dispersed phase and matrix, which facilitates the break up of the dispersed PET droplets. (C) 2009 Wiley Periodicals, Inc. J Polym Sci Part B: Polym Phys 47: 555-562, 2009
引用
收藏
页码:555 / 562
页数:8
相关论文
共 24 条
[1]   Morphology and rheology of immiscible polymer blends filled with silica nanoparticles [J].
Elias, L. ;
Fenouillot, F. ;
Majeste, J. C. ;
Cassagnau, Ph. .
POLYMER, 2007, 48 (20) :6029-6040
[2]   Phase morphology development in immiscible PP/(PS/PPE) blends influence of the melt-viscosity ratio and blend composition [J].
Everaert, V ;
Aerts, L ;
Groeninckx, G .
POLYMER, 1999, 40 (24) :6627-6644
[3]   MICROFIBRILLAR REINFORCEMENT OF POLYMER BLENDS [J].
EVSTATIEV, M ;
FAKIROV, S .
POLYMER, 1992, 33 (04) :877-880
[4]   MICROFIBRILLAR REINFORCED COMPOSITES FROM BINARY AND TERNARY BLENDS OF POLYESTERS AND NYLON-6 [J].
FAKIROV, S ;
EVSTATIEV, M ;
PETROVICH, S .
MACROMOLECULES, 1993, 26 (19) :5219-5226
[5]   MICROFIBRILLAR REINFORCED COMPOSITE FROM DRAWN POLY(ETHYLENE-TEREPHTHALATE) NYLON-6 BLEND [J].
FAKIROV, S ;
EVSTATIEV, M ;
SCHULTZ, JM .
POLYMER, 1993, 34 (22) :4669-4679
[6]   Contribution of coalescence to microfibril formation in polymer blends during cold drawing [J].
Fakirov, S. ;
Bhattacharyya, D. ;
Lin, R. J. T. ;
Fuchs, C. ;
Friedrich, K. .
JOURNAL OF MACROMOLECULAR SCIENCE PART B-PHYSICS, 2007, 46 (01) :183-193
[7]   Microfibrillar reinforced composites from PET/LDPE blends: Morphology and mechanical properties [J].
Fakirov, S ;
Kamo, H ;
Evstatiev, M ;
Friedrich, K .
JOURNAL OF MACROMOLECULAR SCIENCE-PHYSICS, 2004, B43 (04) :775-789
[8]   THE EFFECT OF VISCOSITY RATIO ON THE MORPHOLOGY OF POLYPROPYLENE POLYCARBONATE BLENDS DURING PROCESSING [J].
FAVIS, BD ;
CHALIFOUX, JP .
POLYMER ENGINEERING AND SCIENCE, 1987, 27 (21) :1591-1600
[9]   Effect of clay on the morphology of blends of poly(propylene) and polyamide 6/clay nanocomposites [J].
Feng, M ;
Gong, FL ;
Zhao, CG ;
Chen, GM ;
Zhang, SM ;
Yang, MS .
POLYMER INTERNATIONAL, 2004, 53 (10) :1529-1537
[10]   Microfibril reinforced polymer-polymer composites: Application of Tsai-Hill equation to PP/PET composites [J].
Fuchs, C. ;
Bhattacharyya, D. ;
Fakirov, S. .
COMPOSITES SCIENCE AND TECHNOLOGY, 2006, 66 (16) :3161-3171