Predicting, Measuring, and Tailoring the Transverse Thermal Conductivity of Composites from Polymer Matrix and Metal Filler

被引:0
作者
F. Danes
B. Garnier
T. Dupuis
机构
[1] École Polytechnique de l'Université de Nantes,Laboratoire de Thermocinétique, UMR CNRS 6607
来源
International Journal of Thermophysics | 2003年 / 24卷
关键词
aluminum fiber; filled polymer; thermal conductivity; thermoplastic compound;
D O I
暂无
中图分类号
学科分类号
摘要
The addition of conductive filler in a polymer matrix is an effective way to increase the thermal conductivity of the plastic materials, as required by several industrial applications. All quantitative models for the thermal conductivity of heterogeneous media fail for heavily filled composites. The percolation theory allows good qualitative predictions, thus selecting a range for some qualitative effects on the thermal conductivity, and providing a way to choose a range for some experimental parameters. The design of such composite materials requires a study of its thermal features combined with different mechanical, ecological, safety, technical, and economical restrictions. A specific small guarded hot plate device with an active guard, conductive grease layer, and controlled variable pressure was used for measurement of the transverse thermal conductivity on 15 mm sided samples of composite parts. Extensive thermal and composition measurements on filled thermoplastics show that the conductivity of the filler, its size and shape, and its local amount are, with the degree of previous mixing, the main factors determining the effective conductivity of composites. For injection-molded polybutylene terephtalate plates, the best filler is the short aluminum fiber. With fibers of 0.10 mm diameter, it is possible to obtain conductivities larger by factors of 2, 6, and 10 than those of polymer for aluminum contents of 20, 42, and 43.5 vol%, respectively.
引用
收藏
页码:771 / 784
页数:13
相关论文
共 14 条
[1]  
Nicolai B.(1999)undefined Int. J. Heat Mass Transfer 42 1513-undefined
[2]  
De Baerdemaecker J.(1997)undefined Compos. Sci. Technol. 57 1355-undefined
[3]  
Dani A.(1932)undefined Fortschcr. Gebiet Ingenieurwesen B3 353 16-undefined
[4]  
Ogale A.(1962)undefined J. Appl. Phys. 33 3125-undefined
[5]  
Eucken A.(1998)undefined J. Heat Transfer 120 971-undefined
[6]  
Hashin Z.(1973)undefined J. Appl. Polym. Sci. 17 3819-undefined
[7]  
Shtrikman J.(1985)undefined J. Appl. Polym. Sci. 30 2225-undefined
[8]  
Phelan P.(1996)undefined Proc. Roy. Soc. London Ser. A 452 329-undefined
[9]  
Niemann R.(undefined)undefined undefined undefined undefined-undefined
[10]  
Nielsen L.(undefined)undefined undefined undefined undefined-undefined