Influence of cutting parameters on force coefficients and stability in plunge milling

2019 ◽  
Vol 104 (5-8) ◽  
pp. 2513-2523 ◽  
Author(s):  
Yuansheng Zhai ◽  
Haining Gao ◽  
Yu Wang ◽  
Rongyi Li
2021 ◽  
Author(s):  
Stefan Baier ◽  
Lukas Kokozinski ◽  
Daniel Schraknepper ◽  
Thomas Bergs

Plunge milling is a critical process step in mass manufacturing of rectangular shapes in electrical connector components. These shapes are manufactured by drilling a pilot hole and subsequent plunge milling with a radial offset (pitch) one or more times. The plunged cavity serves as guidance for the final broaching cut. In light of new legislative initiatives, the electronics industry is forced to use lead-free Cu-Zn-Alloys for mass manufacturing of these connectors. The plunging tool is deflected due to the higher cutting forces experienced in machining of lead-free CuZn-alloys in comparison to alloys with lead. This results in an offset of the milled cavity and negatively impacts tool guidance in the subsequent broaching process. Therefore, the geometric tolerances cannot be met. In this paper, the effect of tool geometry and cutting parameters on the workpiece geometry in plunge milling is investigated. The effect of the microstructure of the work-piece materials CuZn37, CuZn42 and CuZn21Si3P on the tool deflection and cutting force components is examined. The tools used vary regarding the design of the corner in terms of the corner chamfer and the inner shaft thickness. Friction between chips in the tools inner flutes and the cavity walls reduced workpiece accuracy. Improvements were achieved by reducing the width of the cutting corner chamfers, using large inner flutes and applying low cutting parameters.


2020 ◽  
Vol 15 (3) ◽  
pp. 1
Author(s):  
Xinmin Feng ◽  
Xu Song ◽  
Diange Zuo ◽  
Jinlong Yang ◽  
Yaonan Cheng

2010 ◽  
Vol 102-104 ◽  
pp. 630-633
Author(s):  
Xu Da Qin ◽  
Wei Cheng Liu ◽  
Hao Jia ◽  
Xiao Lai Ji

Because of the small thermal conductivity coefficient of Ti alloy, the heat cannot disperse timely and accumulate seriously when plunge milling Ti alloy. If the cutting parameters can not be controlled well, the phenomenon of sticking will happen easily. According to the simulation and analysis of temperature field by using finite element software ABAQUS, the influence on cutting speed and feed for the Distributing of Temperature Field about Cutting Area in Plunge Milling Ti Alloy is acquired.


2015 ◽  
Vol 7 (6) ◽  
pp. 168781401558954 ◽  
Author(s):  
Francesco Rafanelli ◽  
Gianni Campatelli ◽  
Antonio Scippa

2011 ◽  
Vol 223 ◽  
pp. 350-358
Author(s):  
Ivandro Bonetti ◽  
Valter Vander Oliveira ◽  
Adriano Fagali Souza

Nowadays there has been noticeable an expressive technological development in the cutting process to machine moulds and dies, through applying new materials, cutting tools and machining strategies. The rough operations depict an important portion in the machining time of these pieces. In front of this scenario, a new milling rough operation in the tool’s axial direction represents a possibility to optimize this machining process so as decreasing the machining time and increasing the material removes rates. A few scientific studies have been carrying out at this thematic, limited to a technical-commercial researches. Therefore this work contributes with the knowledge in this machining process through an experimental trial analyses. In special it studies the cut direction effects during climb and conventional milling in these operations. The result quantifies the cutting parameters influence at the cutting force and error form.


2013 ◽  
Vol 690-693 ◽  
pp. 2427-2436
Author(s):  
Jie Wen ◽  
Fang Yu Peng ◽  
Sen Lin ◽  
Rong Yan ◽  
Yi Zhi Liu

A mechanistic approach for the prediction of end milling including tool wear is proposed in this paper. The additional cutting force caused by increase of flank wear is considered. Total cutting force is regarded as the summation of the rake-face force and flank-face force. Cutting force coefficients are identified by the cutting tests of various cutting parameters combination on 300M steel. Then the cutting force coefficients models are established based on the cutting parameters. The prediction of cutting force obtained by numerical method is validated by the cutting experiments.


2020 ◽  
Vol 15 (3) ◽  
pp. 266
Author(s):  
Yaonan Cheng ◽  
Jinlong Yang ◽  
Diange Zuo ◽  
Xu Song ◽  
Xinmin Feng

Author(s):  
Murilo Pereira Lopes ◽  
Jose Rubens Gonçalves Carneiro ◽  
Gilmar Cordeiro da Silva ◽  
Carlos Eduardo Santos ◽  
Ítalo Bruno dos Santos

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