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马建伟
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教授   博士生导师   硕士生导师

性别: 男

毕业院校: 大连理工大学

学位: 博士

所在单位: 机械工程学院

学科: 机械电子工程. 机械制造及其自动化

办公地点: 机械工程学院知方楼5037室

联系方式: 18041185880;0411-84707876

电子邮箱: mjw2011@dlut.edu.cn

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Tool path planning and machining deformation compensation in high-speed milling for difficult-to-machine material thin-walled parts with curved surface

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论文类型: 期刊论文

发表时间: 2016-06-01

发表刊物: INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY

收录刊物: SCIE、EI、Scopus

卷号: 84

期号: 9-12

页面范围: 1757-1767

ISSN号: 0268-3768

关键字: Thin-walled; Curved surface; Difficult-to-machine materials; High speed milling; Machining deformation; Tool path; Deformation compensation

摘要: Difficult-to-machine material thin-walled parts with curved surface are widely used in industrial applications, and the shape accuracy is a basic requirement for ensuring the usability. Due to the low rigidity of the thin-walled curved surface parts, the cutting force becomes a sensitive factor for the machining deformation. In addition, high speed milling, that has an obvious attribute of small cutting force comparing with the traditional one, provides an effective way to process the thin-walled curved surface parts made by difficult-to-machine materials like titanium alloy. Moreover, the rigidity of the thin-walled curved surface parts is constantly changing along with the machining process, which leads to a more complex machining deformation when choosing different tool paths and affects the machining quality. To reduce the machining deformation, a proper cutting parameters combination which influences the machining deformation directly is obtained based on the established cutting force model, and then a deformation control strategy by planning tool path is put forward. At the same time, an efficient compensation method based on modifying cutter location point is proposed. Taking TC4 thin-walled arc-shaped parts as an example, experimental studies indicate that the largest deformation values reduce to 49 mu m after compensation. Compared with the former 104 mu m, the deformation degree decreases by 52.88 % when the thickness of the thin wall is 200 mu m. The research provides an effective approach to reduce the machining deformation induced error for difficult-to-machine material thin-walled parts with curved surface.

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