Results Regarding the Temperature in Milling Process of Aluminum Alloys and Stainless Steel

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In this paper a comparative study regarding the temperature in milling process for some types of aluminum alloys and an austenitic stainless steel is presented. In order to measure the temperature two methods are used, non-contact method, using an infrared thermometer and a contact method with six thermocouples installed along the workpiece. From the point of view of cutting parameters, for the both methods, different rotational speed and depth of cut were used, while feed speed was kept constant.

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17-22

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June 2026

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© 2026 Trans Tech Publications Ltd. All Rights Reserved

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[1] F. Zhou, X.Wang, Y. Hu, L.Ling, Modeling temperature of non-equidistant primary shear zone in metal cutting, International Journal of Thermal Sciences, 73, pp.38-45, 2013.

DOI: 10.1016/j.ijthermalsci.2013.05.014

Google Scholar

[2] S. Lin, F. Peng, J. Wen, Y.Liu, R.Yan, An investigation of workpiece temperature variation in end milling considering flank rubbing effect, International Journal of Machine Tools & Manufacture, 73 (2013), pp.71-86.

DOI: 10.1016/j.ijmachtools.2013.05.010

Google Scholar

[3] Q. Deng, R. Mo, Z. C. Chen and Z. Chang, An Analytical Approach to Cutter Edge Temperature Prediction in Milling and Its Application to Trochoidal Milling, Appl. Sci. 2020, 10, 1746;

DOI: 10.3390/app10051746

Google Scholar

[4] X. Rimpault, A. Il L., J.-F. Chatelain, J.-F. Lalonde., M. Balazinski, Workpiece subsurface temperature study during aluminum skin milling in slotting and ramping, 8th CIRP Conference on High Performance Cutting(HPC 2018), Procedia CIRP 77 (2018), pages 417- 420.

DOI: 10.1016/j.procir.2018.08.295

Google Scholar

[5] M. Putz, G. Schmidt, U. Semmler, M. Dix, M. Braunig, M. Brockmann, S.Gierlings, Heat Flux in Cutting, Importace, Simulation and Validation, Procedia CIRP, 31(2015), pag. 334 - 339.

DOI: 10.1016/j.procir.2015.04.088

Google Scholar

[6] M. Putz, Ch. Oppermann, M. Bräunig, U. Karagüzel, Heat sources and fluxes in milling: Comparison of numerical, analytical and experimental results, Procedia CIRP 58 (2017) 97- 103.

DOI: 10.1016/j.procir.2017.03.200

Google Scholar

[7] M. Putz, Ch. Oppermann, U. Semmler, M. Bräunig, U. Karagüzel, Consistent simulation strategy for heat sources and fluxes in milling, Procedia CIRP 62 ( 2017 ) 239 – 244.

DOI: 10.1016/j.procir.2016.06.067

Google Scholar

[8] L. Nowakowski, M. Skrzyniarz, S. Blasiak, and M. Bartoszuk, Influence of the Cutting Strategy on the Temperature and Surface Flatness of theWorkpiece in Face Milling, Materials 2020, 13, 4542;

DOI: 10.3390/ma13204542

Google Scholar

[9] Mzad Hocine, A simple mathematical procedure to estimate heat flux in machining using measured surface temperature with infrared laser. Case Studies in Thermal Engineering, 6 (2015), pp.128-135.

DOI: 10.1016/j.csite.2015.09.001

Google Scholar

[10] Z.-F. Zhou, T.-Y. Xu, B. Chen, Algorithms for the estimation of transient surface heat flux during. International Journal of Heat and Mass Trasfer, 100, pp.1-10, (2016)

DOI: 10.1016/j.ijheatmasstransfer.2016.04.058

Google Scholar