Investigating the Influence of Plasma-Treated SiO2 Nanofillers on the Electrical Treeing Performance of Silicone-Rubber
Abstract
:1. Introduction
2. Sample Preparation
2.1. Base Material and Nanofiller
2.2. Silicone-Rubber Nanocomposites
2.3. Nanocomposite Treatment
2.3.1. Atmospheric-Pressure Plasma Treatment
2.3.2. Silane Treatment
3. Experimental Set-up
Electrical Treeing Test
4. Results and Discussion
4.1. Morphological Analyses of the Plasma-Treated SiO2 Nanofillers
4.2. Influence of Plasma-Treated SiO2 Nanofillers on Silicone-Rubber Nanocomposite
4.2.1. Electrical Tree Parameters
4.2.2. FESEM Analysis of the Silicone-Rubber Nanocomposites Filled with Plasma-Treated SiO2 Nanoparticles
5. Conclusions
- The plasma-treated SiO2 nanofillers showed smoother and smaller amounts of agglomeration nanofillers with an increase in oxygen content after treatment among the three different treatment methods of the nanocomposites.
- The plasma treatment improved the electrical tree initiation time, tree propagation time, and tree growth rates. In addition, based on the bridging times of the electrical trees, ANOVA analysis results showed a signifcant difference between the plasma-treated nanocomposites and silane-treated as well as direct-mixed nanocomposites. In addition, the plasma-treated nanocomposites exhibited the longest tree bridging times, implying that the plasma treatment of the SiO2 nanofiller improved the electrical tree performance of the silicone rubber nanocomposite. The increase in filler concentration also resulted in better electrical treeing performance.
- The plasma-treated nanocomposites possessed the least agglomeration among the three different treatment methods of the nanocomposites due to the well dispersed SiO2 nanofillers.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Untreated | Silane-Treated | Plasma-Treated | |||
---|---|---|---|---|---|
BE (eV) | Intensity | BE (eV) | Concentration (%) | BE (eV) | Concentration (%) |
101.79 | 2500 | 101.70 | 2230 | 101.70 | 3040 |
104.79 | 655 | 103.80 | 551 | 104.68 | 545 |
Samples | Atomic Content (%) | ||
---|---|---|---|
C | O | Si | |
Untreated | 7.50 | 44.80 | 47.70 |
Silane-treated | 25.00 | 48.08 | 26.93 |
Plasma-treated | 9.40 | 47.60 | 43.00 |
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Musa, F.N.; Bashir, N.; Ahmad, M.H.; Buntat, Z.; Piah, M.A.M. Investigating the Influence of Plasma-Treated SiO2 Nanofillers on the Electrical Treeing Performance of Silicone-Rubber. Appl. Sci. 2016, 6, 348. https://doi.org/10.3390/app6110348
Musa FN, Bashir N, Ahmad MH, Buntat Z, Piah MAM. Investigating the Influence of Plasma-Treated SiO2 Nanofillers on the Electrical Treeing Performance of Silicone-Rubber. Applied Sciences. 2016; 6(11):348. https://doi.org/10.3390/app6110348
Chicago/Turabian StyleMusa, Fatin Nabilah, Nouruddeen Bashir, Mohd Hafizi Ahmad, Zolkafle Buntat, and Mohamed Afendi Mohamed Piah. 2016. "Investigating the Influence of Plasma-Treated SiO2 Nanofillers on the Electrical Treeing Performance of Silicone-Rubber" Applied Sciences 6, no. 11: 348. https://doi.org/10.3390/app6110348
APA StyleMusa, F. N., Bashir, N., Ahmad, M. H., Buntat, Z., & Piah, M. A. M. (2016). Investigating the Influence of Plasma-Treated SiO2 Nanofillers on the Electrical Treeing Performance of Silicone-Rubber. Applied Sciences, 6(11), 348. https://doi.org/10.3390/app6110348