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Acta Metall Sin  1997, Vol. 33 Issue (7): 781-784    DOI:
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EFFECT OF INTERFACE PROPERTY ON STRENGTHENING EFFICIENCY OF DUMBBELLSHAPED SHORT-FIBRE REINFORCED COMPOSITE
SUN Xuekun; QIN Rongshan; LIU Donpoin; ZHO U Benlina (Institute of Metal Research; Chinese Academy of Sciences; Shenyang 110015) (International Centre for Materials Physics; Chinese Academy of Sciences; Shenyang 110015)
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SUN Xuekun; QIN Rongshan; LIU Donpoin; ZHO U Benlina (Institute of Metal Research; Chinese Academy of Sciences; Shenyang 110015) (International Centre for Materials Physics; Chinese Academy of Sciences; Shenyang 110015). EFFECT OF INTERFACE PROPERTY ON STRENGTHENING EFFICIENCY OF DUMBBELLSHAPED SHORT-FIBRE REINFORCED COMPOSITE. Acta Metall Sin, 1997, 33(7): 781-784.

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Abstract  The finite element method was adopted to analyze the dumbbell-shaped and plain short-fibre reinforced composites. Emphasis was put on discussing the effect of interface property on strengthening efficiency of two models. The adaptability of dumbbell-shaped short-fibre model was also studied. The elastic-plastic model was used to make the numerical calculation and one layer of interface element was divided so that the effect of interface property was introduced. From the analysis of steel wire reinforced tin composite, it was revealed that the interface property affects the strengthening efficiency of two models heavily. Especially under the condition of weak bonding interface, the dumbbell-shaped short-fibre model could increase the strengthening efficiency greatly. The analysis method and numerical results could be used as a reference to the design of short-fibre reinforced composites.
Key words:  composite interface      dumbbell-shaped short-fibre      finite element method     
Received:  18 July 1997     
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1田晓滨,赵晓鹏,周本濂 金属学报,1994;30:B180
2 FukudaH,ChaiTW.JCompMate厂,1981;15:79
3 Chon CT,SunCT.JMatersci, 1980; 15:931
4 Brouboan LJ,Agarwal BD.PolytharEngsci,1974:14:581
5 AgarwalB D, NansalR K. Fibre Set Technolg 1979; 12: 149
6赵晓鹏,田晓滨,周本濂,李世红.金属学报,1994;30:B187
7徐次达,华伯浩.固体力学有限元理论、方法及程序.北京:水力电力出版社,1983:152z
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