Forces, form deviations and surface roughness in micro-milling of CoCr alloys for dental prostheses

被引:0
作者
Elsner-Dörge F. [1 ]
Riemer O. [1 ]
Willert M. [1 ]
Meier A. [1 ]
机构
[1] Laboratory for Precision Machining, University of Bremen, Badgasteiner Str. 2, Bremen
关键词
Cobalt chrome; Dental prostheses; Force measurement; Form deviation; Micro-milling; Shape accuracy; Surface roughness;
D O I
10.1504/IJNM.2019.100464
中图分类号
学科分类号
摘要
Micro-milling, besides selective laser melting, is commonly used for the manufacture of dental prostheses. Demands to the application of these prostheses require hard and tough materials like cobalt-chrome alloys or ceramics. The cutting process is governed by static as well as dynamic interactions between the process and the structure of the workpiece. These interactions deteriorate the work result, especially the shape accuracy. The deflection of the milling tool is one effect, which has a significant influence. However, the deflection can be minimised by optimising the manufacturing strategy, by an adjustment of the process parameters or by optimising the tool path, which leads to an increased quality of the final product. The work presented in this paper aims to establish a connection between tool deflection and resulting form deviations during micro-milling of defined geometries in CoCr alloys. This is achieved by measuring the active forces while machining an defined test geometry with different feed rates and radial infeeds and a subsequent evaluation of the resulting form. Furthermore, the influence of the workpiece geometry on the forces and form deviations is analysed to serve as a foundation for future optimisation steps. In order to quantify the surface quality, white light interferometry is applied to measure the surface roughness Sa and Sq and the influence of feed rate vf and radial infeed ae on the surface roughness is derived. Copyright © 2019 Inderscience Enterprises Ltd.
引用
收藏
页码:315 / 333
页数:18
相关论文
共 11 条
[1]  
Aramcharoena A., Mativengaa P.T., Yangb S., Cookeb K.E., Teerb D.G., Evaluation and selection of hard coatings for micro milling of hardened tool steel, International Journal of Machine Tools and Manufacture, 48, 14, pp. 1578-1584, (2008)
[2]  
Camara M.A., Rubio J.C., Abrao A.M., Davim J.P., State of the art on micromilling of materials - A review, Journal of Materials Science Technology, 28, 8, pp. 673-685, (2012)
[3]  
Cheng K., Huo D., Wardle F., Design of a five-axis ultra-precision micromilling machine - UltraMill. Part 1: Holistic design approach, design considerations and specifications, The International Journal of Advanced Manufacturing Technology, 47, 9, pp. 867-877, (2010)
[4]  
Dow T.A., Miller E.L., Garrard K., Tool force and deflection compensation for small milling tools, Precision Engineering, 28, 1, pp. 31-45, (2004)
[5]  
Kazimierski K.S., Piotrowska-Kurczewski I., Bohmermann F., Riemer O., A statistical filtering method for denoising of micro-force measurements, The International Journal of Advanced Manufacturing Technology, 83, 5-8, pp. 1-12, (2016)
[6]  
Kim G.M., Kim B.H., Chu C.N., Estimation of cutter deflection and form error in ball-end milling processes, International Journal of Machine Tools & Manufacture, 43, 9, pp. 917-924, (2003)
[7]  
Piotrowska I., Vehmeyer J., Gralla J.P., Bohmermann F., Elsner-Dorge F., Riemer O., Maass P., Reduzierung der form-abweichung beim Mikrofräsen, Tagungsband 7, Kolloquium Mikroproduktion in Aachen, 16, 17, pp. 23-30, (2015)
[8]  
Piotrowska-Kurczewski I., Vehmeyer J., Simulation model for micro-milling operations and surface generation, Advanced Materials Research, 223, pp. 849-858, (2011)
[9]  
Twardy S., Funktionsgerechte Fertigung Von Mikroumformwerkzeugen Durch Mikrofrä-Sen, (2014)
[10]  
Uhlmann E., Oberschmidt D., Kuche Y., Lowenstein A., Cutting edge preparation of micro milling tools, 6th CIRP International Conference on High Performance Cutting, HPC2014, Procedia CIRP, 14, pp. 349-354, (2014)