Development of PCBN micro ball-end mill with multi-edge and spherical flank face

材料科学 立铣刀 侧面 研磨 球(数学) 表面粗糙度 研磨 刀具磨损 表面光洁度 GSM演进的增强数据速率 表面完整性 冶金 机械工程 复合材料 几何学 机械加工 计算机科学 工程类 社会学 电信 数学 人类学
作者
Yuchao Du,Zhiqiang Liang,Yue Ma,Zhipeng Su,Rui Chen,Tianfeng Zhou,Xibin Wang
出处
期刊:Journal of Manufacturing Processes [Elsevier BV]
卷期号:84: 424-434 被引量:12
标识
DOI:10.1016/j.jmapro.2022.10.008
摘要

Micro mills play an important role in micro-milling applications for precision micro-parts such as optical molds, microsensors, etc. With the wide application of difficult-to-machine materials in such micro-parts, poor machining quality and rapid tool wear have become serious problems restricting the application of micro-milling technology. In order to achieve higher machining quality and longer tool life, a PCBN micro ball-end mill structure with multi-edge and spherical flank face (MSPBM) is designed. This structure enables multiple edges to participate in cutting at the same time, which can share the cutting force to reduce tool wear. In addition, the structure of the spherical flank surface makes the flank surface fully in contact with the machined surface, which enables CBN particles to micro-grind the machined surface to achieve the effect of milling-grinding combined machining, and the better surface quality can be obtained. The grinding experiments are carried out to optimize fabrication process parameters based on grey relational grade theory and the MSPBM with 0.2 mm diameter is fabricated through multi-axis linkage grinding and micro-compensation of motion axes. Then, slot milling experiments are carried out on the martensite stainless steel to investigate the micro-milling performance of the mill, and the surface topography, surface roughness, and the tool wear topography are observed and analyzed. The results show that the surface quality and wear resistance of the MSPBM are improved compared to the standard ball-end mill. The structural design principle of the micro mill can be used to guide the design of mills for high-quality machining of difficult-to-machine materials.
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