Analysis of layer insulation of cast resin transformer using FEM technique

R. Patil, B. E. Kushare
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Abstract

In this paper, a 400kVA, 11/0.433kV cast resin transformer (CRT) insulation system is considered for optimization. Due to its numerous advantages, the design and manufacturing technology for CRT is demanding, which can only be fulfilled if the design and manufacturing is free from any defects. The reliability and life of the CRT is defined by the life of its insulation system which is again a function of thermal and electrical stresses. To meet the allowable criteria for temperature rise is relatively an easy task for design engineers. Thus, within a window of 30 years, the reliability and life of CRT remains the function of electrical stresses only. Any activity of partial discharge (PD) in solid insulation leads to degradation of the solid insulation. In the event of PD, time to failure depends on PD energy, PD resistivity of the materials and dielectric gap. Optimization of electric field and ensuring a void-free insulation system is must to avoid the premature failure of CRT. The electric field in CRT; more specifically, in HV winding depends on the electrical stresses in inter-layer insulation. At microscopic level, turns per layer (differential turns), insulation thickness between layers, and conductor radius decides the electrical stresses. This paper addresses the optimization of inter-layer insulation design with finite element method (FEM) using 2D-ElecNet software by Infolytica Corporation. This software can be used for all types of electrostatic and electromagnetic analysis. It's a powerful tool that uses finite element analysis (FEA) to solve AC electromagnetic, electrostatic problems which provides powerful electric field simulations for both static and current flow related problems.
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用有限元法分析铸造树脂变压器的层绝缘
本文以400kVA、11/0.433kV铸造树脂变压器(CRT)绝缘系统为研究对象进行了优化设计。由于CRT的诸多优点,它的设计和制造技术要求很高,只有在设计和制造没有任何缺陷的情况下才能实现。阴极射线管的可靠性和寿命是由其绝缘系统的寿命决定的,而绝缘系统的寿命又是热应力和电应力的函数。对于设计工程师来说,满足温升允许标准是一件相对容易的事情。因此,在30年的窗口内,CRT的可靠性和寿命仍然只是电应力的功能。固体绝缘中的任何局部放电(PD)活动都会导致固体绝缘的退化。在发生局部放电时,失效时间取决于局部放电能量、材料的局部放电电阻率和介电间隙。为了避免阴极射线管的过早失效,必须对电场进行优化,保证绝缘系统无空隙。阴极射线管中的电场;更具体地说,高压绕组取决于层间绝缘中的电应力。在微观层面上,每层匝数(差匝数)、层间绝缘厚度和导体半径决定了电应力。本文利用Infolytica公司的2D-ElecNet软件,采用有限元法对层间保温设计进行优化。该软件可用于所有类型的静电和电磁分析。它是一个强大的工具,利用有限元分析(FEA)来解决交流电磁、静电问题,它为静态和电流相关问题提供了强大的电场模拟。
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