To selection of technological scheme of softening heat treatment for high chromium cast iron
DOI:
https://doi.org/10.15802/stp2014/23786Keywords:
high chromium cast iron, microstructure, heat treatment, machinabilityAbstract
Purpose. High chromium cast irons with austenitic matrix have low machinability. The aim of work is search of new energy-saving modes of preliminary softening heat treatment enhancing the machinability of castings by forming an optimum microstructure. Methodology. Metallographic analysis, hardness testing and machinability testing are applied. Findings. It was found out that high temperature annealing with continuous cooling yields to martensite-austenite matrix in cast iron 270Х15Г2Н1MPhT, which abruptly affects the machinability of cast iron. Significant improvement of machinability is achieved by forming of structure "ferrite + granular carbides" and by decline of hardness to 37-39 HRC in the case of two-stage isothermal annealing in the subcritical temperature range or by the use of quenching and tempering (two-step or cyclic). Originality. It was found that the formation of the optimal structure of the matrix and achievement of desired hardness level needed for improving machinability of high chromium cast iron containing 3 % austenite-forming elements, can be obtained: 1) due to pearlite original austenite followed by spherodization eutectoid carbides, and 2) by getting predominantly martensite structure followed by the decay of martensite and carbides coagulation at high-temperature tempering. Practical value. The new energy-saving schemes of softening heat treatment to ensure the growth of machinability of high chromium cast iron, alloyed by higher quantity of austenite forming elements, are proposed.
References
Vakulenko I.A., Bolshakov V.I. Morfologiya struktury i deformatsionnoye uprochneniye stali [Morphology of structure and work hardening of steel]. Dnipropetrovsk, Makovetskiy Publ., 2008. 196 p.
Mironova T.M. Vliyaniye predvaritelnoy termicheskoy obrabotki na plastichnost belykh chugunov [The effect of preliminary heat treatment on plasticity of white cast irons]. Nauka ta progres transportu. Visnyk Dnipropetrovskoho natsionalnoho universytetu zaliznychnoho transportu − Science and Transport Progress. Bulletin of Dnipropetrovsk National University of Railway Transport, 2013, no. 6 (48), pp. 88-98.
Rauba A.A., Bychkov G.V. Modifitsirovaniye i predvaritelnaya termoobrabotka belogo chuguna s povyshennym soderzhaniyem khroma [Modification and preliminary treatment of white cast iron with a high content of chromium]. Liteynoye proizvodstvo – Foundry, 1985, no. 7, p. 33.
Tzypin I.I. Belyye iznosostoykiye chuguny– evolyutsiya i perspektivy [Wear white cast irons − evolution and prospects]. Liteynoye proizvodstvo – Foundry, 2000, no. 9, pp. 15-16.
Tsypin I.I. Belyye iznosostoykiye chuguny [White wear resistant cast irons]. Moscow, Metallurgiya Publ., 1983. 176 p.
Chabak Yu.G., Efremenko V.G., Stanishevskiy R.R. Strukturnyye izmeneniya v kompleksnolegirovannom belom chugune pri destabiliziruyushchem nagreve [Structural changes in the complex-doped white iron at destabilizing heating]. Visnyk Dnipropetrovskoho natsionalnoho universytetu zaliznychnoho transportu imeni akademika V. Lazariana [Bulletin of Dnipropetrovsk National University of Railway Transport named after Academician V. Lazaryan], 2011, issue 38, pp. 229-232.
Cheylyakh A.P. Ekonomnolegirovannyye metastabilnyye splavy i uprochnyayushchiye tekhnologii [Economic metastable alloys and hardening technology]. Kharkov, NNC HFTI, 2003. 212 p.
Bedolla-Jacuinde A., Arias L., Hernarndez B. Kinetics of secondary carbide precipitation in a high-chromium white iron. Journal of Materials Engineering and Performance, 2003, vol. 4, no. 12, pp. 371-382.
Chabak Yu.G., Efremenko V.G. Change of secondary-carbides’ nanostate in 14.5 % Cr cast iron at high-temperature heating. Metallofizika I Noveishie Tekhnologii, 2012, vol. 34, no. 9, pp. 1205-1220.
Efremenko V.G., Shimizu K., Chabak Yu.G. Effect of destabilizing heat treatment on solid-state phase transformation in high-chromium cast irons. Metallurgical and Materials Transactions A., 2013, vol. 44 А, pp. 5434-5446.
Reda R., Nofal A., Ibrahim Kh. Investigation of improving wear performance of hypereutectic 15%Cr-2%Mo white irons. China Foundry, 2010, no. 4, pp. 438-446.
Amorim P., Santos H., Santos J., Coimbra C., Sa C. Soft annealing of high chromium white cast iron. Materials Science Forum, 2004, vol. 455-456, pp. 290-294.
Zhou J.M., Andersson M. Machinability of abrasion resistance cast iron with PCBN cutting tools. Materials and Manufacturing Processes, 2008, vol. 23, no. 5, pp. 506-512.
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Copyright (c) 2021 V. G. Efremenko, YU. G. Chabak, K. Shimizy, A. V. Dzherenova, B. V. Efremenko
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