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Development of a new high-pressure cooling system for machining of difficulut-to-machine materials

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In recent years, titanium alloys and nickel alloys have become eminent for making aeronautic and astronautic parts. Since both nickel and titanium alloys have a very small thermal conductivity, the being used tool will suffer from huge damage by heat generated during the grinding process. Therefore, there is a requirement for a durable tool with excellent cooling capacity. In this research, the technology regarding the new forced cooling using with high-pressure coolant for machining difficult-to-machine material was developed and evaluated. A through-hole in the near the tip on the rake face of the turning tool is firstly machined by electrical discharge machining. High-pressure coolant was then supplied to the turning tool from the hole on the bottom of the tool. Several values of pressure were tried in many experiments. It is concluded from the results that; (1) a new forced cooling method in the form of drilling a hole at the tip of the tool from which supply high-pressure coolant, a tool temperature decrease and a tool-life prolongation could be achieved, (2) the technology could effectively cool near the tip of turning tool, (3) the chip was effectively broken by the high pressure, (4) It was confirmed that the tool cutting edge condition was stabilized, the surface roughness of the machined workpieces was improved, the tool hardness was maintained and the tool-life was prolonged due to the cooling effect of the devised tool.
Rocznik
Strony
82--97
Opis fizyczny
Bibliogr. 13 poz., rys., tab.
Twórcy
autor
  • Nagaoka University of Technology, Department of Mechanical Engineering, Nagaoka, Japan
  • Nagaoka University of Technology, Department of Mechanical Engineering, Nagaoka, Japan
  • Nagaoka University of Technology, Department of Mechanical Engineering, Nagaoka, Japan
Bibliografia
  • [1] KITAGAWA T., KUBO A., MAEKAWA K., 1997, Temperature and wear of cutting tools in high-speed machining of Inconel 718 and Ti-6Al-6V-2Sn, Wear, 202/2, 142–148.
  • [2] SOE Y.H., TANABE I., IYAMA T., HOANG T.B., 2010, Tool Technology to Reduce Cutting Heat Generation and Its Influences, Journal of Machine Engineering, 10/3, 51–56.
  • [3] SAKAMOTO H., TANABE I. TAKAHASHI S., 2015, Development of software for calculation of best condition using Taguchi methods and its evaluation, Journal of machine Engineering, 15/2, 44–54.
  • [4] OHMORI S., KATOH T., MAEDA T., UENO H., 2013, Effect on chip-breaking in cutting to supply high pressure coolant, Memoirs of Akashi National College of Technology, 55, 7–12, (in Japanese).
  • [5] TANIGAWA Y., MIYAZAWA S., 1997, Improvement of tool life by jet supplied cutting fluid, Journal of the Japan Society of Precision Engineering, 63/4, 540–544, (in Japanese).
  • [6] TANABE I., MINH T.H., YOSHII K., 2000, Turning with environment-friendly cooling method using water evaporation: 1st report, cooling effect of water evaporation and its applicability to tool tip cooling, Transactions of the Japan Society of Mechanical Engineers, Series C, 66/643, 1026–1030, (in Japanese).
  • [7] KENNAMETAL Beyound BLAST, 2013, Metalworking Master Catalogue.
  • [8] TAKEYAMA H., 1980, Cutting process, Maruzen Inc., Los Angeles, CA, USA, 15–25, 30, 35–42, 64, (in Japanese).
  • [9] WIT GRZESIK, 2017, Advanced Machining Processes of Metallic Materials, Elsevier, Chapter 7.
  • [10] TANABE I., MINH T.H., 2001, Cutting with an environment-friendly cooling method using water evaporation: Establishment of this cooling model and calculation of the suitable supply quantity of water, Transactions of the Japan Society of Mechanical Engineers, Series C, 67/664, 4011–4016, (in Japanese).
  • [11] CRUZ J.R.D., TANABE I., SAKAGUCHI N., 2014, Development of immersed machine tool and machining in the strong alkaline water for reduction of CO2, Journal of Machine Engineering, 14/3, 71–82.
  • [12] SHIMOHIRA S., 1995, Material science for corrosion and its protection, AGNE Gijutsu Center, 30–32, 255–257, 287–288.
  • [13] WAKAO K., FUJIWARA J., MIYAMOTO T., 2009, Cutting temperature and tool wear progress in turning of cemented carbide, Proceedings of JSPE Semestrial Meeting 2009, JSPE Autumn Conference, 119–120, (in Japanese).
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5924ce13-e71f-40c7-80c2-ef584c2486a2
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