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Study on Analysis of Cutting Mechanism of Ball End Mill for Concave and Convex Spherical Surface Using 3D-CAD

机译:3D-CAD分析凹凸球面球形磨机切割机理的研究

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In this paper, cutting mechanism and cutting performance of ball end mill for spherical surface with contour path method is investigated. Ball end mills are used to produce molds, dies and so on. However, the edge shape is complex, so cutting process is not clear. Then, it is not clear effectively using method of the tool based on good cutting performance. Therefore, in this study, the purpose is proposal of high efficient and high accurate cutting method is using 5-axis control machine tool. At first, cutting model assembled by a ball end mill (R8 mm) and a workpiece with convex or concave spherical surface (Workpiece radius 20 mm) is carried out using 3D-CAD (SolidWorks). The pick feed direction which is from bottom to top is defined "Stepped up", the one which is inverse direction is defined "Stepped down". In addition, both cutting methods include up milling and down milling, then there are four cutting modes. The radius of tool path for contour path are varied from 14.0 mm to 19.4 mm for convex spherical surface, from 6.5 to 9.2 mm for concave spherical surface. The lead angle of the tool is defined the plus sign when the tool is inclined to the tool feed direction and varied from -45° to 45°. Secondly, the cutting cross-sectional area is calculated by the interference of a rake surface of the tool and an uncut chip volume which can be removed by one cutting operation. Thirdly, cutting experiments are done in order to measure cutting force. Finally, analytical and experimental results are discussed, and then the cutting conditions which are expected good cutting performance are considered.
机译:本文研究了具有轮廓路径方法的球形表面的球形磨机的切割机理和切割性能。球端铣刀用于生产模具,模具等。但是,边缘形状复杂,因此切割过程尚不清楚。然后,基于良好的切割性能,它不明确地使用该工具的方法。因此,在本研究中,目的是高效,高精度的切削方法的提议是使用5轴控制机床。首先,使用3D-CAD(SolidWorks)进行由球终铣刀(R8mm)组装的切割模型和具有凸形或凹形球面(工件半径20mm)的工件。从底部到顶部的拾取进给方向定义为“加紧向上”,定义逆向的一个“跨越”。此外,两种切割方法都包括铣削和下铣削,然后有四种切割模式。用于轮廓路径的刀具路径的半径从凸球面的14.0mm至19.4mm变化,从6.5到9.2mm,用于凹形球面。当工具倾斜到刀具进料方向时,该工具的引线角度定义了加号,并从-45°到45°变化。其次,通过工具的耙表面的干涉和未通过一个切割操作去除的切割表面的干涉来计算切割横截面积。第三,切割实验是为了测量切割力。最后,讨论了分析和实验结果,然后考虑预期切削性能的切割条件。

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