Cite

1. Shi F, Xie W, A specific energy-based size reduction model for batch grinding ball mill. Minerals Engineering, 70 (2015) 130–140. Search in Google Scholar

2. Roop L, Singh R.C, Experimental comparative study of chrome steel pin with and without chrome plated cast iron disc in situ fully flooded interface lubrication, Surface Topography: Metrology and Properties, 3(6) (2018) 035001. Search in Google Scholar

3. Lavakumar A, Physical metallurgy of ferrous alloys, book, Morgan & Claypool Publishers pp. 8-1 to 8-45, 201710.1088/978-1-6817-4473-5ch8 Search in Google Scholar

4. Chen J.L, Ruan S.P, Wang L.J, Zhai J.P, Liu C, Effect of Austenite Grain Size on Hardenability and Impact Toughness of SCM435H, Materials Science Forum, 867 (2016) 50-55. Search in Google Scholar

5. Li C, Guan Q, Cai J, Zhang C, Peng L, Jin Y, Surface alloying of gray cast iron with chromium by high current pulsed electron beam treatment, Materials Research Express, 5(6) (2017) 066518.10.1088/2053-1591/aac92a Search in Google Scholar

6. Florea C, Bejinariu C, Carcea I, Cimpoesu N, Chicet D.L, Savin C, Obtaining of High Cr Content Cast Iron Materials, IOP Conference Series: Materials Science and Engineering, 1(209) (2017) 012046.10.1088/1757-899X/209/1/012046 Search in Google Scholar

7. Scandian C, Boher C, De Melloc J.D.B, Rézaï-Aria F, Effect of molybdenum and chromium contents in sliding wear of high-chromium white cast iron: The relationship between microstructure and wear. Wear, 267 (2009) 401-408.10.1016/j.wear.2008.12.095 Search in Google Scholar

8. Fernández I, Belzunce F.J, Wear and oxidation behaviour of high-chromium white cast irons. Materials Characterization, 59 (2008) 669–674.10.1016/j.matchar.2007.05.021 Search in Google Scholar

9. Kim C.K, Lee S, Jung J.Y, Effects of heat treatment on wear resistance and fracture toughness of duo-cast materials composed of high-chromium white cast iron and low-Chromium Steel. Metallurgical and Materials Transactions A, 3 (2006) 29-42.10.1007/s11661-006-0035-9 Search in Google Scholar

10. Coronado J, Sinatora A, Abrasive wear study of white cast iron with different solidification rates. Wear, 267 (2009) 2116-2121.10.1016/j.wear.2009.08.010 Search in Google Scholar

11. Coronado J, Sinatora A, Load effect in abrasive wear mechanism of cast iron with graphite and cementite. Wear, 267 (2009) 6-11. Search in Google Scholar

12. Fiset M, Huard G, Grenier M, Jacob C, Comeau G, Three-body impact-abrasion laboratory testing for grinding ball materials. Wear, 217 (1998) 271-275. Search in Google Scholar

13. Idham M.F, Abdullah B., Syarif J, Jaffar A, Alias S.K., Saad N. H, Microstructure and XRD of ductile iron using annealing-tempering heat treatment process. Applied Mechanics and Materials, 393 (2013) 83-87. Search in Google Scholar

14. Albertin E, Moraes S L, Maximizing wear resistance of balls for grinding of coal. Wear, 263 (2007) 43–47. Search in Google Scholar

15. Ines F.P, Manuel A.J, Javier B.F, Rodriguez C, Influence of heat treatment on the microstructure of a high chromium steel used for the manufacture of rolling rolls. Materials Science Forum, 638-642 (2010) 3099-3104. Search in Google Scholar

16. Carpenter S.D, Carpenter D, Pearce J.T.H, XRD and electron microscope study of a heat treated 26.6% chromium white iron microstructure. Materials Chemistry and Physics, 101 (2007) 49-55. Search in Google Scholar

17. Carpenter S.D, Carpenter D, Pearce J.T.H, XRD and electron microscope study of an as-cast 26.6% chromium white iron microstructure, Materials Chemistry and Physics, 85 (2004) 32–40. Search in Google Scholar

18. Aissat S, Sadeddine A, Bradai M.A., Younes R, Bilek A, Benabbas A. Effect of heat treatment on the hardness and wear of grinding balls. Metal Science and Heat Treatment, 59(5) (2017) 297-301.10.1007/s11041-017-0146-5 Search in Google Scholar

19. Albertin E, Beneduce F, Matsumoto M, Teixeira I. Optimizing heat treatment and wear resistance of high chromium cast irons using computational thermodynamics. Wear, 271 (2011) 1813-1818. Search in Google Scholar

20. Qin C, Hou Z.Z, Zhu H, Zhang Y, Zhao Q.H, Study on structure and properties of alloy nodular cast iron roller with laser heat treatment. Advanced Materials Research, 189-193 (2011) 790-794. Search in Google Scholar

21. Weber K, Regener D, Mehner H, Menzel M, Characterization of the microstructure of high-chromium cast irons using Mössbauer spectroscopy. Materials Characterization, 46 (2001) 399-406. Search in Google Scholar

22. Mouadji Y, Bradai M.A, Younes R., Sad-eddine A., Benabbas A, Influence of heat treatment on microstructure and tribological properties of flame spraying Fe-Ni-Al alloy coating. Journal of Central South University, 25(3) (2018) 473-481.10.1007/s11771-018-3751-6 Search in Google Scholar

23. Szala M, Walczak M, Pasierbiewicz K, Kamiński M, Cavitation erosion and sliding wear mechanisms of AlTiN and TiAlN films deposited on stainless steel substrate. Coatings, (2019) 9(5) 340.10.3390/coatings9050340 Search in Google Scholar

24. Opapaiboon J, Sricharoenchai P, Inthidech S, Matsubara Y, Effect of carbon content on heat treatment behavior of multi-alloyed white cast iron for abrasive wear resistance. Materials Transactions, 56(5) (2015) 720-725.10.2320/matertrans.M2015001 Search in Google Scholar

25. Laird G.I.I. Microstructures of nickel-hard I, nickel-hard IV and high-chromium white cast irons. Ninety-Fifth Annual Meeting American Foundrymen’s Society, (1991) pp. 339-357. Search in Google Scholar

26. Boroń Ł, Tchórz A, Application of EDS microanalysis in the identification of inhomogeneities in surface protective layers on ductile cast iron parts, IOP Conference Series: Materials Science and Engineering 7 (2010 ) 012005.10.1088/1757-899X/7/1/012005 Search in Google Scholar

27. Fu B.G, Li Z.Q, Zhao X.B, Shen Z, Li G.L, Liu J.H, Formation mechanism of spheroidal carbide in ultra-low carbon ductile cast iron. China Foundry, 13(5) (2016) 346-351.10.1007/s41230-016-6032-8 Search in Google Scholar

28. Chiniforush E.A, Iranipour N, Yazdani S, Effect of nodule count and austempering heat treatment on segregation behavior of alloying elements in ductile cast iron. China Foundry, 13(3) (2016) 217-222.10.1007/s41230-016-6034-6 Search in Google Scholar

29. Chakrabarti A.K. Kinetics of second stage graphitization in quenched alloy spheroidal graphite iron. Journal of British Foundryman, (1974) Search in Google Scholar

30. Charkrabarti A.K, Das P.P, Tempering characteristic of quenched alloy spheroid graphite cast iron. Journal of British Foundryman, 67 (1988) 330-334. Search in Google Scholar

31. Tabrett C.P, Sare I.R, Effect of high temperature and sub-ambient treatments on the matrix structure and abrasion resistance of a high-chromium white iron. Scripta Materialia, 25 (1998) 1747–1753. Search in Google Scholar

32. Wang J, Zuo R.L, Sun Z.P, Li C, Liu H.H, Yang H.S, Shen B.L, Huang S.J, Influence of secondary carbides precipitation and transformation on hardening behavior of a 15Cr–1Mo–1.5V white iron. Materials Characterization, 55 (2005) 234-240. Search in Google Scholar

33. Carpenter S.D, Carpenter D, X-ray diffraction study of M7C3 carbide within a high chromium white iron. Materials Letters, 57 (2003) 4456-4459. Search in Google Scholar

eISSN:
2083-4799
Idioma:
Inglés
Calendario de la edición:
4 veces al año
Temas de la revista:
Materials Sciences, Functional and Smart Materials