Optimisation of End Insulation Design in Power Transformer

Authors

  • R. Beema Thangarajan Division of High Voltage Engineering, Department of Electrical and Electronics Engineering, Anna University, Chennai - 600 025, Tamil Nadu, India
  • S. Usa Division of High Voltage Engineering, Department of Electrical and Electronics Engineering, Anna University, Chennai - 600 025, Tamil Nadu, India
  • Syed Arif Ahammad Crompton Greaves Global R&D, Mumbai 400 042, India
  • R. Muthuraj Crompton Greaves Global R&D, Mumbai 400 042, India
  • M. Govindaraj Crompton Greaves Global R&D, Mumbai 400 042, India

DOI:

https://doi.org/10.51983/ajes-2012.1.1.1648

Keywords:

Cumulative Stress,, End Insulation, Safety Margin, Creep Stress

Abstract

The power transformer is an important component in power system that must be highly efficient and reliable in peration. Insulation design in power transformer is one of the important factors for determining reliability and size. It is essential to find a compact optimal design for insulation that satisfies the technical specifications with minimum manufacturing cost. In the transformer insulation design, the top end and bottom end insulation between winding and yoke of a power transformer is one of the important factor determining the total window height of the power transformer; hence optimization in the end will result in reduction in total cost and size of the transformer. In this paper electrostatic finite element analysis of power transformer end insulation is carried out, the cumulative stress distribution for each oil gap is determined and safety margin is evaluated by comparing it with industrial withstand curve. The value of top end and bottom end clearance of winding to yoke is optimised so that the value of window height is minimum and the end insulation design is reliable.

References

W.Ziomek et al “High Voltage Power Transformer Insulation Design” Electrical Insulation Conference (EIC), June 2011.

Nelson J.K., “Some Steps toward the Automation of the Design of Composite Dielectric Structures”, IEEE Transactions on Dielectrics and Electrical Insulation, Vol. 1 No. 4, August 1994.

Okabe, S., Takami, J., “Evaluation of Breakdown Characteristics of Oil immersed Transformers under Non-standard Lightning Impulse Waveforms - Method for Converting Non-standard Lightning Impulse Waveforms into Standard Lightning Impulse Waveforms”, IEEE Transactions on Dielectrics and Electrical Insulation Vol. 15, No. 5; Oct.2008

Moser et al ”Transformerboard”, 1979

S. V. Kulkarni and S. A. Khaparde, “Transformer Engineering:Design and Practice”. Newyork: Marcel Dekker, May 2004.

Khaligh A, et al “ Power Transformers Internal Insulation Design Improvements Using Electric Field Analysis Through Finite-Element Methods” TENCON 2004 IEEE Region 10 Conference Nov. 2004

Ch. Krause et al, “Economic design of power transformer high voltage lead exit system” Proceedings of 14th international symposium on high voltage Engineering, August 2005.

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Published

05-05-2012

How to Cite

Beema Thangarajan, R., Usa, S., Ahammad, S. A. ., R. Muthuraj, & M. Govindaraj. (2012). Optimisation of End Insulation Design in Power Transformer. Asian Journal of Electrical Sciences, 1(1), 53–57. https://doi.org/10.51983/ajes-2012.1.1.1648