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Experimental Verification of End-milling Condition Decision Support System Using Data-mining for Difficult-to-cut Materials

机译:利用数据挖掘对难以切割材料的终铣条件决策支持系统的实验验证

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Data-mining methods using hierarchical and non-hierarchical clustering are proposed, which could help manufacturing engineers determine guidelines for deciding end-milling conditions. We have constructed a novel system that uses clustering techniques and tool catalog data to support the determination of end-milling conditions for different types of recent difficult-to-cut materials. In the present report, we especially focus on the cutting speed to estimate the performance of this system. A comparison with the conditions recommended by famous tool makers in Japan, reveals that our proposed system can be used to determine the cutting speeds for various difficult-to-cut materials. That is, milling experiments using a square end mill under two sets of end-milling conditions (conditions derived from the end-milling condition decision support system and conditions suggested by expert engineers) for difficult-to-cut materials (austenite stainless steel; JIS SUS310) showed that the catalog mining method is effective for deriving guidelines for deciding end-milling conditions at the beginning of the manufacturing stage.
机译:提出了使用分层和非分层聚类的数据挖掘方法,这可以帮助制造工程师确定决定结束铣削条件的指导。我们构建了一种新颖的系统,使用聚类技术和工具目录数据来支持确定不同类型最近难以切割的材料的端铣条件。在本报告中,我们特别关注切割速度来估计该系统的性能。与日本着名工具制造商建议的条件的比较揭示了我们所提出的系统来确定各种难以切割材料的切割速度。也就是说,在两组终铣条件下使用方形磨机的铣削实验(来自专家工程师建议的终端研磨条件决策支持系统和条件)以难以切割的材料(奥氏体不锈钢; JIS SUS310)显示目录挖掘方法对于导出在制造阶段开始时决定结束铣削条件的指南是有效的。

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