Czasopismo
2023
|
Vol. 23, no. 3
|
art. no. e215, 2023
Tytuł artykułu
Autorzy
Wybrane pełne teksty z tego czasopisma
Warianty tytułu
Języki publikacji
Abstrakty
The article presents results of tests concerning the effect of technological parameters of the plasma arc cutting process (involving the use of air as plasma gas) on the quality of cut surfaces as well as on structural transformations and changes in the chemical composition of 14 mm-thick plates made of steel S235JR. The tests revealed that the adjustment of optimum parameters of the cutting process enabled the obtainment of cut surfaces representing quality class I in accordance with the ISO 9013 standard. Only the surfaces processed using the maximum cutting rates represented quality class II. The chemical composition analysis was performed using an ICXA 733 X-ray microanalyser (Jeol) equipped with an energy-dispersive spectrometer (EDS) and an ISIS 300 analytical system (OXFORD). The cut surfaces were observed and their characteristic areas were photographed using an X-ray microanalyser and the backscattered electrons (BSE) technique. The phase analysis was performed using a PHILIPS PW 1050 X’Change machine operated in the B–B (Bragg–Brentano) geometry. It was observed that the application of the air plasma cutting process led to the formation of an amorphous phase on the cut surface. The amorphous phase was characterised by a very high nitrogen content (of approximately 1.6%) and a hardness of 750 HV 0.2. The intense nitration resulted from the diffusion of nitrogen from the plasma gas. At the same time, the effect of air plasma arc gases on the liquid metal was responsible for the carburising of the cut surface (up to approximately 0.5%) and the burnout of alloying components (in accordance with the theory of the selective oxidation of chemical elements). The quality of the cut surfaces was primarily affected by the cutting rate. An increase in the cutting rate was accompanied by the deterioration of the geometric features of cut surfaces. In addition, higher cutting rates also translated into the significant reduction of the HAZ width and that of the size of the zone of chemical composition changes. The tests revealed that, in terms of the 14 mm-thick plates made of steel S235JR, the optimum cutting rates were restricted within the range of 600 mm/min to 1500 mm/min. The tests carried out made it possible to determine the influence of the active plasma gas (oxygen, nitrogen) both on changes in the chemical composition of the tested steel and on the quality of the cut surfaces obtained.
Czasopismo
Rocznik
Tom
Strony
art. no. e215, 2023
Opis fizyczny
Bibliogr. 22 poz., rys., wykr.
Twórcy
autor
- Department of Welding Engineering, Silesian University of Technology, Konarskiego 18A, 44-100 Gliwice, Poland, jacek.gorka@polsl.pl
Bibliografia
- 1. Kirkpatrick I. Profile cutting-which metod? Weld Met Fabr. 2000;9:15–8.
- 2. Hidden S. Plasma arc cutting offers savings to concrete recycling facility. Weld J. 2006;10:46–51.
- 3. Nemchinsky V, Severance W. What we know and what we know not about plasma arc cutting. J Phys D Appl Phys. 2006;39:423–38.
- 4. Lamikiz A, Lopez L. CO 2 laser cutting of advanced high strength steels AHSS. Appl Surf Sci. 2004;242:362–7.
- 5. Hidden S, Buhler B. The great debate: plasma or oxyfuel? Weld J. 2005;3:40–4.
- 6. Zajac A, Pfeifer T. Restricting the heat-affected zone during the plasma cutting of high -alloy steel. Weld Int. 2006;1:5–9.
- 7. Peters J, Yin F, Borges C. Erosion mechanism of hafnium cath- odes at high current. J Phys D Appl Phys. 2005;38:1781–94.
- 8. Tsiolikas A, Kechagias J, Salonitis K, Mastorakis N. Optimization of cut surface quality during CNC plasma arc cutting process. Int J Syst Appl Eng Dev. 2016;10:305–8.
- 9. Horst W, Markus H. Plasma cutting - an economically viable process for mild and low–alloy steels. Weld Cut. 2005;4:191–4.
- 10. Górka J, Ploczek T. The influence of thermal cutting on the properties and quality of the cut surfaces toughened steel S 960QL. IOP Conf Ser Mater Sci Eng. 2018;400:1–9.
- 11. Colombo V, Concetti A, Dallavalle S. Optimization of plasma arc cutting of mild steel thin plates. J High Temp Mater Process. 2005;13:267–85.
- 12. Klimpel A, Cholewa W, Bannister A, Luksa K, Przystalka P. Experimental investigations of the influence of laser beam and plasma arc cutting parameters on edge quality of high-strengthlow-alloy (HSLA) strips and plates. Int J Adv Manuf Technol. 2017;92(1–4):699–7.
- 13. Górka J, Poloczek T. Thermal cutting of thermomechanically rolled S700MC and heat-treated S690QL steels. IOP Conf Series. 2019;591:1–10.
- 14. Colombo V, Ghedini E, Sanibondi P. Thermodynamic and transport properties in nonequilibrium argon, oxygen and nitrogen thermal plasmas. Prog Nucl Energy. 2008;50:921–33.
- 15. Zeki C, Mohammed A, Qasim Z. Developments in plasma arc cutting (PAC) of steel alloys: a review. J Kejuruteraan. 2018;30(1):7–16.
- 16. Bahram A, Durga T, Vejandla J, Clara N. Optimising the automated plasma cutting process by design of experiments. Int J Rapid Manufacturing. 2009;1:19–40.
- 17. Willson J (2003) Effect of plasma cutting with oxygen/nitrogen mixtures on the formation of defects when mag welding carbon steels. Welding in the World.
- 18. Prasad K, Bayya T. Effect of pulsed currentmicro plasma arc parameters on weld bead geometryof AISI 316TI austenitic stainless steel. J Mech MechEng. 2017;3(1):56–66.
- 19. Węgrzyn T, Piwnik J, Hadryś D, Wszołek Ł. Low alloy steel structures after welding with micro-jet cooling. Arch Metallurgy Mater. 2017;62(1):115–8.
- 20. Amaral I, Silva F, Pinto G, Campilho R, Gouveia R. Improving the cut surface quality by optimizing parameters in the fibre laser cutting process. Procedia Manuf. 2019;38:1111–20.
- 21. Ramakrishna C, Raghuram K, Avinash B. Process modelling and simulation analysis of CNC oxy-fuel cutting process on SA516 grade 70 carbon steel. Mater Today. 2018;5(2):818–7827.
- 22. Górka J, Kotarska A. The quality of water jet cutting of selected construction materials. IOP Conf Series. 2017;400:1–9.
Uwagi
PL
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
Identyfikatory
Identyfikator YADDA
bwmeta1.element.baztech-62d5f0cb-275e-4979-914d-0de160df5fc6