Permanent Magnetic Holding Device Design Using ANSYS Maxwell

Cheng-Yi Chen, C. Tsao, Chao-Ming Hsu, H. Chuang, Min-Hsien Cheng
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Abstract

This paper aims to design an electrical holding device using NdFeB N35 permanent magnet to achieve saving energy as well as increase holding power. The NdFeB N35 permanent magnet is placed inside the iron yoke so that it retains the magnetic force at all times, and the electrical coils energizes to increase or decrease the surface magnetic force to achieve stronger adsorption or easy removal of the adsorbate. The design is achieved through the analysis of the magnetic model in ANSYS Maxwell. The analysis errors between the ANSYS Maxwell model and the prototype device are under 5%. Then, under the condition when the external shape is unchanged, the ANSYS Maxwell model is applied to obtain the optimal suction power with respect to the variable internal dimensions. The yoke size can change the relative position and size of the coils to form a new magnetic circuit. When the coil is less than 1mm from the surface of the suction cup, the surface magnetic flux density will be largely increased. At the same power, increasing the winding coils does not improve the performance of the suction power because of increasing the coil resistance. The enlarged voltage input can raise the coil current such that the surface magnetic flux density can be enhanced to produce the more suction power. In the future, the proposed approach can be applied the electromagnetic chuck design in robotics application.
基于ANSYS Maxwell的永磁夹持装置设计
本文旨在设计一种采用钕铁硼N35永磁体的电保持装置,以达到节能和提高保持功率的目的。将钕铁硼N35永磁体放置在铁轭内,使其始终保持磁力,并通过电线圈通电以增加或减少表面磁力,从而实现更强的吸附或易于去除吸附质。该设计是通过ANSYS Maxwell中的磁模型分析实现的。ANSYS Maxwell模型与样机的分析误差在5%以下。然后,在外形不变的情况下,应用ANSYS Maxwell模型,求出内部尺寸变时的最优吸力。轭架的尺寸可以改变线圈的相对位置和尺寸,形成新的磁路。当线圈距离吸盘表面小于1mm时,表面磁通密度将大大增加。在相同的功率下,由于增加了线圈电阻,增加了绕组线圈并不能提高吸力的性能。增大的电压输入可以提高线圈电流,从而提高表面磁通密度,产生更大的吸力。该方法可应用于机器人电磁吸盘的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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