用有限元法研究高纯薄导体中的涡流、固体损耗、感应电压和磁转矩

M. Jalali Mehrabad, M.H. Ehsani
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引用次数: 4

摘要

本文采用有限元方法系统地研究了圆形薄导体中的涡流、感应电压、固体损耗和磁转矩。利用ANSYS MAXWELL建立二维模型,模拟瞬态环境下的磁场和电流。旋转磁体是由镍钴合金制成的矩形永磁体。对银、铜、钨和石墨四种高纯导体金属进行了模拟。计算了试件的电阻。模拟结果表明,试样的体积电导率与薄导体金属中产生的涡流有很强的相关性。该模型可用于样品电阻率的测量和薄膜的无损检测研究。
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An Investigation of Eddy Current, Solid Loss, Induced Voltage and Magnetic Torque in Highly Pure Thin Conductors, Using Finite Element Method

In this paper, eddy current, induced voltage, solid loss and magnetic torque in circular thin conductors were systematically investigated using finite element method. Two-dimensional models were constructed using ANSYS MAXWELL to simulate the magnetic field and current in a transient environment. A rectangular permanent magnet made of alnico5 was used as the rotational magnet. Simulations were carried out for four highly pure conductor metals, silver, bronze, tungsten and graphite. The electrical resistance of the specimens was calculated. The results of the simulations for these specimens show that there is a strong correlation between bulk conductivity of the specimens and eddy current induced in the thin conductor metals. The model presented in this paper can be used in measuring the electrical resistivity of the samples and non-destructive test studies of thin conductor thin films.

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