|
|
|
| Effect of Thermal Fatigue Temperature on Crack Propagation Behavior in 25Cr3Mo3NiNb Steel |
LIU Yangguang1, LI Fengyu1, MAN Da1, JIN Zili1, LI Wei1,2( ), REN Huiping1 |
1.School of Materials Science and Engineering, Inner Mongolia University of Science and Technology, Baotou 014010, China 2.Inner Mongolia University of Science and Technology Analysis and Testing Center, Baotou 014010, China |
|
Cite this article:
LIU Yangguang, LI Fengyu, MAN Da, JIN Zili, LI Wei, REN Huiping. Effect of Thermal Fatigue Temperature on Crack Propagation Behavior in 25Cr3Mo3NiNb Steel. Chinese Journal of Materials Research, 2026, 40(4): 274-284.
|
|
|
Abstract 25Cr3Mo3NiNb steel is an outstanding material for special pressure vessels, in which thermal fatigue cracking is a critical factor limiting its service life. The strength of this steel is primarily derived from secondary hardening induced by dispersed carbides, whose size strongly depends on the diffusion rate of key alloying elements at different temperatures. Herein, the effect of thermal fatigue temperature on the crack propagation behavior of 25Cr3Mo3NiNb steels, being subjected to quenching and tempering treatments respectively was studied. The thermal fatigue test was conducted via helding the steel at 600 oC or 700 oC for 5 min and then quick cooling in room temperature water as one cycle. The variation of microstructures and crack propagation behavior along with the thermal cyclic testing up to 300 cycles was characterized using scanning electron microscopy, electron backscatter diffraction, and transmission electron microscopy. The results show that after thermal fatigue at 600 oC, the M2C carbides coarsened slightly while still maintaining a high number density, which effectively retarded the microstructure recovery and preserved the tempered martensite structure, accompanied by a slight decrease in hardness. In contrast, after thermal fatigue at 700 oC, the M2C carbides coarsened significantly, resulting in the transformation of the microstructure into tempered sorbite and a remarkable drop in hardness. The difference in microstructural state directly governed the crack propagation mode: at 600 oC, both the main and secondary cracks propagated primarily along pre-austenite grain boundaries where severe dislocation pile-ups occurred; at 700 oC, microstructural recovery eliminated local inhomogeneity, leading to transgranular propagation of the main crack, while the secondary cracks tended to nucleate and extend along inclusions.
|
|
Received: 19 August 2025
|
|
|
| Fund: Inner Mongolia Autonomous Region Excellent Youth Fund Project(2025YQ017);Basic Scientific Research Business Expenses of Universities Directly under Inner Mongolia Autonomous Region(2023QNJS040);Basic Scientific Research Business Expenses of Universities Directly under Inner Mongolia Autonomous Region(2023RCTD003);Scientific Research Special Project for First-Class Disciplines in Inner Mongolia Autonomous Region(YLXKZX-NKD-001) |
Corresponding Authors:
LI Wei, Tel: 18947203217, E-mail: liwei_imust@126.com
|
| [1] |
Zhang W H, Yu Y G. Investigation of the thermochemical erosion properties of high-strength steel surfaces in high-temperature propellant gas [J]. J. Mater. Eng. Perform., 2024, 33(12): 6164
|
| [2] |
Xu L, Chen L, Chen G J, et al. Hot deformation behavior and microstructure analysis of 25Cr3Mo3NiNb steel during hot compression tests [J]. Vacuum, 2018, 147: 8
|
| [3] |
Yang H, Zhang H T, Liang E P, et al. Fatigue crack propagation rate of high temperature resistant martensitic steel for pressure vessel [J]. Heat Treat. Met., 2025, 50(3): 174
|
|
杨 昊, 张鸿涛, 梁恩溥 等. 压力容器用耐高温马氏体钢的疲劳裂纹扩展速率 [J]. 金属热处理, 2025, 50(3): 174
|
| [4] |
Li R H, Wang Z C, Liang E P, et al. Characteristics and strengthening mechanism of precipitated phase of a new type of pressure vessel steel 25CrMo3NiTiVNbZr [J]. Trans. Mater. Heat Treat., 2024,45(2): 129
|
|
李若浩, 王中成, 梁恩溥 等. 新型压力容器用钢25CrMo3NiTiVNbZr的析出相特征和强化机制 [J]. 材料热处理学报, 2024, 45(2): 129
|
| [5] |
Lu M Y, Xu L, Li H, et al. Effect of Ti microalloying on carbide precipitation behavior and high temperature strength of 25Cr3Mo3NiNbZr steel [J]. Heat Treat. Met., 2023, 48(11): 29
|
|
卢茂勇, 徐 乐, 李 浩 等. Ti微合金化对25Cr3Mo3NiNbZr钢碳化物析出行为和高温强度的影响 [J]. 金属热处理, 2023, 48(11): 29
|
| [6] |
Qian C H, Cui H T, Wen W D. Investigation on thermo-mechanical fatigue behavior of GH4169 alloy [J]. Chin. J. Mater. Res., 2023, 37(2): 145
|
|
钱春华, 崔海涛, 温卫东. 镍基高温合金GH4169的热机械疲劳行为 [J]. 材料研究学报, 2023, 37(2): 145
|
| [7] |
Zheng M R, Li Y W, Liu J, et al. Effect of notch orientation and temperature on thermal fatigue behavior of a third-generation single crystal superalloy DD33 [J]. Chin. J. Mater. Res., 2024, 38(2): 111
|
|
郑明瑞, 李亚微, 刘 静 等. 缺口取向及温度对第三代单晶高温合金DD33热疲劳行为的影响 [J]. 材料研究学报, 2024, 38(2): 111
|
| [8] |
Chen X M, Yang L L, Xu Q H, et al. Effect of rare earth element Ce on thermal fatigue properties of H13 steel [J]. Heat Treat. Met., 2023, 48(11): 62
|
|
陈学敏, 杨礼林, 徐祺昊 等. 稀土元素Ce对H13钢热疲劳性能的影响 [J]. 金属热处理, 2023, 48(11): 62
|
| [9] |
Li R H, Hu X Y, Wang Z C, et al. High-temperature mechanical properties and strengthening mechanism of new secondary hardened steel 25CrMo3NiTiVNbZr [J]. Chin. J. Mater. Res., 2024, 38(5): 390
|
|
李若浩, 胡霄雨, 王中成 等. 新型二次硬化钢25CrMo3NiTiVNbZr的高温力学性能和强化机理 [J]. 材料研究学报, 2024, 38(5): 390
|
| [10] |
Ma K, Yang G W, Fu Z X, et al. Effect of tempering temperature on the second phase precipitation behavior of hot-rolled Ti-Mo-V steel [J]. Iron Steel, 2025, 60(2): 84
|
|
马 凯, 杨庚蔚, 付至祥 等. 回火温度对热轧Ti-Mo-V钢第二相析出行为的影响 [J]. 钢铁, 2025, 60(2): 84
|
| [11] |
Hong C W, Youn K T, Kim S H, et al. Investigation of V-rich MC (M = V, Mo) carbide behavior related to thermal fatigue property in commercial hot work tool steel processing [J]. Mater. Charact., 2024, 214: 114025
|
| [12] |
Hu T, Wu R M, Li F J, et al. Effect of Mo-related precipitation behavior on the strengthening and thermal stability of 4Cr5Mo2V die steel [J]. J. Mater. Eng. Perform., 2022, 31(12): 10213
|
| [13] |
Li C D, Li Y L, Zou Y Z, et al. Thermal fatigue performance enhancement of new high-Cr martensitic die steels based on overall microstructure manipulation by trace TiC-TiB2 nanoparticles [J]. Mater. Sci. Eng., 2024, 901A: 146468
|
| [14] |
Wang Y X, Li A J, Wang T, et al. Effects of NiAl on precipitation behavior and mechanical properties of M2C strengthened secondary hardening steel [J]. J. Mater. Res. Technol., 2025, 35: 3107
|
| [15] |
Wang H L, Zhang J, Zhu J C, et al. Structures of M2C carbides and its influence on strengthening in AerMet100 steel at the typical tempering temperature 482 oC [J]. Vacuum, 2023, 214: 112209
|
| [16] |
Kulkarni K, Srivastava A, Shivpuri R, et al. Thermal cracking behavior of multi-layer LAFAD coatings on nitrided die steels in liquid aluminum processing [J]. Surf. Coat. Technol., 2002, 149(2-3): 171
|
| [17] |
Zhu H Y, Lian S R, Jin M Z, et al. Review of research on the influence of vibration and thermal fatigue crack of brake disc on rail vehicles [J]. Eng. Fail. Anal., 2023, 153: 107603
|
| [18] |
Kadlec M, Haušild P, Siegl J, et al. Thermal fatigue crack growth in stainless steel [J]. Int. J. Press. Vessels Pip., 2012, 98: 89
|
| [19] |
Salehnasab B, Marzbanrad J, Poursaeidi E. Transient thermal fatigue crack propagation prediction in a gas turbine component [J]. Eng. Fail. Anal., 2021, 130: 105781
|
| [20] |
Rezai-Aria F, Remy L. An oxidation fatigue interaction damage model for thermal fatigue crack growth [J]. Eng. Fract. Mech., 1989, 34(2): 283
|
| [21] |
Salem M, Le Roux S, Dour G, et al. Role of oxidation in thermal fatigue damage mechanisms and life of X38CrMoV5 (AISI H11) hot work tool steel [J]. Int. J. Fatigue, 2025, 190: 108584
|
| [22] |
Birol Y. Thermal cycling of yttria-stabilized zirconia-coated hot work tool steel [J]. J. Therm. Spray Technol., 2011, 20(5): 1110
|
| [23] |
Song Z K, Liu W, Tan F L, et al. Probe into thermal fatigue fracture behaviour of certain cast steel wheel material under thermal cycling of 600 oC~20 oC [J]. Shanghai Met., 2006, 28(6): 22
|
|
宋志坤, 刘 伟, 谭福龙 等. 铸钢车轮材料在600 ℃~20 ℃循环温度幅下热疲劳断裂行为探讨 [J]. 上海金属, 2006, 28(6): 22
|
| [24] |
Wang P, Zhang P, Wang B, et al. Fatigue cracking criterion of high-strength steels induced by inclusions under high-cycle fatigue [J]. J. Mater. Sci. Technol., 2023, 154: 114
|
| [25] |
Luo Y, Liu X F, Chen F H, et al. Numerical simulation on crack–inclusion interaction for rib-to-deck welded joints in orthotropic steel deck [J]. Metals, 2023, 13(8): 1402
|
| [26] |
Kaynak C, Ankara A, Baker T J. Initiation and early growth of short fatigue cracks at inclusions [J]. Mater. Sci. Technol., 1996, 12(5): 421
|
| [27] |
Zeng D F, Wang J, Lu L T, et al. Fatigue crack growth behavior of railway wheel steel modified by sulfides enveloping oxides inclusions [J]. Int. J. Fatigue, 2023, 175: 107811
|
| [28] |
Zhu H F, Xiong Z P, Mao J W, et al. Effect of ageing temperature on the microstructural evolution and mechanical properties in M2C and NiAl co-precipitation secondary hardening ultrahigh-strength steel [J]. J. Mater. Res. Technol., 2024, 30: 3522
|
| [29] |
Lee H M, Allen S M, Grujicic M. Coarsening resistance of M2C carbides in secondary hardening steels: part I. Theoretical model for multicomponent coarsening kinetics [J]. Metall. Trans., 1991, 22A(12): 2863
|
| [30] |
Sun Y X, Tu M J, Chen X G, et al. Effect of tensile temperature on yield strength of 25Cr3Mo3NiNb steel [J]. Heat Treat. Met., 2025, 50(9): 68
|
|
孙玉晓, 涂明金, 陈献刚 等. 拉伸温度对25Cr3Mo3NiNb钢屈服强度的影响 [J]. 金属热处理, 2025, 50(9): 68
|
| [31] |
Liu G L, Xue W C, Cao Y H, et al. Thermal fatigue crack growth behavior of Ni60 coating and bonding area on 20CrNiMo alloy strengthened by laser shock processing [J]. J. Alloy. Compd., 2023, 937: 168305
|
| [32] |
Yi S, Li Y, Mao J X, et al. Role of inclusion clusters on fatigue crack initiation in powder metallurgy nickel-based FGH96 superalloy [J]. J. Mater. Res. Technol., 2024, 33: 1286
|
| No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
| |
Shared |
|
|
|
|
| |
Discussed |
|
|
|
|