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Nitrogen-like depth profiles of the selected noble gases and lubricant elements in WC-Co tools used in wood-based material machining

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Warianty tytułu
PL
Podobne do azotowych profile głębokości wybranych gazów szlachetnych i pierwiastków smarnych w narzędziach WC-Co stosowanych w obróbce materiałów drewnopochodnych
Języki publikacji
EN
Abstrakty
EN
An attempt of the modelling of nitrogen-like depth profiles of ions for three noble gases and four lubricant elements. Modelling was executed in four stages. The similar profiles were obtained for the ion energy in the range from 13.7 to 125 keV. The difference in the obtained profile parameter values, such as the projected range and the range straggling, was less than 1%.
PL
Podjęto próbę modelowania podobnych do azotowych profili głębokości jonów dla trzech gazów szlachetnych i czterech pierwiastków smarnych. Modelowanie przeprowadzono w czterech etapach. Podobne profile uzyskano dla energii jonów w zakresie od 13,7 do 125 keV. Różnica w uzyskanych wartościach parametrów profilu, takich jak zasięg rzutowany oraz rozrzut zasięgu, była mniejsza niż 1%.
Twórcy
autor
  • Plasma/Ion Beam Technology Division, Material Physics Department, National Centre for Nuclear Research Świerk, 7 Andrzeja Sołtana St., 05-400 Otwock, Poland
  • Department of Mechanical Processing of Wood, Institute of Wood Sciences and Furniture, Warsaw University of Life Sciences, 159 Nowoursynowska St., 02-776 Warsaw, Poland
Bibliografia
  • 1. AIZAWA T., AKHADEJDAMRONG T., MITSUO A., 2004: Self-lubrication ofnitride ceramic coating by the chlorine ion implantation, Surface and CoatingsTechnology 177-178, 573-581. DOI: 10.1016/S0257-8972(03)00929-0.
  • 2. AKHADEJDAMRONG T., AIZAWA T., YOSHITAKE M., MITSUO A.,YAMAMOTO T., IKUHARA Y., 2003: Self-lubrication mechanism of chlorineimplanted TiN coatings, Wear 254, 668-679. DOI: 10.1016/S0043-1648(03)00249-7.
  • 3. BARLAK M., WILKOWSKI J., WERNER Z., 2016: Ion implantation changes oftribological and corrosion resistance properties of materials used in wood industry,Annals of Warsaw University of Life Science - SGGW, Forestry and Wood Technology94, 19-27.
  • 4. BARLAK M., WILKOWSKI J., BORUSZEWSKI P., WERNER Z., PAŁUBICKI B.,2017: Changes of functional properties of materials used in wood industry after ionimplantation processes, Annals of Warsaw University of Life Science - SGGW,Forestry and Wood Technology 97, 133-139.
  • 5. BARLAK M., WILKOWSKI J., WERNER Z., 2019a: Modelling of the ionimplantation modification of WC-Co indexable knives for wood machining, Annals ofWarsaw University of Life Science - SGGW, Forestry and Wood Technology 106, 57- 61 DOI: 10.5604/01.3001.0013.7737.
  • 6. BARLAK M., WILKOWSKI J., WERNER Z., 2019b: Modelling of nitrogenimplantation processes into WC-Co indexable knives for wood-based materialmachining using ion implanters with or without direct ion beam, Annals of Warsaw University of Life Science - SGGW, Forestry and Wood Technology 108, 68-78. DOI: 10.5604/01.3001.0013.7684.
  • 7. BARLAK M., WILKOWSKI J., WERNER Z., 2019c: The selected problems of themodelling of the depth profiles of the elements implanted to the tools used in woodmaterial machining, Biuletyn Informacyjny OB-RPPD 3-4, 118-134. DOI:10.32086/biuletyn.2019.5.
  • 8. BARLAK M., WILKOWSKI J., WERNER Z., 2023: Modelling of the similar depthprofiles of two different kinds of ions, implanted to WC-Co tools, used in wood-basedmaterial machining, Annals of Warsaw University of Life Science - SGGW, Forestryand Wood Technology 122, 47-56. DOI: 10.5604/01.3001.0053.8668.
  • 9. BARNES H.M., STEWART H.A., MURPHY R.J., 2004: Vapor boron treatment ofcomposites reduces tool wear, Forest Product Journal 54, 69-73.
  • 10. DU H., SUN C., HUA W.G., ZHANG Y.S., HAN Z., WANG T.G., GONG J., LEES.W., 2006: Fabrication and evaluation of D-gun sprayed WC-Co coating with selflubricating property, Tribology Letters 23, 261-266. DOI: 10.1007/s11249-006-9119-3.
  • 11. DUAN Z., JIANG H., ZHAO X., ZHAO Y., WANG P., FU E., LIU W., 2020:Lubrication degradation mechanism of Mo-S-Ti composite films irradiated by heavyions, Applied Surface Science 517, 146131. DOI: 10.1016/j.apsusc.2020.146131.
  • 12. JING K., GUO Z., HUA T., XIONG J., LIAO J., LIANG L., YANG S., YI J.,ZHANG H., 2022: Strengthening mechanism of cemented carbide containing Re,Material Science and Engineering: A 838, 142803. DOI: 10.1016/j.msea.2022.142803.
  • 13. JUN T., QIZU W., QUNJI X., 1998: The solid film lubrication by carbon ionimplantation into α-Al2O3, Nuclear Instruments and Methods in Physic ResearchSection B: Beam Interaction with Materials and Atoms 143, 488-492. DOI:10.1016/S0168-583X(98)00416-9.
  • 14. KONYASHIN I., LACHMANN F., RIES B., MAZILKIN A.A., STRAUMAL B.B.,KÜBEL CHR., LLANESL., BARETZKY B., 2014: Strengthening zones in the Comatrix of WC-Co cemented carbides, Scripta Materialia 83, 17-20. DOI:10.1016/j.scriptamat.2014.03.026.
  • 15. LIU S., LU H., LIU C., LIU X., WANG H., SONG X., 2021: Tribological behavior ofWC-Co-CaF2 self-lubricating cemented carbides, International Journal of Refractoryand Hard Materials 96, 105492. DOI: 10.1016/j.ijrmhm.2021.105492.
  • 16. PITTARI III J.J., SWAB J.J., WRIGHT J., ATWATER K., 2022: Mechanicalevaluation of WC-Co materials with varying microstructures, International Journal ofRefractory Metals and Hard Metals 104, 105809. DOI:10.1016/j.ijrmhm.2022.105809.
  • 17. RAMASAMY G., RATNASINGAM J., 2010: A review of cemented tungsten carbidetool wear during wood cutting processes, Journal of Applied Sciences 10, 2799-2804.DOI: 10.3923/jas.2010.2799.2804.
  • 18. SAVCHENKO N., SEVOSTYANOVA I., GRIGORIEV M., SABLINA T.,BUYAKOV A., RUDMIN M., VORONTSOV A., MOSKVICHEV E., RUBTSOVV., TARASOV S., 2022: Self-lubricating effect of WC/Y-TZP-Al2O3 hybrid ceramicmatrix composites with dispersed hadfield steel particles during high-speed slidingagainst an HSS disk, Lubricants 10, 140. DOI: 0.3390/lubricants10070140.
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  • 21. TIAN H., WANG C., GUO M., CUI Y., GAO J., TANG Z., 2021: Microstructuresand high-temperature self-lubricating wear-resistance mechanisms of graphenemodified WC-12Co coatings, Friction 9, 315-331. DOI: 10.1007/s40544-019-0346-7.
  • 22. WILKOWSKI J., BARLAK M., BOTTGER R., WERNER Z., KONARSKI P.,PISAREK M., WACHOWICZ, J., VON BORANY J., AURIGA A., 2021: Effect ofnitrogen ion implantation on the life time of WC-Co tools used in particleboardmilling. Wood Material Science & Engineering 17, 521-532. DOI:10.1080/17480272.2021.1900391.
  • 23. WILKOWSKI J., BARLAK M., KWIDZIŃSKI Z., WILCZYŃSKI A., FILIPCZUKP., PĘDZIK M., DREWCZYŃSKI M., ZAGÓRSKI J., STASZKIEWICZ B.,ROGOZIŃSKI T., 2022: Influence of ion implantation on thewear and lifetime ofcircular saw blades in industrial production of wooden door frames, Applied Sciences12, 10211. DOI: 10.3390/app122010211.
  • 24. WILKOWSKI J., BARLAK M., 2022: Infinite life time of cutting tools - theoreticalconsiderations in context of the relativistic tribology, Biuletyn Informacyjny OBRPPD 1-2, 43-58. DOI: 10.32086/biuletyn.2022.03.
  • 25. YEO S., KIM Y., 2015: The enhancement of wear resistance for nitrogen-implantedtungsten carbide, Journal of the Korean Physical Society 66: 474-477. DOI:10.3938/jkps.66.474.
  • 26. ZHU Y.C., FUJITA K., IWAMOTO N., NAGASAKA H., KATAOKA T., 2002:Influence of boron ion implantation on the wear resistance of TiAlN coatings, Surfaceand Coating Technology 158-159, 664-668. DOI: 10.1016/S0257-8972(02)00238-4.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ee2e1aa8-a51f-4ab2-9caa-28043f661655
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