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Pathways of Decreasing Cured Temperature of Cathodic Electrodeposition Coating: Mini Review
Corresponding Author(s) : Lijun Chen
Asian Journal of Chemistry,
Vol. 26 No. 16 (2014): Vol 26 Issue 16
Abstract
Cathodic electrodeposition (CED) coating has been developed a new type of industrial application of anti-corrosion coating. It has many merits such as little environmental pollution, no fire hazard, excellent corrosion resistance, high throwing power and degree of automation for coating. However, the curing conditions for conventional cathodic electrodeposition coating are that the cathodic electrodeposition coating is cured with the high temperature. The high temperature for curing is not helpful for the auto parts with plastic and rubber, which is easy to deform under such high temperature. Thus, the high temperature for curing is not beneficial to save energy. Therefore, it is essential to develop a novel cathodic electrodeposition coating, which is cured with low temperature. The pathways of decreasing the cured temperature of cathodic electrodeposition coating are reviewed. Furthermore, the practical questions to be solved to promote the development of cathodic electrodeposition coating with low cured temperature are pointed out.
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- X.Q. Zhou, Modern Paint Finish., 10, 45 (2007).
- Z.L. Chen, Electrophoretic Coating Technology, Shanghai Science & Technology Press, Shanghai (2009).
- H.F. Zhang, J. Gao, X.H. Gao and L. Lin, Electroplat. Finish., 31, 53 (2012).
- Z. Yang and W. He, Sci. Technol. Eng., 12, 4023 (2012).
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- Z.G. Wang, C.M. Wang, L.H. Shen and Y. Xue, Shanghai Coatings, 49, 5 (2011).
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- D.Y. Chung and T.K. DebRoy, Low Cure Cathodic Electrodeposition Coatings, US Patent 4900415 (1990).
- Q.X. Ye, Chemical Propellants Polym. Mater., 3, 5 (2005).
- W.T. Wang, C.Y. Chen, C. Di and W.C. Hu, Electroplat. Finish., 30, 58 (2011).
- L. Miao and H. Wang, Scientific Experiment, 3, 13 (2003).
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References
F. Zhu, Y. Tao and B.H. Zhao, Polym. Bull., 6, 88 (2012).
H. Song, Electrophoretic Coating Technology, Chemical Industry Press, Beijing (2009).
X.W. Liu, Electrophoretic Coating and Finishing, Chemical Industry Press, Beijing (2007).
S. Stephan, W. Egon and A. Harald, Method of Producing Multilayer Color and/or Effect Paint Systems Utilizing Self-Crosslinking Graft Copolymers of Polyurethane, US Patent 7198824 (2007).
K. Klein, H. Hoenig, G. Pampouchidis, H. Matzer and M. Valtrovic, Concentrate Suitable for the Preparation of Cathodic Electrodeposition Coating Compositions, US Patent 6398934 (2002).
D.A. Wicks and Z.W. Wicks Jr., Prog. Org. Coat., 41, 1 (2001); doi:10.1016/S0300-9440(00)00164-8.
F. Roland, B. Brigitte and K. Franz, Process for the Preparation of Formulations Comprising Bismuth Salts, and their Use as Catalyst Component in Cathodic Electrodeposition Coating Materials, US Patent 5936013 (1999).
W.Q. Wang, J. Wuhan Polytechnic Univ., 26, 58 (2007).
G.W. Archie and D.M. John, Low Temperature Curing Cathodic Electrocoat, USA Patent, 6517695 (2003).
I. Krylova, Prog. Org. Coat., 42, 119 (2001); doi:10.1016/S0300-9440(01)00146-1.
X.Q. Zhou, Modern Paint Finish., 10, 45 (2007).
Z.L. Chen, Electrophoretic Coating Technology, Shanghai Science & Technology Press, Shanghai (2009).
H.F. Zhang, J. Gao, X.H. Gao and L. Lin, Electroplat. Finish., 31, 53 (2012).
Z. Yang and W. He, Sci. Technol. Eng., 12, 4023 (2012).
J.P. Wu and C. Sun, Appl. Chem. Ind., 40, 550 (2011).
T. Wang, S.G. Qi, B.Y. Ren and Z. Tong, J. Appl. Polym. Sci., 107, 4036 (2008); doi:10.1002/app.27627.
T. Wang, S.G. Qi, B.Y. Ren and Z. Tong, Prog. Org. Coat., 60, 132 (2007); doi:10.1016/j.porgcoat.2007.07.009.
J. Li, H.Q. Wang and X.Y. Li, J. Beijing Univ. Chemical Technol., 36, 56 (2009).
H.Q. Wang, Y.M. Du, L.F. He, T. Qiu, Y. Meng and X.Y. Li, New Chem. Mater., 39, 130 (2011).
P.M. Kumar and K. Trivedi, Prog. Org. Coat., 40, 63 (2000); doi:10.1016/S0300-9440(00)00152-1.
Y.G. Zhao, Polyurethane Coating Production Technology Q&A, Chemical Industry Press, Beijing (2004).
Z.G. Wang, C.M. Wang, L.H. Shen and Y. Xue, Shanghai Coatings, 49, 5 (2011).
H.J. Liu, Electroplat. Finish., 27, 46 (2012).
X. He, C.W. Dai, H.P. Guan and Y.C. Zhang, Paint Coatings Ind., 41, 5 (2011).
E. Chu, Cathodic Electropaint-Comprises Polyepoxide Amine Adduct, Aminoplast Resin and Metal Catalyst for Low Temperature, US Patent 498042 (1990).
D.Y. Chung and T.K. DebRoy, Low Cure Cathodic Electrodeposition Coatings, US Patent 4900415 (1990).
Q.X. Ye, Chemical Propellants Polym. Mater., 3, 5 (2005).
W.T. Wang, C.Y. Chen, C. Di and W.C. Hu, Electroplat. Finish., 30, 58 (2011).
L. Miao and H. Wang, Scientific Experiment, 3, 13 (2003).
J.X. Fang, W.D. Chen and W.B. Zhou, Paint Coat. Ind., 40, 23 (2010).
P. Zhong, X.P. Han, X. Xiao and F.A. Zhang, Mater. Protect., 40, 34 (2007).