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Magnetic Properties of Simultaneously Excited Amorphous and Silicon Steel Hybrid-Cores for Higher-Efficiency Distribution Transformers.

机译:同时激发的非晶和硅钢混合芯的磁性特性,用于高效分布变压器。

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Amorphous core transformers (AMT) have the major advantage of higher power efficiency due to lower iron loss (Wi) compared with that of grain-oriented silicon steel (GO) cores used in conventional transformers (SiT) [1]. Some studies have attempted to increase the power capacity of AMTs to over 5 MVA [2]. However, the enlarged amorphous core, made from stacked foils 25-mm thick, is vulnerable; it requires structures to support its weight. Additionally, the saturated magnetic flux density (BS) and the lamination factor of the amorphous core are approximately 18% and 10% lower, respectively, than those of the GO core. This results in the amorphous core having a larger cross-sectional area than that of the GO core with same the specifications. To enable the use of an amorphous core with lower Wi in large capacity distribution transformers, we investigated the practicality of a hybrid-configured annular core consisting of an amorphous core combined with a GO core, which has the advantages of a higher BS, lamination factor, and mechanical strength than the amorphous core. The distributions of the magnetic flux density and Wi in the hybrid core were measured and calculated with electromagnetic analysis using the three-dimensional finite element method (FEM) while the two individual cores, amorphous and GO, were excited simultaneously. We then designed a prototype 5-MVA single-phase hybrid core transformer (HBT) on the basis of our investigation results. The prototype had improved power efficiency due to its lower Wi and reduced size enabled by the increased amplitude of magnetic flux density, Bm.
机译:非晶核心变压器(AMT)由于较低的铁损(W.)具有较高功率效率的主要优点(W. i )与传统变压器中使用的谷物导向的硅钢(GO)芯相比(坐下)相比 [1] 。一些研究试图将AMTS的功率容量增加到超过5个MVA [2] 。然而,由25毫米厚的堆叠箔制成的扩大的非晶芯,很脆弱;它需要结构支持其重量。另外,饱和磁通密度(B s “无定形核的层压因子分别比去核的那些分别为约18%和10%。这导致非晶芯具有比具有相同规格的横截面的横截面积更大的横截面区域。使使用较低的W的非晶芯 i 在大容量分配变压器中,我们研究了由无定形核心组成的混合配置的环形芯的实用性与GO核心相结合,这具有更高的B s 比无定形核心,层压因子和机械强度。磁通密度和W的分布 i 在混合核心中测量并用电磁分析使用三维有限元法(FEM),而两个单独的核心,无定形和去,同时发生。然后,我们在我们的调查结果的基础上设计了一种原型5-MVA单相混合核心变压器(HBT)。原型由于其较低的W导致的功率效率提高 i 通过增加磁通密度的幅度,B的减小尺寸减小,B m

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