基于公差的工业密封槽电火花加工工艺优化

T. Petersen, Markus Zeis, T. Bergs
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引用次数: 0

摘要

涡轮叶片密封板可显著减少间隙损失,从而在提高涡轮效率方面发挥重要作用。密封槽(将密封板放置在涡轮叶片中)的工业生产是由对高生产率的需求以及对必要的几何和表面完整性特征的可靠处理所驱动的。一种能够加工难切削材料(如镍基合金)的加工技术是电火花加工。由于其电热工作原理,即使在高长宽比下,它也能够独立于材料的机械性能进行加工。可实现的去除和磨损率以及产生的表面性能在很大程度上取决于放电能量。此外,在加工高展弦比空腔时,放电能量影响工作间隙的大小,从而影响冲洗效率。考虑到各种当代发电机技术和已发表的文献和自己的实验研究中的石墨等级,研究了这种关系。量化了它们对加工性能的影响,重点是生产率、重铸层厚度和裂纹形成。在此基础上,建立了基于公差优化的经验模型。利用该模型对现有的批量生产进行了优化,并取得了成功。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tolerance-Based Optimization of Sinking EDM for Industrial Seal Slot Manufacture
Seal plates for turbine vanes significantly reduce gap losses and thus play a major role in increasing the efficiency of turbines. The industrial production of seal slots, which position the seal plates in the turbine vanes, is driven by the need for high productivity in combination with a reliable processing of necessary geometrical and surface integrity features. A machining technology that is able to machine hard-to-cut materials such as nickel-based alloys is electrical discharge machining. Due to its electro-thermal working principle it is able to machine materials independently from their mechanical properties even at high aspect ratios. Achievable removal and wear rates as well as the resulting surface properties strongly depend on the discharge energy. Furthermore, the discharge energy affects the working gap sizes and therefore flushing efficiencies when machining high aspect ratio cavities. This relationship is investigated taking into account various contemporary generator technologies and graphite grades from both published literature and own experimental investigations. Their effect on machining performance focusing on productivity, recast layer thickness and crack formation is quantified. Based on this data a novel empirical model for tolerance-based optimization is developed. The model is used to perform an optimization on an existing serial production and implementation has been proven successful.
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