...
首页> 外文期刊>Procedia CIRP >Change in Surface Magnetic Flux Density in EDM of Permanent Magnets-Influence of Internal Temperature and Shape on Machined Magnets
【24h】

Change in Surface Magnetic Flux Density in EDM of Permanent Magnets-Influence of Internal Temperature and Shape on Machined Magnets

机译:永磁体电火花加工中表面磁通密度的变化-内部温度和形状对机加工磁体的影响

获取原文
   

获取外文期刊封面封底 >>

       

摘要

Traditional machining of a permanent magnet is difficult because of magnetic forces and brittleness of materials. However, electrical discharge machining (EDM), which is a non-contact thermal machining method, has carried out for shape machining of magnetic materials. Magnetic materials have a Curie point. As their magnetic flux density reduces when they are heated to a high temperature. Because EDM is a thermal process, it has the potential to control the magnetic flux density of a machined surface.In this study, to clarify the relationship between magnetic flux density and temperature distributions in depth direction of permanent magnet by EDM, internal temperatures of magnets were investigated using a K type thermocouple during EDM. Neodymium magnets were used as work-pieces. The magnetic flux density of a machined neodymium magnet was measured. In addition, the effects of duty factor (D.F.) and in Diamagnetic Field were also examined. The results showed that the average temperature inside of the magnet is determined by the input energy, depending on the discharge conditions. A decrease of surface magnetic flux density after EDM is affected by the magnitude of the area and the amount of decrease is due to the increase of the internal temperature of the magnet. In a diamagnetic field EDM, the reduction in magnetic flux density is large compared with a regular magnetic field. However, there is no difference in internal temperature each machining. Therefore, it isn’t determined simply by the magnitude of the input energy. It can be said that combination of heat history and machined magnet shape determine the magnetic flux density.
机译:由于磁力和材料的脆性,传统的永磁体加工是困难的。但是,作为磁性材料的形状加工,已经进行了非接触式热加工方法即放电加工(EDM)。磁性材料具有居里点。当它们被加热到高温时,它们的磁通密度降低。由于电火花加工是一个热过程,因此有潜力控制加工表面的磁通密度。本研究通过电火花加工阐明永磁体深度方向的磁通密度与温度分布,磁体内部温度之间的关系。在电火花加工过程中使用K型热电偶进行了研究。钕磁铁用作工件。测量了机加工钕磁铁的磁通密度。此外,还研究了占空比(D.F.)和反磁场的影响。结果表明,磁体内部的平均温度取决于输入能量,取决于放电条件。 EDM之后表面磁通密度的降低受面积大小的影响,而降低的量则是由于磁体内部温度的升高。在反磁场EDM中,与常规磁场相比,磁通密度的减小很大。但是,每次加工的内部温度没有差异。因此,它不仅仅取决于输入能量的大小。可以说,热历史和机械加工的磁体形状的组合决定了磁通密度。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号