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Method of Equivalent Currents for the Calculation of Magnetic Fields in Inductors and Magnets with Application to Electronics

机译:计算电感器和磁铁中磁场的等效电流方法及其在电子领域的应用

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Magnetic components are essential in many applications of electronics. Despite a very clear understanding of magnetic phenomena developed from first principles of Electromagnetics and Maxwell's equations, modelling of the magnetic field, flux and force in a particular system can be a very challenging problem. Often, direct calculations are avoided, and a phenomenological model describing magnetic interactions is used instead. There are a number of methods which can be used for the modelling of the magnetic field due to magnetic materials and inductors and which can provide detailed and predictive information on such systems. Multi-physics scientific packages utilising finite-element methods are among the most common tools as they can solve a wide range of different problems and employ universal numerical algorithms. As a trade-off, they are very resource-intensive and have a low speed of execution. As an alternative, one can develop simulation techniques utilising magnetic dipoles or equivalent currents. These methods are less resource-intensive and very fast; however, they also have their limitations. This paper presents a method of equivalent currents developed for the fast calculation of the magnetic field and flux. We show the application of the method to inductors and permanent magnets that have a particular importance in power electronics and electromagnetic kinetic energy harvesting.
机译:磁性元件在电子产品的许多应用中都是必不可少的。尽管对从电磁学的第一性原理和麦克斯韦方程式发展而来的磁现象有了非常清晰的理解,但是对特定系统中的磁场,通量和力进行建模可能是一个非常具有挑战性的问题。通常,避免直接计算,而改用描述磁性相互作用的现象学模型。由于磁性材料和电感器,有许多方法可用于磁场建模,并且可以提供有关此类系统的详细和预测性信息。利用有限元方法的多物理科学软件包是最常见的工具,因为它们可以解决各种不同的问题并采用通用数值算法。作为一种折衷,它们非常耗费资源并且执行速度很慢。作为替代方案,可以开发利用磁偶极子或等效电流的仿真技术。这些方法占用的资源较少,而且速度很快。但是,它们也有其局限性。本文提出了一种等效电流的方法,用于快速计算磁场和通量。我们展示了该方法在电感器和永磁体中的应用,这些电感器和永磁体在电力电子和电磁动能的收集中特别重要。

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