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Magnetostriction of Transformer Core Steel Considering Rotational Magnetization

机译:考虑旋转磁化的变压器芯钢的磁致伸缩

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As it is well known, the power loss of transformer core steel depends on a series of parameters which vary in the final core in complex ways. The aim of the present study was to investigate the corresponding dependencies for the second key characteristic, i.e., magnetostriction (MS), as the most significant source of no-load noise. The MS-performance of core material was investigated by means of a rotational single sheet tester (RSST). Compared to loss, the peak-to-peak MS in rolling direction (RD; as the direction of strongest strain) shows similar increases with increases of both induction and axis ratio $a$ . On the other hand, the shape of induction pattern $B (t)$ proves to be rather insignificant, MS being similar for elliptic and rhombic magnetization. While increased dynamics of the pattern yields rising eddy current loss, MS remains unaffected. However, the harmonics show increases as being of relevance for audible noise. While mechanical tension in RD yields slight decreases of MS for alternating magnetization, MS for rotational magnetization increases for both tension and compression. As in the case of loss, MS shows significant increases for DC-bias which correlates with reports of increased noise. The study also included local measurements on a 2-limb, 1-phase model core and on a 3-limb, 3-phase core. MS remains in the order of 0.5 ppm for the 1-phase core, except from its corners. On the other hand, T-joint regions of the 3-phase core show values up to the order of 6 ppm, in accordance to RSST-results. Moderate DC magnetization, as being possible in practice as a long term phenomenon, yields distinct increase of MS intensity and MS harmonics with strong regional differences.
机译:众所周知,变压器铁心钢的功率损耗取决于一系列参数,这些参数在最终铁心中以复杂的方式变化。本研究的目的是研究第二关键特性(即磁致伸缩(MS))作为空载噪声的最重要来源的相应依赖性。芯材的MS性能通过旋转单片测试仪(RSST)进行了研究。与损耗相比,轧制方向(RD;作为最强应变的方向)的峰峰MS随感应率和轴比$ a $的增加而显示出相似的增加。另一方面,感应图案$ B(t)$的形状被证明是微不足道的,MS对于椭圆形和菱形磁化是相似的。当模式的动态增加导致涡流损耗增加时,MS仍不受影响。然而,谐波与可听噪声的相关性增加。 RD中的机械张力使交替磁化的MS略有降低,而旋转磁化的MS的拉伸和压缩均增加。与损耗情况一样,MS的DC偏置也明显增加,这与噪声增加的报告相关。该研究还包括在2臂1相模型铁芯和3臂3相模型铁芯上的局部测量。一相核心的MS保持在0.5 ppm的数量级,但从角落开始除外。另一方面,根据RSST结果,三相铁心的T型接头区域显示的值高达6 ppm。直流磁化强度在实践中可能会长期存在,这会导致MS强度和MS谐波明显增加,且区域差异很大。

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