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首页> 外文期刊>Procedia CIRP >Particle Hydrodynamics of the Electrical Discharge Machining Process. Part 1: Physical Considerations and Wire EDM Process Improvement
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Particle Hydrodynamics of the Electrical Discharge Machining Process. Part 1: Physical Considerations and Wire EDM Process Improvement

机译:放电加工过程的粒子流体动力学。第1部分:物理考虑因素和Wire EDM工艺改进

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During these last years, the evolution of the machining speed of the EDM processes has become a key challenge for this technology. The recent progress made on the spark generators leads to a higher production speed in all processes such wire EDM, die-sinking, drilling, milling, etc. Nevertheless, if the electrical process is developing fast, many limiting factors still remain under investigations. In this context, our group started 7 years ago a research program to increase the understanding of the EDM particle hydrodynamics. We describe in this paper some results obtained and discuss the physical aspects related to the evacuation of the machining debris.During the EDM process, if the cleaning of the dielectric is not effective and some debris remain in the gap, the electrical resistance is locally reduced and the spark occurs at the same place. The process cannot go farther. In this situation, i.e. when the spark frequency and power are high enough, the machining speed is governed mainly by hydrodynamics. In this paper we will present efficient strategies to clean the gap in the wire EDM (part 1) and die sinking processes (part 2).For the wire EDM process (part 1), we have designed and analysed dielectric injection nozzles with the aim of improving the cleaning processes in the gap. Three main tools have been used to achieve this goal. The first is a fluid flow simulation model using CFD solvers. Then, the results have been validated using experimental techniques at full scale on EDM machines. Finally, a test rig has been developed and experimental analyses have been done.
机译:在最近的这些年里,EDM工艺的加工速度的发展已成为该技术的关键挑战。火花发生器的最新进展导致诸如电火花线切割,冲模,钻孔,铣削等所有过程的生产速度提高。尽管如此,如果电气过程发展迅速,许多限制因素仍在研究中。在这种情况下,我们小组7年前开始了一项研究计划,以增进对EDM粒子流体动力学的了解。我们在本文中描述了一些获得的结果并讨论了与清除加工残渣有关的物理方面。在电火花加工过程中,如果电介质的清洁效果不佳并且间隙中残留有某些残渣,则电阻会局部降低并且火花在同一位置发生。这个过程不能走得更远。在这种情况下,即当火花频率和功率足够高时,加工速度主要由流体动力学控制。在本文中,我们将提出有效的策略来清洁电火花线切割(第1部分)和芯片沉没工艺(第2部分)中的间隙。对于电火花线切割工艺(第1部分),我们设计并分析了电介质喷嘴改善缝隙中的清洁过程。已使用三个主要工具来实现此目标。第一个是使用CFD求解器的流体流动模拟模型。然后,已经在EDM机器上使用实验技术对结果进行了验证。最后,开发了一个试验台并进行了实验分析。

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