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Tool Wear Measurement After Milling of Aluminum Alloy using Combined Roughness and Contour Device

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
During separation of work surface in machining process and transforming it into chips, tool remains in constant contact with the workpiece. During this contact, there are a series of phenomena leading to the tool wear. Tool wear monitoring, and determination of tool life which is a signal to replace the tool with a new one, is important to ensure the continuity of production process in any company where elements are produced by machining. The article presents the results of tool wear measurement after milling of AlSi10Mg aluminum alloy using combined roughness and contour device.
Słowa kluczowe
Rocznik
Strony
51--57
Opis fizyczny
Bibliogr. 10 poz., fig.
Twórcy
autor
  • Lublin University of Technology, Mechanical Engineering Faculty, Department of Production Engineering, 36 Nadbystrzycka Str., 20-618 Lublin, Poland
Bibliografia
  • [1] Vallejo A. J., Menéndez R. M., Alique J. R.: On-line Cutting Tool Condition Monitoring in Machining Processes using Artificial Intelligence. Robotics, Automation and Control, Book edited by: Pecherková P., Flídr M. Duník J., October 2008, I-Tech, Vienna, Austria, p. 494.
  • [2] Rizal M., Ghani J. A., Nuawi M. Z., Haron C. H. C.: Online tool wear prediction system in the turning process using an adaptive neuro-fuzzy inference system. Applied Soft Computing, 2013, 13(4), p. 1960-1968.
  • [3] Zhang C., Zhang J.: On-line tool wear measurement for ball-end milling cutter based on machine vision. Computers in Industry, 2013, 64(6), p. 708-719.
  • [4] Lima J. G., Avila R. F., Abrao A. M., Faustino M., Davim J. P.: Hard turning: AISI 4340 high strength low alloy steel and AISI D2 cold work tool steel. Journal of Materials Processing Technology, 2005, 169(3), p. 388-395.
  • [5] Azmi A. I.: Monitoring of tool wear using measured machining forces and neuro-fuzzy modelling approaches during machining of GFRP composites. Advances in Engineering Software, 2015, 82, p. 53-64.
  • [6] De Ávila R. F., Abrao A. M., De Godoy G. C. D.: The performance of TiN coated carbide tools when turning AISI 8620 steel. Journal of Materials Processing Technology, 2006, 179(1), p. 161-164.
  • [7] De Avila R. F., Godoy C., Abrao A. M., Lima M. M.: Topographic analysis of the crater wear on TiN, Ti (C, N) and (Ti, Al) N coated carbide tools. Wear, 2008, 265(1), p. 49-56.
  • [8] Shi M., Lane B., Mooney C. B., Dow T. A., Scattergood R. O.: Diamond tool wear measurement by electron-beam-induced deposition. Precision Engineering, 2010 34(4), p. 718-721.
  • [9] Hofmann D., Dittrich P. G.: Application of Nanometrology for Assessing the Machining Tool Geometry and Analysis of the Micro/Nano-Structure of the End Milling Tool Surfaces, (2014). Measurement 2013 Smolenice, Automatica, 2014, p. 3-6.
  • [10] Gao W., Motoki T., Kiyono S.. Nanometer edge profile measurement of diamond cutting tools by atomic force microscope with optical alignment sensor. Precision Engineering, 2006, 30(4), p. 396-405.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3d4e08ac-4479-4d93-9040-210e77f05d6f
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