Finite Element Analysis of Free Energy Permanent Magnet Motor Using Solidworks and Finite Element Method Magnetics (FEMM) Software

Talal A. Elmasri, Mabrooka A. Elmasri, Esra S. Abdulhafid
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Abstract

These days, our environment is getting worse, and the emission of gas from non-renewable energy sources such as fossil fuel and coal is the main reason for the current environmental issue. Therefore, the development of new energy sources which is clean and non-polluted to the environment is getting more demand in our world today. Free energy sources such as magnet energy are adaptable in replacing non-renewable energy sources. A permanent magnetic generator is a free-energy instrument that gives off entirely free energy by using the energy stored in permanent magnets. Much research has been done in this area, but none of which precisely focused on the tradeoff of magnetic material in this application. Although plenty of different magnetic materials have been synthesized including nanomagnetic ones, it is not easy to select an optimal magnetic material for a certain technological application due to their properties confliction. In this study, a new design of free energy permanent magnet generator has been developed and significant simulations are being done by using Solidworks and Finite Element Method Magnetics (FEMM) software for simulation modeling in order to tradeoff among magnetic materials in terms of performance. Results show NdFeB 52 MGOe which are very strong magnets made from alloys of rare-earth elements offer an optimum performance of around 11,309.734 J per motor cell and 8 magnets of 28,696.92 size in mm3 for a disk of radius 20cm; however, they are so expensive and in limited supply. Alternatively, strong nanomagnetic materials have been synthesized to replace rare-earth-based magnets in different applications.
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利用Solidworks和有限元法磁力(FEMM)软件对自由能永磁电机进行有限元分析
如今,我们的环境越来越糟,不可再生能源如化石燃料和煤炭排放的气体是当前环境问题的主要原因。因此,开发清洁无污染的新能源在当今世界的需求越来越大。磁能等自由能源可替代不可再生能源。永磁发电机是一种自由能的仪器,它利用储存在永磁体中的能量释放出完全自由的能量。在这个领域已经做了很多研究,但没有一个是精确地关注磁性材料在这个应用中的权衡。虽然包括纳米磁性材料在内的许多不同的磁性材料已经被合成,但由于它们的性质相互冲突,选择一种适合某一技术应用的最佳磁性材料并不容易。在这项研究中,开发了一种新的自由能永磁发电机的设计,并利用Solidworks和有限元法磁学(FEMM)软件进行了仿真建模,以便在性能方面权衡磁性材料。结果表明,由稀土元素合金制成的钕铁硼52 MGOe磁体的最佳性能约为11,309.734 J /个,在半径为20cm的磁片上,磁体尺寸为28,696.92 mm3;然而,它们太贵了,而且供应有限。另外,强纳米磁性材料已经被合成,在不同的应用中取代稀土基磁体。
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