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The effect of the production process of medium-carbon steel on fatigue strength

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Języki publikacji
EN
Abstrakty
EN
The experimental material comprised semi-finished, high grade, medium-carbon structural steel for the production of mining chains. Steel was melted in a 140 ton electric furnace and desulfurized (E). In the second analyzed variant, steel was additionally refined with argon (EA). In the third variant, steel was melted in a 100 ton converter. Secondary treatment involved vacuum circulation degassing. Specimens with a diameter of 10 mm were prepared by hardening and tempering at 200, 300, 400, 500 and 600°C. Fatigue tests were performed with the use of a rotary bending machine at a frequency of 6000 cpm. The results were processed and presented in graphic form.
Rocznik
Strony
79--82
Opis fizyczny
Bibliogr. 15 poz., rys., wykr.
Twórcy
autor
  • University of Warmia and Mazury in Olsztyn, The Faculty of Technical Sciences Department of Materials Technology, Oczapowskiego 11, 10-957 Olsztyn, Poland
autor
  • University of Warmia and Mazury in Olsztyn, The Faculty of Technical Sciences Department of Materials Technology, Oczapowskiego 11, 10-957 Olsztyn, Poland
Bibliografia
  • [1] S. K. Dhua, R. Amitava, S. K. Sen, M. S. Prasad, K. B. Mishra, S. Jha: Influence of nonmetallic inclusion characteristics on the mechanical properties of rail steel. JMEPEG 9, 2000, 700–709.
  • [2] S. Gubenko, Y. Proidak, A. Kozlovsk’y, O. Shramko, M. Is’Kov: Influence of nonmetallic inclusions on microbreaks formation in wheel steel and railway wheels, Transport problems 3, 2008.
  • [3] N. Ejaz, S.A. Rizvi: Cable failure resulted in the crash of a trainer aircraft, Engineering Failure Analysis 17, 2010, 394–402.
  • [4] T. Niendorf, J. Dadda, D. Canadinc, H.J. Maier, I. Karaman: Monitoring the fatigue-induced damage evolution in ultrafine-grained interstitial-free steel utilizing digital image correlation, Materials Science and Engineering A 517, 2009, 225–234.
  • [5] A. Z. Rashid, J. Purbolaksono, A. Ahmad, S. A. Ahmad: Thermal fatigue analysis on cracked plenum barrier plate of open-cycle gas turbine frame, Engineering Failure Analysis 17, 2010, 579–586.
  • [6] N. Raje, T. Slack, F. Sadeghi: A discrete damage mechanics, model for high cycle fatigue in polycrystalline materials subject to rolling contact, Int J Fatigue 31, 2009, 346–60.
  • [7] J. Xu, Z.L. Zhang, E. Řstby, B. Nyhus, D.B. Sun: Constraint effect on the ductile crack growth resistance of circumferentially cracked pipes, Engineering Fracture Mechanics 77, 2010, 671–684.
  • [8] R. Dekkers, Ph.D: Thesis, Katholieke Universiteit Leuven, Leuven, Belgium 2002.
  • [9] S. Loren: Estimating inclusion distributions of hard metal using fatigue tests, Int J. Fatigue 25 (2), 2003, 129-137.
  • [10] Y. Murakami, S. Kodama, S. Konuma: Quantitative evaluation of effects of non-metallic inclusions on fatigue strength of high strength steels, I: basic fatigue mechanism and fatigue fracture stress and the size and location of non-metallic inclusions, Int J Fatigue 11 (5), 1989, 291–298.
  • [11] T. Lis: Modification of non-metallic dispersion phase in steel, Metallurgy and Foundry Engineering 1/28, 2002.
  • [12] M. A. Miner: Cumulative damage in fatigue. Trans. ASM 65, 159 (1945).
  • [13] S. Kocańda: Zmęczeniowe pękanie metali. 1985, WNT Warsaw (in Polish).
  • [14] Y. Murakami: Metal fatigue, Effects of small defects and nonmetallic inclusions, Oxford, Elsevier 2002, 57–115.
  • [15] T. Lipiński, A. Wach: The effect of out-of-furnace treatment on the properties of high-grade medium-caborn structural steel. Archives of Foundry Engineering 10, 2010, 93-96.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a6144e1d-700b-433d-8aa1-018a6fa2ec84
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