Scratch deformation characteristics of micrometric wollastonite-reinforced ethylene-propylene copolymer composites

被引:34
作者
Dasari, A
Misra, RDK
Rohrmann, J
机构
[1] Univ Louisiana, Dept Chem Engn, Mat Sci & Engn Grp, Lafayette, LA 70504 USA
[2] Basell Polyolefins, D-65926 Frankfurt, Germany
关键词
D O I
10.1002/pen.20175
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The scratch deformation behavior of neat and wollastonite-containing ethylene-propylene copolymer composites has been studied by electron microscopy and atomic force microscopy techniques. The study indicates that the severity of plastic deformation during scratch testing in reinforced ethylene-propylene copolymers is a function of debonding/detachment of wollastonite mineral particles from the ethylene-propylene matrix. The resistance to scratch deformation was evaluated in terms of scratch hardness, scratch depth, average scratch roughness, and change in gray level before and subsequent to scratching. The data suggests that resistance to scratch deformation follows the sequence: coated + coupled wollastonite-containing EP copolymer > fine wollastonite-containing EP copolymer > coated wollastonite-containing EP copolymer > coarse wollastonite-containing EP copolymer > neat EP copolymer. EP copolymer containing coated wollastonite and coupling agent is characterized by highest scratch hardness and minimum scratch depth and scratch roughness. The visibility of scratch, quantified in terms of gray level, suggests that coated + coupled wollastonite-containing copolymer exhibits significantly reduced susceptibility to stress whitening, and is characterized by a lower gray level in the scratch-deformed regions. In the present case of wollastonite-containing copolymer composites, the resistance to scratch deformation follows a trend similar to that of gray level or scratch visibility. (C) 2004 Society of Plastics Engineers.
引用
收藏
页码:1738 / 1748
页数:11
相关论文
共 53 条
[1]   Modification of polysiloxane polymers for biomedical applications: a review [J].
Abbasi, F ;
Mirzadeh, H ;
Katbab, AA .
POLYMER INTERNATIONAL, 2001, 50 (12) :1279-1287
[2]   Multi-objective optimization in material design and selection [J].
Ashby, MF .
ACTA MATERIALIA, 2000, 48 (01) :359-369
[3]   The damage evaluation of rigid particle filled polymer [J].
Bai, SL ;
Chen, JK ;
Huang, ZP ;
Liu, ZD .
FRACTURE AND STRENGTH OF SOLIDS, PTS 1 AND 2, 2000, 183-1 :1075-1079
[4]   Rheological behavior of controlled-rheology polypropylenes obtained by peroxide-promoted degradation during extrusion: Comparison between homopolymer and copolymer [J].
Berzin, F ;
Vergnes, B ;
Delamare, L .
JOURNAL OF APPLIED POLYMER SCIENCE, 2001, 80 (08) :1243-1252
[5]   INTERFACIAL INTERACTIONS AND PROPERTIES OF FILLED POLYMERS .2. DISPERSION OF FILLER PARTICLES [J].
BOLUK, MY ;
SCHREIBER, HP .
POLYMER COMPOSITES, 1989, 10 (04) :215-221
[6]   Scratching maps for polymers [J].
Briscoe, BJ ;
Evans, PD ;
Pelillo, E ;
Sinha, SK .
WEAR, 1996, 200 (1-2) :137-147
[7]   Scratch hardness and deformation maps for polycarbonate and polyethylene [J].
Briscoe, BJ ;
Pelillo, E ;
Sinha, SK .
POLYMER ENGINEERING AND SCIENCE, 1996, 36 (24) :2996-3005
[8]   The hardnesses of poly(methylmethacrylate) [J].
Briscoe, BJ ;
Evans, PD ;
Biswas, SK ;
Sinha, SK .
TRIBOLOGY INTERNATIONAL, 1996, 29 (02) :93-104
[9]   Scratch resistance of mineral-filled polypropylene materials [J].
Chu, J ;
Xiang, C ;
Sue, HJ ;
Hollis, RD .
POLYMER ENGINEERING AND SCIENCE, 2000, 40 (04) :944-955
[10]  
CHU J, 1998, P INT SAMPE S, V43, P1149