logo
calendar21 Noyabr 2024
view33
Main language:Uzbek

ANALYSIS OF THE INFLUENCE OF CARBIDE PHASES ON WEAR RESISTANCE

Field of Science:
pdf

673f16a6ba8fb.pdf

PDF

ARTICLE ANNOTATION

quote
One of the important tasks globally nowadays is to raise strength of metals and alloys produced by casting, as well as to increase their economic efficiency by improving their mechanical and performance properties. Therefore, groups of scientists are busy making research in sought of obtaining wear resistant materials and improving their desired properties. The article reviews findings from research conducted by scientists, into location of carbides, which are considered as main structural constituents of high chromium white cast iron, and the ways the types of carbide phases released as a result of a crystallization process affect the wearresistance parameters. The article describes findings from tests held to determine the abrasive- and erosive wear of samples after heat treatment and the effect of the type, shape and location of carbides on the wear characteristics. According to the test findings, the best characteristics are shown by carbide with hexagonal shape M7 C3 .

AUTHORS

I.Egamberdiyev

Navoiy davlat konchilik va texnologiyalar universiteti

X.Ashurov

Navoiy davlat konchilik va texnologiyalar universiteti

N.Hamroyev

Navoiy davlat konchilik va texnologiyalar universiteti

Tags

# матрица# микротвердость# matrix# карбид# абразив ейилиш# abrasive wear# абразивный износ# юқори хромли оқ чўян# эрозион ейилиш# микро қаттиқлик# высокохромистый белый чугун# эрозионный износ# high-chromium cast iron# carbides# erosive wear# micro-hardness

OTHER ARTICLES IN THIS JOURNAL

Rate Article

0
0 ratings
5
4
3
2
1

Article Identifiers

References

Chung, R., Tang, X., Li, D., & Dolman, K. (2009). Effects of titanium addition on microstructure and wear resistance of hypereutectic high chromium cast iron Fe–25wt.%Cr–4wt.%C. Wear, 267, 356-361. https://doi.org/10.1016/j.wear.2008.12.061

Coronado, J.J. (2011). Effect of load and carbide orientation on abrasive wear resistance of white cast iron. Wear, 270(11-12), 823-827.

Coronado, J.J., & Sinatora, A. (2011a). Effect of abrasive size on wear of metallic materials and its relationship with microchips morphology and wear micromechanisms (Part 1). Wear, 271(9-10), 1794-1803.

Coronado, J.J., & Sinatora, A. (2011b). Effect of abrasive size on wear of metallic materials and its relationship with microchips morphology and wear micromechanisms (Part 2). Wear, 271(9-10), 1804-1812.

Doǧan, Ö.N., Laird, G., & Hawk, J.A. (1995). Abrasion resistance of the columnar zone in high Cr white cast irons. Wear, 181–183, 342-349.

Gaqi, Y., Kusumoto, K.; Shimizu, K., Purba, R.H. (2023). Effect of Carbide Orientation on Wear Characteristics of High-Alloy Wear-Resistant Cast Irons. Lubricants, 11(7), 272. https://doi. org/10.3390/lubricants11070272

Hashimoto, M., Kubo, O., & Matsubara, Y. (2004). Analysis of Carbides in Multi-component White Cast Iron. Journal of Japan Foundry Engineering Society, 44(2), 317-324. https://doi.org/10.11279/ jfes.75.317

Heino, V., Kallio, M., Valtonen, K., & Kuokkala, V.-T. (2017). The role of microstructure in high stress abrasion of white cast irons. Wear, 388–389, 119-125. ISSN 0043-1648. https://doi. org/10.1016/j.wear.2017.04.029. https://www.sciencedirect.com/science/article/pii/S0043164817307317

Holmberg, K., & Erdemir, A. (2017). Influence of tribology on global energy consumption, costs and emissions. Friction, 5(3), 263-284.

Inthidech, S., Opapaiboon, J., Yamamoto, K., & Matsubara, Ya. (2021). Three-body-type Abrasive Wear Behavior of Multi-alloyed White Cast Iron with Different Carbon Contents Used for Hot Work Rolls. ISIJ International, 61, 2832-2843. https://doi.org/10.2355/isijinternational.ISIJINT-2021-035

Kusumoto, K., Shimizu, K., Yaer, X., Zhang, Y., Ota, Y., & Ito, J. (2017). Abrasive wear characteristics of Fe-2C-5Cr-5Mo-5W-5Nb multi-component white cast iron. Wear, 376-377. 22-29. https://doi.org/10.1016/j.wear.2017.01.096

Liu, S., Zhou, Y., Xing, X. (2016). Growth characteristics of primary M7 C3 carbide in hypereutectic Fe-Cr-C alloy. Sci Re, 6, 32941. https://doi.org/10.1038/srep32941

Tang, X.H., Chung, R., Pang, C.J., Li, D., & Dolman, K. (2011). Microstructure of high (45 wt.%) chromium cast irons and their resistances to wear and corrosion. Wear, 271, 1426-1431. https://doi. org/10.1016/j.wear.2010.11.047

Touhami, R., Mechachti, S., Khedidja, B., Ali, H., & Khettache, A. (2023). Wear Behavior and Microstructure Changes of a High Chromium Cast Iron: The Combined Effect of Heat Treatment and Alloying Elements. Metallography, Microstructure, and Analysis. 12(4), 580-590. https:// doi.org/10.1007/s13632-023-00976-w

Wang, Sh., Song, L., Qiao, Y., & Wang, M. (2013). Effect of Carbide Orientation on ImpactAbrasive Wear Resistance of High-Cr Iron Used in Shot Blast Machine. Tribology Letters, 50(3), 439-448. https://doi.org/10.1007/s11249-013-0140-z