【24h】

Aspects of Electrodynamic Forming Processes

机译:电动形成过程的方面

获取原文
获取外文期刊封面目录资料

摘要

Two types of electrodynamic forming process have been developed: electromagnetic and electrohydraulic forming. In the case of electromagnetic forming, the energy stored in a capacitor bank is discharged through a coil, which means that the electrical interaction between the coil and the plate or a tubular part to be formed results in deformation of the workpiece. However, in the case of electrohydraulic forming, the capacitor bank is discharged through a spark gap or filament wire; the deformation of the workpiece is due to the shockwaves, generated by the discharge process in a transmitting medium. In both processes, a large amount of energy is released in extremely short time, therefore these processes are considered to be high energy rate forming processes. These high energy rates, result in increasing the formability of the materials in many cases, and obtain significant deformations also for some materials that normally do not behave plastically. The utilization of the energy stored in the capacitor bank is significantly better in the case of electrohydraulic forming, because the released energy is converted directly to pressure waves, results in forming of higher strength materials. Both metallic and non-metallic materials can be formed by the technologies of electromagnetic and electrohydraulic technologies. In the present paper some aspects and applications of these high energy rate methods are briefly outlined mainly focusing on the automotive industry, involving expansion or compression forming of tubular parts, joining and assembly operations.
机译:已经开发了两种类型的电动成形工艺:电磁和电液形成。在电磁成形的情况下,存储在电容器组中的能量通过线圈排出,这意味着线圈和板之间的电相互作用或待形成的管状部件导致工件的变形。然而,在电液压形成的情况下,电容器组通过火花隙或长丝线路排出;工件的变形是由于透射介质中的放电过程产生的冲击波。在这两个过程中,在极短的时间内释放大量能量,因此这些过程被认为是高能量率形成过程。这些高能量率,导致在许多情况下提高材料的可成形性,并且对于通常不塑性的材料也可以获得显着的变形。在电液形成的情况下,存储在电容器组中的能量的利用显着更好,因为释放的能量直接转换为压力波,导致形成更高的强度材料。金属和非金属材料都可以通过电磁和电液技术的技术形成。在本文中,简要概述了这些高能速率方法的一些方面和应用,主要关注汽车行业,涉及膨胀或压缩成型管状部件,加入和装配操作。

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