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Transformer insulation structure for dielectric liquids with higher permittivity

机译:用于介电常数较高的绝缘液体的变压器绝缘结构

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Insulation structures based on cellulosic materials and mineral oil have been the standard solution for transformers for the last hundred years, both in distribution and power transformers. These structures typically consist of a solid-liquid arrangement, aimed to divide larger voltage drops in smaller steps, creating small volumes of liquid with high dielectric insulating performance and reaching the most compact design. The total potential difference is borne by sequential voltage drops defined according to the geometry and the permittivity of the materials. Standard arrangements and configurations have been developed by transformer manufacturers according to the voltage levels, as the analytical solution of the distribution of the electrical field may be extremely complex. Even nowadays, where numerical calculation models, mostly based on the Finite Elements Method, are available, the use of standardized solutions is not uncommon, as the detailed calculation may be highly time consuming. When the dielectric liquid is changed, replacing the traditional mineral oil by natural ester liquid, the distribution of stress in the insulation system is no longer the same. The permittivity of natural ester liquid is around 40% higher than that of mineral oil, while the permittivity of pressboard and paper made from kraft pulp, impregnated with natural ester liquids is just slightly higher. The result is a different distribution of voltage drops in the insulation system, which must be taken into consideration when designing a natural ester filled transformer. At first glance, the effect is positive, since the critical parameter is typically the stress, the field strength, in the liquid insulation and the higher permittivity shifts the stress from the liquid into the solid insulation. This modification of electrical field distribution may allow, in some cases, increasing the average field strength and thus a more compact design, as there is a better balance between the stress in the solid and liquid portions. However, the modification of the electrical field distribution may lead also to new critical regions. Corners and labyrinth constructions may have higher superficial dielectric field gradients. Additional edge protection may be required in regions where they were not required with mineral oil, as the stress in the paper will be increased. Less specialized engineers tend to take the breakdown voltage as the only relevant parameter for the insulation design. A large quantity of test data has indicated that the breakdown voltage of natural ester liquid, excluding the undesirable highly divergent field (needle to sphere), is similar to mineral oil. But this does not mean that adjustments in the insulation system design would not be required. This paper will present some common configurations, potential optimizations and areas requiring attention for designing insulation systems using cellulose and natural ester liquids.
机译:在过去的一百年中,无论是配电变压器还是电力变压器,基于纤维素材料和矿物油的绝缘结构一直是变压器的标准解决方案。这些结构通常由固液结构组成,旨在以较小的步幅划分较大的电压降,从而产生具有高介电绝缘性能的小体积液体,并达到最紧凑的设计。总电位差由根据材料的几何形状和介电常数定义的顺序压降承担。变压器制造商已经根据电压水平开发了标准的布置和配置,因为电场分布的解析解决方案可能非常复杂。即使在如今可以使用主要基于有限元法的数值计算模型的今天,标准化解决方案的使用也很常见,因为详细的计算可能会非常耗时。当改变介电液体,用天然酯液体代替传统的矿物油时,绝缘系统中的应力分布不再相同。天然酯液体的介电常数比矿物油的介电常数高40%左右,而浸渍有天然酯液体的由牛皮纸浆制成的压纸板和纸的介电常数略高。结果是绝缘系统中压降的分布不同,在设计天然酯填充变压器时必须将其考虑在内。乍看之下,效果是肯定的,因为关键参数通常是液体绝缘中的应力,场强,而较高的介电常数会将应力从液体转移到固体绝缘中。电场分布的这种修改在某些情况下可以允许增加平均场强,从而可以实现更紧凑的设计,因为在固态部分和液态部分中的应力之间存在更好的平衡。然而,电场分布的改变也可能导致新的关键区域。角和迷宫结构可能具有较高的表面介电场梯度。在矿物油不需要的区域,可能需要额外的边缘保护,因为纸中的应力会增加。较少的专业工程师倾向于将击穿电压作为绝缘设计的唯一相关参数。大量测试数据表明,天然酯液体的击穿电压(不希望有的高发散场(针到球)除外)与矿物油相似。但这并不意味着不需要调整绝缘系统的设计。本文将介绍一些常见的配置,潜在的优化以及在使用纤维素和天然酯液体设计绝缘系统时需要注意的领域。

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