Technical solutions to reduce losses in magnetic cores and material consumption of three-phase transformer and reactor equipment

A. A. Stavynskyi, O. A. Avdeeva, D. Koshkin, R. A. Stavynskyi, O. M. Tsyganov
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Abstract

Purpose. The increase in energy costs and the need for further energy saving lead to an increase in requirements for reducing losses in the magnetic cores of transformers and reactors. Problem. The improvement of transformer and reactor equipment is traditionally carried out by applying the achievements of electrical materials science and new technologies to traditional designs and structures of electromagnetic systems. The basis of modern transformers is made up of laminated and twisted magnetic cores. The disadvantage of laminated magnetic cores is large additional losses in corner zones due to the texture of anisotropic steel. Disadvantage of twisted three-phase three-contour magnetic cores is large additional losses caused by the lack of magnetic coupling of three separate magnetic flux contours. The disadvantages of combined joint tape-plate magnetic cores are the unsatisfactory use of the active volume and increased losses, which are determined by the uneven distribution of the magnetic field and the negative impact of steel texture in the corner zones of the twisted parts. Aim. To determine the possibility of improving three-phase transformers and reactors. Methodology. The improvement is achieved by geometrical and structural transformations of the outer contours and elements of the varieties of magnetic cores. Results. The possibility of eliminating additional losses of a planar laminated magnetic core by a combination of anisotropic and isotropic steels at the appropriate location in the yoke-rod and corner sections is determined. With an octagonal outer contour of the combined magnetic core, a reduction in mass is achieved without an increase in losses. The mutually orthogonal position of the steel layers or the elements of the joint twisted and combined three-phase planar and spatial magnetic cores achieves magnetic coupling and elimination of additional losses of individual twisted contour sections. The hexagonal configurations of the inner contours of the twisted yoke-corner parts and the cross-sections of the laminated rods of the variants of the axial spatial joint magnetic core improve the magnetic flux density distribution and reduce the main losses of the yokes, as well as reduce the complexity of manufacturing rods from identical rectangular steel layers. Originality. The paper presents constructive and technological proposals and features of varieties of non-traditional planar and spatial, laminated, twisted and combined tape-plate joint magnetic cores, which differ in the combination of anisotropic, isotropic and amorphous steels, as well as the multifaceted geometric shape of contours and the spatial arrangement of elements. Based on the identity of the optimal geometric ratios of the variants of electromagnetic systems of transformers and reactors, with joint planar and spatial twisted and combined and tape-plate magnetic cores, the unification of the structure of transformer and reactor equipment with a capacity of I-III dimensions.
降低三相变压器和电抗器设备磁芯损耗和材料消耗的技术解决方案
目的。由于能源成本的增加和进一步节能的需要,对降低变压器和电抗器磁芯损耗的要求也随之提高。问题变压器和电抗器设备的改进历来是通过将电气材料科学的成果和新技术应用于电磁系统的传统设计和结构来实现的。现代变压器的基础是层叠和扭曲磁芯。叠片磁芯的缺点是,由于各向异性钢的质地,角区的附加损耗较大。扭转式三相三轮廓磁芯的缺点是由于三个独立的磁通轮廓之间缺乏磁耦合而产生大量额外损耗。组合式带板磁芯的缺点是有效容积的利用率不高,而且由于磁场分布不均和扭曲部分角区钢材质地的负面影响,损耗增加。目的确定改进三相变压器和电抗器的可能性。方法。通过对各种磁芯的外轮廓和元件进行几何和结构改造来实现改进。结果。通过在轭杆和角部的适当位置结合使用各向异性钢和各向同性钢,确定了消除平面叠片磁芯额外损耗的可能性。组合磁芯的外轮廓呈八角形,可在不增加损耗的情况下减轻质量。钢层或三相平面磁芯和空间磁芯联合扭转组合元件的相互正交位置实现了磁耦合,消除了单个扭转轮廓部分的额外损耗。扭曲轭角部件内轮廓的六边形配置和轴向空间联合磁芯变体层叠棒的横截面改善了磁通密度分布,降低了轭的主要损耗,并降低了用相同矩形钢层制造棒的复杂性。独创性论文介绍了非传统的平面和空间、层叠、扭曲和组合式带板连接磁芯的结构和技术建议及特点,这些磁芯在各向异性钢、各向同性钢和非晶体钢的组合以及轮廓的多面几何形状和元件的空间排列方面各不相同。在确定变压器和电抗器电磁系统变体的最佳几何比率的基础上,结合平面和空间扭曲磁芯、组合磁芯和带板磁芯,统一了变压器和电抗器设备的结构,其容量为 I-III 尺寸。
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