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Reduction of Power Consumption by Chip Breakability Control in Ti6Al4V Titanium Alloy Turning

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Publisher MDPI
Date 2020 Jun 14
PMID 32531931
Citations 2
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Abstract

The paper concerns the problem of energy savings in turning of titanium alloy Ti6Al4V. Since this alloy belongs to difficult to cut materials, there is a problem with chip forming and breaking. The turning process is often supported by implementing a high-pressure cooling (HPC) system. Based on the observations and the adopted chip classification method, the authors proved that it is not necessary to use this method in roughing operations, however it helps with the chips breaking process in finishing operations. A general algorithm for machining optimization due to the chip geometry is presented and described. In the presented case, it was shown that the acceptable chip geometry could be obtained with a reduced power consumption by approximately = 0.5 kW. The authors concluded that it was not necessary to apply cutting data and a coolant system to achieve perfect chip geometry. An acceptable form was often sufficient, while requiring less energy. An additional factor resulting from the operation of systems supporting the cutting process, such as an HPC device, should be taken into account in the formula concerning the energy consumption (EC) of a computerized numerical control (CNC) machine tool.

Citing Articles

Influence of Technological Parameters on Chip Formation and Chip Control in Precision Hard Turning of Ti-6Al-4V.

Abdelnasser E, El-Sanabary S, Nassef A, Barakat A, Elkaseer A Micromachines (Basel). 2023; 14(10).

PMID: 37893410 PMC: 10609175. DOI: 10.3390/mi14101973.


Optimization of Titanium Alloy Drilling to Minimize the Secondary Burr after Deburring Process.

Franczyk E, Zebala W Materials (Basel). 2022; 15(23).

PMID: 36499925 PMC: 9740210. DOI: 10.3390/ma15238432.

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