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Magnetic Abrasive Machining of Difficult-to-Cut Materials for Ultra-High-Speed Machining of AISI 304 Bars

机译:用于AISI 304棒材的超高速加工的难切削材料的电磁磨削加工

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摘要

This research proposes an optimized magnetic abrasive machining process that uses an ultra-high-speed system to perform precision machining on a workpiece. The system can process several microns of material, either for machining surface roughness or for machining a workpiece for a precise micro-diameter. The stainless steel workpieces have been machined using an ultra-high-speed magnetic abrasive machining (UHSMAM) process. The experiments were performed analyzing the accuracy of the machined workpiece diameter, using response surface methodology. The results obtained after machining have been analyzed to determine the effect of different process parameters such as machining speed, machining time, machining frequencies, inert gas in/out, magnetic pole types, and magnetic abrasive mesh size for the individual workpiece, as well as to study various interaction effects that may significantly affect the machining performance of the process. The obtained outcomes of the analysis for different workpieces have been critically compared to understand the effect of the considered process parameters based on the resulting mechanical properties. Regression analysis was used to confirm the stability of the micro-diameter and the processing efficiency. Atomic force microscope (AFM) micrographs were also obtained to study the surface morphology of the precision-machined workpiece.
机译:这项研究提出了一种优化的磁研磨加工工艺,该工艺使用超高速系统对工件进行精密加工。该系统可以加工几微米的材料,用于加工表面粗糙度或用于加工具有精确微直径的工件。不锈钢工件已使用超高速磁研磨加工(UHSMAM)加工。使用响应表面方法分析了加工的工件直径的精度,进行了实验。分析了加工后获得的结果,以确定不同加工参数的影响,例如加工速度,加工时间,加工频率,惰性气体的进/出,磁极类型和单个工件的磁性磨料筛孔尺寸,以及研究可能会严重影响工艺加工性能的各种相互作用效应。已对不同工件的分析结果进行了严格的比较,以了解基于所得机械性能所考虑的工艺参数的影响。回归分析用于确认微直径的稳定性和加工效率。还获得了原子力显微镜(AFM)显微照片,以研究精密加工工件的表面形态。

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