1970年和现在扬声器磁路的优化

M. Marinescu, N. Marinescu, S. Kuhn
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引用次数: 2

摘要

永磁材料最大的应用之一是扬声器系统。高性能扬声器可以通过使用具有高残余磁通密度的稀土永磁体来获得,例如钕铁硼。因为这种装置的产量非常大,而且稀土永磁体非常昂贵,所以对制造商来说,尽可能减少磁性材料的用量是非常重要的。这一目标可以通过使用设计方法来优化扬声器的磁路来实现,即以最小体积的磁性材料在气隙中获得给定的磁通密度。A. Timotin教授在这方面做了开创性的工作。他和本工作的另一位作者通过解析求解给定边界条件下的磁势方程,计算了扬声器系统气隙中的磁通和泄漏磁通。并对待优化系统的几何参数制定了一定的约束条件。然而,只有在简化的假设下才能得到解析解,而这些假设实际上只能近似地得到满足。用数值方法计算磁场可以避免这种限制。在这项工作中,我们提出了一类优化磁路扬声器系统使用高精度数值有限元方法计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of magnetic circuits for loudspeakers 1970 and now
One of the largest volume applications of permanent magnet materials are loudspeaker systems. High performant loudspeakers can be obtained by using rare earth permanent magnets with a high residual flux density, as for instance NdFeB. Because such devices are produced in a very large quantity and because the rare earth permanent magnets are quite expensive, it is very important for the manufacturer to keep the volume of the magnetic material used as low as possible. This aim can be achieved by using design methods to optimize the magnetic circuit of the loudspeaker, i. e. to obtain a given flux density in the air gap with a minimum volume of magnetic material. Prof. A. Timotin has done in this respect pioneering work. He and one of the authors of the present work have calculated the magnetic flux in the air gap as well the leakage fluxes of a loudspeaker system by solving analytically the magnetic potential equation with given boundary conditions. Also they have formulated certain constraints on the geometrical parameters of the system to be optimized. However the analytical solution could be obtained only under simplifying assumptions which practically are fulfilled only approximately. Such limitations can be avoided by using numerical methods for computation of the magnetic field. In this work we present the optimization of a large class of magnetic circuits for loudspeaker systems by using high precision numeric finite-elements-method computations.
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