Details

Title

Changes in Abrasive Wear Resistance During Miller Test of Cr-Ni Cast Steel with Ti Carbides Formed in the Alloy Matrix

Journal title

Archives of Foundry Engineering

Yearbook

2021

Volume

vo. 21

Issue

No 4

Affiliation

Tęcza, G. : Faculty of Foundry Engineering, AGH University of Science and Technology,23 Reymonta Str., 30-059 Kraków, Poland

Authors

Keywords

Chromium-nickel cast steel ; Microstructure ; Titanium carbides ; Hardness ; Abrasion

Divisions of PAS

Nauki Techniczne

Coverage

110-115

Publisher

The Katowice Branch of the Polish Academy of Sciences

Bibliography

[1] Głownia, J. (2002). Alloy steel castings –applications. Kraków: Fotobit. (in Polish).
[2] Calliari, L., Brunelli, K., Dabala, M., & Ramous, E. (2009). Measuring secondary phases in duplex stainless steel. The Journal of The Minerals, Metals & Materials Society. JOM. 61, 80-83.
[3] Chen, T.H., & Yang, J.R. (2001). Effects of solution treatment and continuous cooling on σ phase precipitation in a 2205 duplex stainless steel. Materials Science and Engineering A. 313(1-2), 28-41.
[4] Kalandyk, B., Starowicz, M., Kawalec, M. & Zapała, R. (2013). Influence of the cooling rate on the corrosion resistance of duplex cast steel. Metalurgija. 52(1), 75-78.
[5] Jimenez, J.A., Carsi, M., Ruano, A. & Penabla, F. (2000). Characterization of a δ/γ duplex stainless steel. Journal of Materials Science. 35, 907-915.
[6] Voronenko, B.I. (1997). Austenitic-ferritic stainless steels: A state-of-the-art review. Metal Science and Heat Treatment. 39, 428-437.
[7] Pohl, M., Storz, O. & Glogowski, T. (2007). Effect of intermetallic precipitations on the properties of duplex stainless steel. Materials Characterization. 58(1), 65-71.
[8] Gunn, R. N. (1999). Duplex Stainless Steels: Microstructure, Properties and Applications. Woodhead Publishing.
[9] Patil, A., Tambrallimath, V. & Hegde, A. (2014). Corrosion Behaviour of Sintered Austenitic Stainless Steel Composites. International Journal of Engineering Research & Technology. 3(12), 14-17.
[10] PN-EN 10088-1/2005(U).
[11] Tęcza, G. & Zapała, R. (2018). Changes in impact strength and abrasive wear resistance of cast high manganese steel due to the formation of primary titanium carbides. Archives of Foundry Engineering. 18(1), 119-122.
[12] Głownia, J., Kalandyk, B. & Camargo, M. (2002). Wear resistance of high Cr-Ni alloys in iron ore slurry conditions. Inżynieria Materiałowa (Material Engineering). 5, 694-697.
[13] Tęcza, G. (2019). Selected wear resistant cast steels with Ti, Nb, V, W and Mo carbides. Katowice-Gliwice: Wydawnictwo Komisja Odlewnictwa PAN. (in Polish).
[14] Kalandyk, B., Starowicz, M., Kawalec, M. & Zapała, R. (2013). Influence of the cooling rate on the corrosion resistance of duplex cast steel. Metalurgija. 52(1), 75-78.
[15] Charchalis, A., Dyl, T., Rydz, D., Stradomski, G. (2018). The effect of burnishing process on the change of the duplex cast steel surface properties. Inżynieria Materiałowa. 6(226), 223-227.
[16] Dyja, D., Stradomski, Z., Kolan, C. & Stradomski, G. (2012). Eutectoid Decomposition of δ-Ferrite in Ferritic-Austenitic Duplex Cast Steel - Structural and Morphological Study. Materials Science Forum. 706-709, 2314-2319.

Date

2021.12.30

Type

Article

Identifier

DOI: 10.24425/afe.2021.139758
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