Breakdown Behaviour of Oil-Barrier Insulation at Lightning Impulse Voltage

R. Haller, J. Hornak, P. Trnka, R. Hamar, J. Hlavacek
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Abstract

The breakdown behavior of oil-barrier insulation is of special interest for design, manufacturing and quality testing for relevant insulations in electrical apparatus. Besides the commonly used mineral oil with different chemical structure (inhibitors) also other insulating fluids as natural and synthetic esters become more and more applied as an alternative ecofriendly fluid. The application in electrical power apparatus needs, at least, the same withstand ability against electrical breakdown as given by the well-known mineral oil properties. In practical design e.g. of power transformers very often interfaces of pressboard material are used mainly in form of insulating barriers. Therefore, the knowledge of breakdown properties of such type of insulation and, in particular, the interaction between the pressboard barrier and the insulating fluid seems to be obligatory for an optimal design of relevant apparatus. The paper deals with some results of breakdown behavior of oil-barrier insulation at inhomogeneous field under lightning impulse voltage stress conditions. The investigation was performed with various types of mineral oil as well as natural and synthetic esters. To provide inhomogeneous field conditions a test arrangement tip-to-semi-sphere was used. For having some reference values also the same test set without barrier (pure oil) was investigated. Additionally, some tests were carried out at standardized conditions (homogeneous field). For generalizing of measured voltage values the electrical breakdown field strength was evaluated. At pure oil test set (reference values) the known polarity effect was measured, what means, that at positive polarity (tip) the breakdown values are significantly lower than at negative one. That was valid for all tested oil types excluding the synthetic ester (FR 3), at which an opposite result was obtained. With pressboard insulation the charging effect of the barrier leads to significant higher electrical breakdown field strength, dependent on used fluid. When the barrier insulation was tested with mineral oil NYTRO BIO, the highest breakdown field strength of ∼ 300 kV/mm was obtained (negative polarity). The measured polarity effect for the tested fluids was not so unambiguously as for reference values e.g. so for NYNAS TAURUS, LYRA and FR 3 lower breakdown values have been measured at negative polarity. Also the impact of surface charge on the barrier to the breakdown process was studied by simulation and measurement. Generally, the surface charge on barrier increase the resulting electrical field strength and leads in the insulating gap between barrier and semi- sphere to a (quasi) homogeneous field. If the value of that field strength is high enough, the final breakdown will be initiated. Because of various discharge conditions for “uploading” the barrier under different polarities the mentioned polarity effect might be understandable. That effect should be further investigated. Nevertheless, any evidence of barrier in the insulation gap may increase the electrical breakdown field strength significantly. The obtained results may contribute to a deeper understanding of the breakdown behavior of oil-barrier insulation at different oil / fluid types and inhomogeneous field condition. Especially the impact of surface charges on barrier to the breakdown ability should be further investigated.
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油障绝缘在雷击电压下的击穿行为
油障绝缘的击穿特性对电气设备中相关绝缘的设计、制造和质量测试具有特殊的意义。除了常用的具有不同化学结构的矿物油(抑制剂)外,天然酯类和合成酯类等绝缘流体也作为一种可替代的环保流体得到越来越多的应用。在电力设备中的应用至少需要与众所周知的矿物油特性相同的耐电击穿能力。在实际设计中,例如电力变压器,经常使用压板材料的界面作为绝缘屏障。因此,了解这种类型的绝缘的击穿特性,特别是压板屏障和绝缘流体之间的相互作用,对于相关设备的优化设计似乎是必要的。本文讨论了在雷击电压应力条件下非均匀场油障绝缘击穿行为的一些结果。对各种矿物油以及天然酯和合成酯进行了研究。为了提供非均匀场条件,采用了尖端到半球体的测试布置。为了有一定的参考价值,还研究了相同的无屏障试验装置(纯油)。此外,在标准化条件下(均质场)进行了一些试验。为了推广测量电压值,对击穿场强进行了评估。在纯油测试集(参考值)测量已知极性效应,这意味着在正极性(尖端)击穿值明显低于负极性。除合成酯(fr3)外,该结果适用于所有被测试的油类型,合成酯得到了相反的结果。使用压板绝缘时,屏障的充电效应导致明显更高的击穿场强度,这取决于使用的流体。当用NYTRO BIO矿物油测试屏障绝缘时,获得的最高击穿场强为~ 300 kV/mm(负极性)。被测流体的极性效应并不像参考值那样明确,例如,对于NYNAS TAURUS, LYRA和FR 3,在负极性下测量了较低的击穿值。并通过模拟和测量研究了表面电荷对势垒击穿过程的影响。一般来说,势垒上的表面电荷增加了所产生的电场强度,并导致势垒与半球体之间的绝缘间隙形成(准)均匀场。如果该场强值足够高,就会引发最终击穿。由于在不同极性下“上传”势垒的放电条件不同,所以上述极性效应是可以理解的。这种影响应该进一步研究。然而,任何绝缘间隙中存在屏障的迹象都可能显著增加击穿场强。所得结果有助于更深入地了解不同油/流体类型和非均匀油田条件下油屏障绝缘的击穿行为。特别是表面电荷对势垒击穿能力的影响有待进一步研究。
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