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High-Temperature Decomposition Mechanism of M2C Primary Carbide in M50 Steel |
MA Fang1,2, LU Xingyu3, ZHOU Lina2, DU Ningyu3, LEI Chengshuai3( ), LIU Hongwei3( ), LI Dianzhong3 |
1 School of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150001, China 2 AECC Harbin Bearing Co. Ltd., Harbin 150025, China 3 Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China |
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Cite this article:
MA Fang, LU Xingyu, ZHOU Lina, DU Ningyu, LEI Chengshuai, LIU Hongwei, LI Dianzhong. High-Temperature Decomposition Mechanism of M2C Primary Carbide in M50 Steel. Acta Metall Sin, 2024, 60(7): 901-914.
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Abstract M50 steel is primarily used for manufacturing the main shaft bearings of aero engines. However, the fatigue property of M50 steel affects the service life of shaft bearings owing to their operation in the environment with high temperature, high rotation speed, and high contact stress. Inclusions and large-sized carbides are proved to be the primary reasons that cause fatigue cracking. Nevertheless, inclusions in M50 steel and fatigue failure due to inclusions are substantially reduced with the rapid development of metallurgical technology and metallurgical equipment in recent years. M50 steel contains high fractions of Cr, Mo, and V elements, which are easily enriched and can form primary carbides. The primary carbides in M50 steel are hard and brittle and cause stress concentration under external load, thereby accelerating the initiation and propagation of fatigue cracks. Currently, the large-sized primary carbides in M50 steel play an important role in reducing the service life of bearings and have attracted substantially research attention. The present investigation focuses on the decomposition mechanism of large-sized M2C primary carbide in M50 steel to reveal the carbide-refinement mechanism during high-temperature heat treatment. In addition, M2C primary carbide in M50 steel was systematically characterized by SEM, EPMA, and TEM, and its decomposition mechanism at 1160-1250oC was studied. The difference in chemical composition of different M2C primary carbides and its effect on the decomposition mechanism were also explored. Three forms of M2C carbides in M50 steel were revealed: the rod-like carbide, the lamellar-like carbide, and the block-like carbide. In these three M2C carbides, the content of Fe increased, while the content of Mo decreased successively. The difference in chemical composition and morphology of these three M2C carbides led to the different microstructure-evolution process when heat-treated at elevated temperature. When the steel was heat-treated at 1160-1180oC, only the M2C carbides with high Fe content decomposed and a few of the carbides transformed to MC carbide. The growth rate of MC carbide was extremely low at this temperature. When the steel was heat-treated at 1210oC, most of the M2C carbides decomposed after 20 h. The growth rate of MC carbide also increased rapidly, and a large amount of large-sized MC carbides were found. Further heat treatment of steel at 1250oC resulted in the decomposition of all M2C carbides and the absence of large-sized primary carbides in the microstructure. However, a large amount of newly born M2C carbide, formed due to the melting of the matrix and re-solidification, were found in the microstructure.
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Received: 14 March 2023
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Fund: National Key Research and Development Program(2018YFA0702900);National Natural Science Foundation of China(52031013);Special Fund Project for Self-innovation of Aero Engine Corporation of China(ZZCX-2020-027) |
Corresponding Authors:
LEI Chengshuai, Tel: 17824032796, E-mail: cslei@imr.ac.cn;
|
1 |
Yu F, Chen X P, Xu H F, et al. Current status of metallurgical quality and fatigue performance of rolling bearing steel and development direction of high-end bearing steel [J]. Acta Metall. Sin., 2020, 56: 513
doi: 10.11900/0412.1961.2019.00361
|
|
俞 峰, 陈兴品, 徐海峰 等. 滚动轴承钢冶金质量与疲劳性能现状及高端轴承钢发展方向 [J]. 金属学报, 2020, 56: 513
|
2 |
Sun F L, Geng K, Yu F, et al. Relationship of inclusions and rolling contact fatigue life for ultra-clean bearing steel [J]. Acta Metall. Sin., 2020, 56: 693
doi: 10.11900/0412.1961.2019.00337
|
|
孙飞龙, 耿 克, 俞 峰 等. 超洁净轴承钢中夹杂物与滚动接触疲劳寿命的关系 [J]. 金属学报, 2020, 56: 693
doi: 10.11900/0412.1961.2019.00337
|
3 |
Du N Y. Research on carbide control and fatigue properties of M50 bearing steel [D]. Hefei: University of Science and Technology of China, 2022
|
|
杜宁宇. M50轴承钢碳化物调控与疲劳性能研究 [D]. 合肥: 中国科学技术大学, 2022
|
4 |
Li D Z, Wang P, Chen X Q, et al. Low-oxygen rare earth steels [J]. Nat. Mater., 2022, 21: 1137
doi: 10.1038/s41563-022-01352-9
pmid: 36075967
|
5 |
Yang C Y, Luan Y K, Li D Z, et al. Effects of rare earth elements on inclusions and impact toughness of high-carbon chromium bearing steel [J]. J. Mater. Sci. Technol., 2019, 35: 1298
doi: 10.1016/j.jmst.2019.01.015
|
6 |
Chang L Z, Xu T, Su Y L, et al. Changes of cleanliness and carbide during vacuum preparation of stainless bearing steel [J]. Iron Steel, 2022, 57(10): 73
|
|
常立忠, 徐 涛, 苏云龙 等. 不锈轴承钢真空制备过程洁净度及碳化物变化 [J]. 钢铁, 2022, 57(10): 73
doi: 10.13228/j.boyuan.issn0449-749x.20220008
|
7 |
Li S S, Chen Y, Gong T Z, et al. Effect of cooling rate on the precipitation mechanism of primary carbide during solidification in high carbon-chromium bearing steel [J]. Acta Metall. Sin., 2022, 58: 1024
doi: 10.11900/0412.1961.2021.00024
|
|
李闪闪, 陈 云, 巩桐兆 等. 冷速对高碳铬轴承钢液析碳化物凝固析出机制的影响 [J]. 金属学报, 2022, 58: 1024
doi: 10.11900/0412.1961.2021.00024
|
8 |
Guetard G, Toda-Caraballo I, Rivera-Díaz-Del-Castillo P E J. Damage evolution around primary carbides under rolling contact fatigue in VIM-VAR M50 [J]. Int. J. Fatigue, 2016, 91: 59
|
9 |
Hou X Q, Zhang Z, Liu C K, et al. Formation mechanism and influence of white etching area on contact fatigue spalling of M50 bearing steel [J]. Eng. Fail. Anal., 2022, 139: 106273
|
10 |
Iqbal A, King J E. The role of primary carbides in fatigue crack propagation in aeroengine bearing steels [J]. Int. J. Fatigue, 1990, 12: 234
|
11 |
Guan J, Wang L Q, Zhang Z Q, et al. Fatigue crack nucleation and propagation at clustered metallic carbides in M50 bearing steel [J]. Tribol. Int., 2018, 119: 165
|
12 |
Guo J, Zhao A M, Yang M S. Crack initiation mechanism of M50 bearing steel under high cycle fatigue [J]. Int. J. Fatigue, 2023, 174: 107587
|
13 |
Du N Y, Liu H H, Cao Y F, et al. Formation mechanism of MC and M2C primary carbides in as-cast M50 bearing steel [J]. Mater. Charact., 2021, 174: 111011
|
14 |
Hou Z Y, Liu W F, Xu B, et al. Formation and evolution mechanism of voids in M50 bearing steel during thermal deformation [J]. Acta Metall. Sin., 2024, 60: 57
doi: 10.11900/0412.1961.2022.00236
|
|
侯志远, 刘威峰, 徐 斌 等. M50轴承钢热变形过程中孔洞形成及演化机制 [J]. 金属学报, 2024, 60: 57
doi: 10.11900/0412.1961.2022.00236
|
15 |
Chaus A S, Sahul M. On origin of delta eutectoid carbide in M2 high-speed steel and its behaviour at high temperature [J]. Mater. Lett., 2019, 256: 126605
|
16 |
Pan F S, Wang W Q, Tang A T, et al. Phase transformation refinement of coarse primary carbides in M2 high speed steel [J]. Prog. Nat. Sci.: Mater. Int., 2011, 21: 180
|
17 |
Fredriksson H, Hillert M, Nica M. Decomposition of the M2C carbide in high speed steel [J]. Scand. J. Metall., 1979, 8: 115
|
18 |
Lee E S, Park W J, Jung J Y, et al. Solidification microstructure and M2C carbide decomposition in a spray-formed high-speed steel [J]. Metall. Mater. Trans., 1998, 29A: 1395
|
19 |
Liu W F, Guo Y F, Cao Y F, et al. Transformation behavior of primary MC and M2C carbides in Cr4Mo4V steel [J]. J. Alloys Compd., 2021, 889: 161755
|
20 |
Zhou X F, Liu D, Zhu W L, et al. Morphology, microstructure and decomposition behavior of M2C carbides in high speed steel [J]. J. Iron Steel Res. Int., 2017, 24: 43
|
21 |
Liu W F, Cao Y F, Guo Y F, et al. Characteristics and transformation of primary carbides during austenitization in Cr4Mo4V bearing steel [J]. Mater. Charact., 2020, 169: 110636
|
22 |
Zheng Y. First-principles study of stability and mechanical property of MC and M2C in high speed steel [D]. Nanjing: Southeast University, 2018
|
|
郑 勇. 高速钢中MC和M2C的稳定性和力学性能的第一性原理研究 [D]. 南京: 东南大学, 2018
|
23 |
Guo J, Liu L G, Liu S, et al. Stability of eutectic carbide in Fe-Cr-Mo-W-V-C alloy by first-principles calculation [J]. Mater. Des., 2016, 106: 355
|
24 |
Sun C C, Zheng Y, Chen L L, et al. Thermodynamic stability and mechanical properties of (V, M)C (M = W, Mo and Cr) multicomponent carbides: A combined theoretical and experimental study [J]. J. Alloys Compd., 2022, 895: 162649
|
25 |
Jiang H W, Song Y R, Wu Y C, et al. Macrostructure, microstructure and mechanical properties evolution during 8Cr4Mo4V steel roller bearing inner ring forging process [J]. Mater. Sci. Eng., 2020, A798: 140196
|
26 |
Du N Y, Liu H H, Cao Y, et al. In situ investigation of the fracture of primary carbides and its mechanism in M50 steel[J]. Mater. Charact., 2022, 186: 111822
|
27 |
Niu J B, Qureshi M W, Ding Z F, et al. Effect of nitriding on the transformation of alloy carbides (VC and Mo2C) in 8Cr4Mo4V steel [J]. Appl. Surf. Sci., 2023, 610: 155561
|
28 |
Liu T, Luo L S, Zhang Y N, et al. Microstructure evolution and growth behaviors of faceted phase in directionally solidified Al-Y alloys II. Microstructure evolution of directionally solidified Al-53%Y peritectic alloy [J]. Acta Metall. Sin., 2016, 52: 866
|
|
刘 桐, 骆良顺, 张延宁 等. 定向凝固Al-Y合金组织演化规律及小平面相生长Ⅱ. Al-53%Y包晶合金组织演化规律 [J]. 金属学报, 2016, 52: 866
|
29 |
Wang F Q, Sun T, Wang M Q, et al. Research progress of Fe-Mn-Al-C system austenitic low density steel [J]. Iron Steel, 2021, 56(6): 89
|
|
王凤权, 孙 挺, 王毛球 等. Fe-Mn-Al-C系奥氏体基低密度钢的研究进展 [J]. 钢铁, 2021, 56(6): 89
doi: 10.13228/j.boyuan.issn0449-749x.20200566
|
30 |
Liu H H, Fu P X, Sun C, et al. Primary carbide refinement in AISI M50 steel by dislocation engineering via pre-deformation treatment [J]. Metall. Mater. Trans., 2023, 54A: 783
|
31 |
Li W Q, Xia Z B, Qi W T, et al. Controlling of morphology evolution of eutectic carbide in M2 high speed steel by directional solidification [J]. Shanghai Met., 2020, 42(1): 77
|
|
李婉琴, 夏智斌, 齐文涛 等. 定向凝固法控制M2高速钢中共晶碳化物形貌演变行为 [J]. 上海金属, 2020, 42(1): 77
|
32 |
Luo Y W, Guo H J, Sun X L, et al. Influence of the nitrogen content on the carbide transformation of AISI M42 high-speed steels during annealing [J]. Sci. Rep., 2018, 8: 4328
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