一种用于大面积板料电磁成形的100kj脉冲装置

W. Hartmanm, M. Romheld, A. Donner
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引用次数: 10

摘要

磁成形或管或板金属零件可以显着扩展几何形状的范围可以想象与最先进的成形方法。一个主要的优点是相当高的成形速度可实现的过程中使用磁性活塞无惯性。研制出一种适用于大面积板料电磁成形的大电流高能脉冲发生器并投入使用。设计标准是所有可能的负载情况下的可靠性和固有安全性,包括短路和运行过程中的短路负载,标称峰值电流高达200 kA,峰值脉冲能量高达100 kJ。为了符合安全要求,选择了全固态设计,使用高功率半导体开关来形成脉冲,而不是点火管或火花间隙。由于空间和可管理性的限制,负载和脉冲成形单元之间的耦合是通过高压电缆的半刚性束来实现的,允许在与脉冲发生器电连接的同时调整成形线圈的载体。我们报告了脉冲发生器的部署,预期峰值电流为50 kA至200 kA,脉冲宽度通常约为100 mus,具体取决于负载参数。为了满足适用于工业应用的寿命要求,高达450 kA的峰值电流的短路处理能力是脉冲发生器设计中的一个主要问题。并联电容器组采用模块化、三支路设计,可满足可靠性、寿命和短路处理等要求。原型脉冲发生器是基于现成的设备,包括大电流半导体开关。报告了该装置调试阶段的首次运行结果
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A 100 kJ Pulse Unit for Electromagnetic Forming of Large Area Sheet Metals
Magnetoforming or tube or sheet metal parts can significantly extend the range of geometries conceivable with state-of-the-art forming methods. A major advantage is the considerably higher forming speed of the process achievable by using a magnetic piston without inertia. A suitable high-current high energy pulse generator for electromagnetic forming of large area sheet metal has been developed and taken into operation. Design criteria were reliability and inherent safety for all possible load cases, including short circuits and short-circuiting loads during operation, at nominal peak currents up to 200 kA and peak pulse energies of up to 100 kJ. In order to comply with the safety requirements, an all-solid-state design has been chosen using high power semiconductor switches for pulse forming instead of Ignitrons or spark gaps. Due to constraints concerning space and manageability, the coupling between the load and the pulse forming unit is achieved via a semi-rigid bundle of high voltage cables, allowing an adjustment of the carrier of the forming coil while being electrically connected to the pulse generator. We report on the deployment of the pulse generator for anticipated peak currents of 50 kA to up to 200 kA at a pulse width of typically around 100 mus, depending on the load parameters. In order to meet lifetime requirements suitable for industrial applications, the short circuit handling capability of peak currents of up to 450 kA is a major issue in the pulse generator design. A modular, 3-branch design of parallel capacitor banks has been adopted and is shown to be suitable to achieve the requirements concerning reliability, lifetime, and short circuit handling. The prototype pulse generator is based upon off-the-shelf devices, including high-current semiconductor switches. First operating results of the commissioning phase of the installation are reported
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