Analysis of Stress Control on 33-kV Non-ceramic Insulators Using Finite-element Method

被引:6
作者
Natarajan, Murugan [1 ]
Basharan, Vigneshwaran [1 ]
Pillai, Kannayeram Ganapathya [1 ]
Velayutham, Maheswari Ramasamy [1 ]
Silluvairaj, Willjuice Iruthayarajan Maria [1 ]
机构
[1] Natl Engn Coll, Dept Elect Engn, Kovilpatti, Tamilnadu, India
关键词
electric field distribution; electric potential distribution; contamination layer; finite-element method; metal end fitting; stress control; composite insulator; two-dimensional axial symmetric; arcing horn; grading material;
D O I
10.1080/15325008.2014.994242
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this article, analysis of electric field stress and electric potential distributions of a 33-kV composite insulator and factors that affect the electric field are discussed. Accordingly, the article is classified into two parts. In the first part, the designs of three different configurations of non-ceramic (composite) insulator based on their geometry modification in end fittings and water shed are discussed. The electrical performances are analyzed using electric field and electrical potential distribution. In the second part, a reduction of the electric field near the end fittings is done to control the electric field stress intended for long-term performance. For that, the grading material is placed between the core and housing materials by fitting the arcing horn near the end fittings. A 33-kV composite insulator is modeled in two dimensions by the finite-element method to investigate the electric field and electric potential distribution under normal and polluted conditions. The results reveal that an optimum installation of an arcing horn at the high-voltage end in the composite insulator with silicone rubber overlapping the edges of metal end fittings made a significant reduction in electric field stress on 33-kV non-ceramic insulators.
引用
收藏
页码:566 / 577
页数:12
相关论文
共 24 条
[1]   Stress Control on Polymeric Outdoor Insulators Using Zinc Oxide Microvaristor Composites [J].
Abd-Rahman, R. ;
Haddad, A. ;
Harid, N. ;
Griffiths, H. .
IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2012, 19 (02) :705-713
[2]   Improved Silicone Rubbers for the Use as Housing Material in Composite Insulators [J].
Ansorge, Samuel ;
Schmuck, Frank ;
Papailiou, Konstantin O. .
IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2012, 19 (01) :209-217
[3]   Calculation of Voltage Distribution along Porcelain Suspension Insulators Based on Finite Element Method [J].
Ashouri, Mehdi ;
Mirzaie, Mohammad ;
Gholami, Ahmad .
ELECTRIC POWER COMPONENTS AND SYSTEMS, 2010, 38 (07) :820-831
[4]   Stress and damage analysis of composite-aluminium joints used in electrical insulators subject to traction and bending [J].
Bonhôte, P ;
Gmür, T ;
Botsis, J ;
Papailiou, KO .
COMPOSITE STRUCTURES, 2004, 64 (3-4) :359-367
[5]  
Cherney EA, 2005, 2005 ANNUAL REPORT CONFERENCE ON ELECTRICAL INSULATION AND DIELECTRIC PHENOMENA, P1
[6]   Concentrated discharges and dry bands on polluted outdoor insulators [J].
Chrzan, Krystian Leonard ;
Moro, Federico .
IEEE TRANSACTIONS ON POWER DELIVERY, 2007, 22 (01) :466-471
[7]   Optimized Design of Electric Field Grading Systems in 115 kV Non-Ceramic Insulators [J].
Cruz Dominguez, D. ;
Espino-Cortes, F. P. ;
Gomez, P. .
IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2013, 20 (01) :63-70
[8]   Electric Field Computation of Composite Line Insulators up to 1200 kV AC [J].
Doshi, T. ;
Gorur, R. S. ;
Hunt, J. .
IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2011, 18 (03) :861-867
[9]   Effectiveness of stress grading coatings on form wound stator coil groundwall insulation under fast rise time pulse voltages [J].
Espino-Cortes, FP ;
Cherney, EA ;
Jayaram, S .
IEEE TRANSACTIONS ON ENERGY CONVERSION, 2005, 20 (04) :844-851
[10]   Outdoor HV composite polymeric insulators [J].
Hackam, R .
IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 1999, 6 (05) :557-585