Computer Aided Simulation and Prototype Experiment on Nanocoated Products

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Abstract:

The material damages in aerospace industry caused by correction can be detected in many different products including welded and bolted areas in aircraft and jet engines. The corrosion occurs when different conducted materials contact to each other in electrolyte media and different conducted materials present potential difference that causes rusting. The rusting problems in products lead both safety issues and billions of dollar loss in different businesses including aerospace industry. This paper studies the rusting mechanism and anti-corrosive coatings by applying computational simulation and prototype experiment. Both computer-aided analysis and sample testing demonstrated similar results which confirm the feasibility of analytic methodology introduced in this research paper. Keywords: Nanotechnology, computer-aided analysis, nanocoating control, anti-corrosion, simulation modeling

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90-93

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June 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Kizuka, T., Miyazawa, K. and Matsuura, D., 2012, Synthesis of Carbon Nanocapsules and Nanotubes Using Fe-Doped Fullerene Nanowhiskers, Journal of Nanotechnology, Vol. 1, pp.10-16.

DOI: 10.1155/2012/613746

Google Scholar

[2] Jeremy (Zheng) Li, 2013, Computational Analysis and Prototype Experiment of Nanomaterial for Aircraft Wing Inboard Flap in Aerospace Industry, Journal of Mechatronics, Vol. 1, pp.1-4, published in December, (2013).

DOI: 10.1166/jom.2013.1025

Google Scholar

[3] Jeremy (Zheng) Li, 2013, Computational Simulation and Prototype Testing of Nanocoated Materials for Jet Engine Blades in Aerospace Industry, Journal of Applied and Industrial Science, Vol. 1, pp.36-38, published in November, (2013).

Google Scholar

[4] Yoon, W., Jung, K. and Liu, J., 2010, Plasmon-enhanced optical absorption and photocurrent in organic bulk heterojunction photovoltaic devices using self-assembled layer of silver nanoparticles, Journal of Solar Energy Materials and Solar Cells, Vol. 94, p.128.

DOI: 10.1016/j.solmat.2009.08.006

Google Scholar

[5] Jeremy (Zheng) Li, 2013, Study of Nanocoating Technology of Control Product Corrosion in Aerospace Industry, Journal of Advanced Materials Research, Vols. 785-786, pp.967-969, published in October, (2013).

DOI: 10.4028/www.scientific.net/amr.785-786.967

Google Scholar

[6] Jeremy (Zheng) Li, 2013, Computational Simulation and Prototype Testing of Nanocoating on Products in Aerospace Industry, Journal of Advanced Materials Research, Vols. 750-752, pp.2088-2091, published in May, (2013).

DOI: 10.4028/www.scientific.net/amr.750-752.2088

Google Scholar

[7] Wang, Y., Limb, S., Luob, J. and Xub, Z., 2006, Tribological and corrosion behaviors of Al2 O3 polymer nanocomposite coatings, Journal of Wear, Vol. 2, pp.976-983.

DOI: 10.1016/j.wear.2005.06.013

Google Scholar

[8] Jeremy (Zheng) Li, 2012, Computer-Aided Modeling of Nanochrystalline Coating to Reduce the Galvanic Corrosion, Journal of Nanoscience and Nanotechnology, Vol. 1, pp.13-15, published in November, (2012).

DOI: 10.5923/j.nn.20120201.03

Google Scholar

[9] Jeremy (Zheng) Li, 2012, Computational Simulation and Testing of Nano Particle Coating in Material Anti-Corrosion, International Journal of Materials Engineering, Vol. 2, pp.18-22, published in July, (2012).

Google Scholar

[10] Jaqueline, S. and Jorio, A., 2012, Study of Carbon Nanotube-Substrate, Journal of Nanotechnology, Vol. 2, pp.56-66.

Google Scholar

[11] Jeremy (Zheng) Li, 2012, Study and Computational Simulation of Nanomaterial Coating to Reduce Crevice Corrosion, Journal of Nanoscience and Nanotechnology, Vol. 2, pp.1-4, published in June, (2012).

DOI: 10.5923/j.nn.20120202.01

Google Scholar

[12] Akiyama, T., Aiba, K., Hoashi, K., Wang, M., Sugawa, K. and Yamada, S., 2010, Enormous enhancement in photocurrent generation using electrochemically fabricated gold nanostructures, Journal of Chemical Communications, Vol. 46, p.306–308.

DOI: 10.1039/b913284h

Google Scholar

[13] Jeremy (Zheng) Li, 2012, Study and Computational Modeling of Nano Coating to Protect Products from Atmospheric Corrosion, American Journal of Material Science, Vol. 1, pp.38-40, published in March, (2012).

Google Scholar

[14] Jeremy (Zheng) Li, 2012, Computer Modeling and Experimental Study of Material Surface Improvement by Nano Coating Technology, International Journal of Materials and Chemistry, Vol. 1, pp.48-50, published in February, (2012).

Google Scholar

[15] Cai, R., Van, G., Aw, P. and Itoh, K., 2006, Solar-driven self-cleaning coating for a painted surface, Journal of Chemistry, Vol. 9, pp.829-835.

DOI: 10.1016/j.crci.2005.04.007

Google Scholar