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首页> 外文期刊>IEEE Transactions on Magnetics >Finite-Element Modeling and Measurements of Flux and Eddy Current Distribution in Toroidal Cores Wound From Electrical Steel
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Finite-Element Modeling and Measurements of Flux and Eddy Current Distribution in Toroidal Cores Wound From Electrical Steel

机译:电工钢缠绕环形铁芯的通量和涡流分布的有限元建模与测量

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摘要

Despite the apparent relative simplicity of the wound toroidal geometry, numerical modeling techniques are very difficult to implement due to the inherent large mesh size required to model a laminated core or spiral geometry. Recent advancements in computing capabilities have made the simulation and the study of such devices more feasible. Finite-element modeling of toroidal cores wound from grain-oriented electrical steel was conducted to accurately represent their magnetic circuits in order to calculate the internal magnetic flux distribution, its interaction with core geometry, and to be able to predict the associated magnetic losses. The general flux distribution trends agree with measured results from identical cores. The interlaminar flux and the associated induced planar eddy currents were also calculated. The measurements were performed using a series of search coils enclosing every five turns. In each case, the core was magnetized at 50 and 400 Hz under controlled sinusoidal flux density up to 1.5 T.
机译:尽管缠绕的环形几何结构表面上相对简单,但由于建模叠层铁心或螺旋几何结构所需的固有大网格尺寸,因此很难实现数值建模技术。计算能力的最新发展已使对此类设备的仿真和研究更加可行。进行了由晶粒取向电工钢缠绕的环形铁芯的有限元建模,以准确表示其磁路,从而计算内部磁通量分布,其与铁芯几何形状的相互作用,并能够预测相关的磁损耗。总通量分布趋势与相同铁心的测量结果一致。还计算了层间通量和相关的感应平面涡流。使用一系列每五匝围绕一次的搜索线圈进行测量。在每种情况下,磁心在高达1.5 T的受控正弦磁通密度下分别以50和400 Hz磁化。

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