Hydrophobic Characteristics of EPDM Composite Insulators in Simulated Arid Desert Environment
Commenced in January 2007
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Hydrophobic Characteristics of EPDM Composite Insulators in Simulated Arid Desert Environment

Authors: Yasin Khan

Abstract:

Overhead electrical insulators form an important link in an electric power system. Along with the traditional insulators (i.e. glass and porcelain, etc) presently the polymeric insulators are also used world widely. These polymeric insulators are very sensitive to various environmental parameters such temperature, environmental pollution, UV-radiations, etc. which seriously effect their electrical, chemical and hydrophobic properties. The UV radiation level in the central region of Saudi Arabia is high as compared to the IEC standard for the accelerated aging of the composite insulators. Commonly used suspension type of composite EPDM (Ethylene Propylene Diene Monomer) insulator was subjected to accelerated stress aging as per modified IEC standard simulating the inland arid deserts atmospheric condition and also as per IEC-61109 standard. The hydrophobic characteristics were studied by measuring the contact angle along the insulator surface before and after the accelerated aging of the samples. It was found that EPDM insulator loses it hydrophobic properties proportional to the intensity of UV irradiations and its rate of recovery is also very low as compared to Silicone Rubber insulator.KeywordsEPDM, composite insulators, accelerated aging, hydrophobicity, contact angle.

Keywords: EPDM, composite insulators, accelerated aging, hydrophobicity, contact angle.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1085814

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References:


[1] EPRI Technical Brief, "Polymer Insulator Survey-1007769", April 2003
[2] M. Amin, M.Akbar, and S. Amin, "Hydrophobicity of SiR used for outdoor insulation, Rev. of Advanced Material Science, Vol.16, pp.10- 26. 2007.
[3] G.G. Karady, "Flashover Mechanisms of Non-ceramic insulators", IEEE Trans. on DEI, Vol. EI-6, No.1, pp. 557-585, 1999.
[4] L. Kumosa, K. Kumosa, & D.Armentrout, "Failure Analysis of nonceramic insulators, Brittle fracture Characteristics", IEEE Electrical Insulation Magazine, Vol. EI -21, No.3, pp. 14-27, 2005.
[5] R. Hackim, Outdoor HV Composite Polymeric Insulators", IEEE Trans. on DEI, Vol. EI-6, No.5, pp. 557-585, 1999.
[6] R. Sundarajan, A. N. Mohammad, T,Chaipanit, Z.Karcher, and Z. Liu, "In Service aging and degradation of 345 kV EPDM transmission line insulators in a coastal environment", IEEE Trans. on DEI, Vol. EI -11, No.1, pp.248-261, 2004.
[7] S.M. Rowland, Y.Xiong, J.Robertson, & S. Hoffman, "Aging of Silicon Rubber Composite Insulators on 400 kV Transmission Lines", IEEE Trans. on Dielectrics and Electrical Insulation, Vol. EI -14, No.1, pp.130-136, 2007.
[8] Y.Khan, M.I. Qureshi, N. H. Malik, & A. A Al-Arainy, "Performance of composite insulators in simulated environmental conditions related to central region of Saudi Arabia", IEEE, International Conf. on Emerging Technologies (ICET), pp. 303 - 307, 2006.
[9] Y. Khan, "Degradation of High Voltage Polymeric Insulators in Arid Desert's Simulated Environmental conditions", American J. of Engg. and Applied Sci., Vol. AJEAS-2, No.2, pp. 438- 445, 2009.
[10] IEC Standard-61109: Composite Insulators for A.C. Overhead Lines with a Nominal Voltage Greater Than 1000 V - Definitions, Test Methods and Acceptance Criteria", 1995.
[11] A.E. Vlastos, & E:Sherif, "Natural aging of EPDM composite insulators", IEEE Trans. on PWRD, Vol. 5, No.1, pp. 406-410, 1990.
[12] Swedish National Testing and Research Institute (STRI): Hydrophobicity Classification Guide", Guide 92/1, 1992.
[13] R.Sundarajan, E.Sundarajan, A.Mohammad & J. Grames,"Multi-stress Accelerated Aging of Polymer Housed Surge Arresters Under Simulated Coastal Florida Conditions", IEEE Trans. on DEI, Vol. EI - 13, No.1, pp.211-228, 2006.
[14] J.Mackerich, & M.Shah, "Polymers Outdoor Insulation Material, Part I: Comparison of Porcelain and Polymer Electrical Insulation", IEEE Electrical Insulation Magazine, Vol. EI -13, No.3, pp.5-11, 1997.