Improved Thermal Properties of Three-Dimensional Graphene Network Filled Polymer Composites

Author(s):  
Yong Zhang ◽  
Fei Yang ◽  
Chen Yu ◽  
Ziyu Niu ◽  
Pei Lu ◽  
...  
2006 ◽  
Vol 54 (11) ◽  
pp. 2923-2931 ◽  
Author(s):  
Florent Dalmas ◽  
Rémy Dendievel ◽  
Laurent Chazeau ◽  
Jean-Yves Cavaillé ◽  
Catherine Gauthier

2014 ◽  
Vol 121 ◽  
pp. 74-77 ◽  
Author(s):  
Pengfei Zhao ◽  
Yongyue Luo ◽  
Junlong Yang ◽  
Dongning He ◽  
Lingxue Kong ◽  
...  

2012 ◽  
Vol 445 ◽  
pp. 526-529 ◽  
Author(s):  
Debasmita Mishra ◽  
Alok Satapathy ◽  
Amar Patnaik

This paper describes the preparation and thermal conductivity characterization of solid glass micro-spheres (SGMs) filled polymer composites. SGMs of different sizes are embedded in epoxy resin to develop composites by hand layup technique. A numerical simulation of the heat-transfer within the composites is made by using finite element method (FEM). Three-dimensional spheres-in-cube lattice array models are constructed to simulate the microstructure of composite materials for various SGM content ranging from 0 to about 27 vol % and the effective thermal conductivities (Keff) of the composites are estimated. Keff values are also calculated using some of the existing theoretical models. Finally, guarded heat flow meter test method is used to measure the conductivity of these composites. The simulations are compared with Keff values obtained from experiments and it is found that the FEM simulations are fairly close to the measured Keff. This study shows that the incorporation of SGMs results in reduction of conductivity of epoxy resin and thereby improves its thermal insulation capability. Further, the size and content of SGMs influence the extent of reduction of Keff. Keywords: Composites; Glass Microspheres; FEM; Thermal Conductivity; Simulation


2017 ◽  
Vol 39 (4) ◽  
pp. 219-226
Author(s):  
O.V. Maruzhenko ◽  
◽  
Ye.P. Mamunya ◽  
G. Boiteux ◽  
S. Pruvost ◽  
...  

Polymers ◽  
2021 ◽  
Vol 13 (3) ◽  
pp. 438
Author(s):  
Ching Hao Lee ◽  
Abdan Khalina ◽  
Seng Hua Lee

Plant fibers have become a highly sought-after material in the recent days as a result of raising environmental awareness and the realization of harmful effects imposed by synthetic fibers. Natural plant fibers have been widely used as fillers in fabricating plant-fibers-reinforced polymer composites. However, owing to the completely opposite nature of the plant fibers and polymer matrix, treatment is often required to enhance the compatibility between these two materials. Interfacial adhesion mechanisms are among the most influential yet seldom discussed factors that affect the physical, mechanical, and thermal properties of the plant-fibers-reinforced polymer composites. Therefore, this review paper expounds the importance of interfacial adhesion condition on the properties of plant-fiber-reinforced polymer composites. The advantages and disadvantages of natural plant fibers are discussed. Four important interface mechanism, namely interdiffusion, electrostatic adhesion, chemical adhesion, and mechanical interlocking are highlighted. In addition, quantifying and analysis techniques of interfacial adhesion condition is demonstrated. Lastly, the importance of interfacial adhesion condition on the performances of the plant fiber polymer composites performances is discussed. It can be seen that the physical and thermal properties as well as flexural strength of the composites are highly dependent on the interfacial adhesion condition.


Sign in / Sign up

Export Citation Format

Share Document