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Study on the Design and Cutting Performance of a Revolving Cycloid Milling Cutter

机译:旋转摆线铣刀的设计和切割性能研究

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摘要

Problems such as low machining efficiency, severe tool wear and difficulty in safeguarding surface quality always exist in the machining process of titanium alloy with ball-end milling cutters. To address these issues, the design and manufacture of a revolving cycloid milling cutter for titanium alloy processing were studied in this paper. Firstly, the mathematical model of the revolving cycloid milling cutter contour surface was established. The parametric equation of an orthogonal helix cutting edge curve of a revolving cycloid milling cutter is presented. Then, the bottom boundary curve of the rake face is introduced. The five-axis grinding trajectory equation of revolving cycloid milling cutter rake face was derived based on the edge curve equation and coordinate transformation. Next, fabricating the revolving cycloid milling cutter and detecting the grinding accuracy of tool profile and geometric angle were performed. At last, a contrast test regarding the performance of the revolving cycloid milling cutter and the ball-end milling cutter in cutting titanium alloy TC11 was carried out. According to the test results, in comparison to the ball-end milling cutter, the revolving cycloid milling cutter had a smaller ratio of the axial force to the tangential force. Moreover, its flank face wore more slowly and evenly. As a result, a good surface processing quality can be maintained even under larger wear conditions, demonstrating an outstanding cutting performance.
机译:低加工效率,严重工具磨损和保护表面质量难度等问题始终存在钛合金与球端铣刀的加工过程中。为了解决这些问题,本文研究了用于钛合金加工的旋转摆线铣刀的设计和制造。首先,建立了旋转摆线铣刀轮廓表面的数学模型。呈现了旋转摆线铣刀的正交螺旋切削刃的参数方程。然后,引入了耙面的底部边界曲线。基于边缘曲线方程和坐标变换导出旋转摆线铣刀耙面的五轴研磨轨迹方程。接下来,制造旋转摆线铣刀和检测刀具轮廓的研磨精度和几何角度。最后,进行了关于旋转摆线铣刀的性能的对比测试和在切割钛合金TC11中的旋转式环形铣刀和球端铣刀。根据测试结果,与球端铣刀相比,旋转的空铣刀刀具与切向力的轴向力较小。而且,它的侧面侧面均匀且均匀地均匀地穿着。结果,即使在较大的磨损条件下,也可以保持良好的表面处理质量,展示出色的切割性能。

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