Plasma Processing of Fibrous Carbon Materials prior to Their Metallization

2020 ◽  
Vol 13 (4) ◽  
pp. 429-434
Author(s):  
V. A. Nelyub
1992 ◽  
Vol 23 (3) ◽  
pp. 219-222
Author(s):  
L. M. Mizyaeva ◽  
N. P. Radimov ◽  
T. K. Mikhailova ◽  
P. F. Lyasota

1990 ◽  
Vol 134 (2) ◽  
pp. 376-384 ◽  
Author(s):  
Miroslav M Kopečni ◽  
Joẑef J Čomor ◽  
Miša Todorović ◽  
Ljubica Vujisić ◽  
Dragan LJ Vučković

1992 ◽  
Vol 23 (4) ◽  
pp. 241-244 ◽  
Author(s):  
M. E. Kazakov ◽  
N. S. Volkova ◽  
Z. S. Bunareva

1981 ◽  
Vol 16 (4) ◽  
pp. 423-427
Author(s):  
V. I. Kostikov ◽  
S. A. Kolesnikov ◽  
E. I. Kholodilova ◽  
S. V. Vavilkina ◽  
A. N. Polilov ◽  
...  

Carbon ◽  
2015 ◽  
Vol 86 ◽  
pp. 371
Author(s):  
Ding Nan ◽  
Zheng-hong Huang ◽  
Fei-yu Kang ◽  
Wan-ci Shen

2016 ◽  
Vol 17 (2) ◽  
pp. 294-305
Author(s):  
H.O. Sirenko ◽  
L.M. Soltys

Results of researches of influence orientation effects on the friction properties of carbon-plastics and wear mechanism of unidirectional carbon-plastics have been brought in a work. The optimal structure of carbon-plastics and fiber orientation layers in it relative to the surface friction and sliding direction have been provided. The influence of schemes reinforcing by fibrous carbon materials of polymer composites and schemes contacting of samples composites with the surface of metal counterface on the intensity of wear of friction pair and on the changing of microroughness parameters of metal surface have been researched. It has been shown that the topography of metal counterface surface changes in friction carbon plastics with oriented fibers, but the allocation of heights and curvatures of microroughness peaks of friction surface far removed from the Gaussian allocation and close to Rayleigh allocation.


Materials ◽  
2021 ◽  
Vol 14 (7) ◽  
pp. 1796
Author(s):  
Blagoj Karakashov ◽  
M’Barek Taghite ◽  
Richard Kouitat ◽  
Vanessa Fierro ◽  
Alain Celzard

The ability of various commercial fibrous carbon materials to withstand stress and conduct heat has been evaluated through experimental and analytical studies. The combined effects of different micro/macro-structural characteristics were discussed and compared. Large differences in mechanical behavior were observed between the different groups or subgroups of fibrous materials, due to the different types of fibers and the mechanical and/or chemical bonds between them. The application of the Mooney–Rivlin model made it possible to determine the elastic modulus of soft felts, with a few exceptions, which were studied in-depth. The possible use of two different mechanical test methods allowed a comparison of the results in terms of elastic modulus obtained under different deformation regimes. The effective thermal conductivity of the same fibrous materials was also studied and found to be much lower than that of a single carbon fiber due to the high porosity, and varied with the bulk density and the fiber organization involving more or less thermal contact resistances. The thermal conductivity of most materials is highly anisotropic, with higher values in the direction of preferential fiber orientation. Finally, the combination of compression and transient thermal conductivity measurement techniques allowed the heat conduction properties of the commercial fibrous carbons to be investigated experimentally when compressed. It was observed that thermal conductivity is strongly affected under compression, especially perpendicular to the main fiber orientation.


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