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| Dynamic Mechanical Response and Spallation Behavior of 60 Steel Under Shock Loading |
YANG Kun1, GUO Qingwei1, LI Chao2, ZHANG Gaolong1,3, ZHAO Yuhong4, HOU Hua1( ) |
1 School of Materials Science and Engineering, Taiyuan University of Science and Technology, Taiyuan 030024, China 2 School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China 3 Shanxi Shenzhou Aerospace Technology Co. Ltd. , Jinzhong 030800, China 4 School of Materials Science and Engineering, North University of China, Taiyuan 030051, China |
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Cite this article:
YANG Kun, GUO Qingwei, LI Chao, ZHANG Gaolong, ZHAO Yuhong, HOU Hua. Dynamic Mechanical Response and Spallation Behavior of 60 Steel Under Shock Loading. Acta Metall Sin, 2026, 62(8): 1405-1416.
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Abstract Owing to its favorable mechanical properties derived from a ferrite-pearlite dual-phase microstructure, 60 steel is widely used in load-bearing components such as bearings and transmission gears, as well as in impact-resistant structures in vehicles and ships, underscoring its potential for dynamic engineering applications. In this study, plate-impact experiments were performed using a single-stage gas gun. The shock-induced microstructural response of 60 steel was examined using SEM and EBSD. Free-surface velocity profiles indicate that spall strength initially increases with peak stress and subsequently approaches saturation. Damage morphology reveals that brittle fracture is the dominant failure mechanism, characterized by the nucleation and propagation of cleavage cracks. At higher peak stresses, ductile damage becomes increasingly evident through the nucleation, growth, and coalescence of microvoids. Grain boundaries, cementite lamellae, and ferrite-cementite interfaces serve as preferential damage-nucleation sites. Within pearlite colonies, microcracks tend to propagate along directions forming larger angles with the cementite lamellae. EBSD analysis further confirms that grain orientation governs cleavage-crack propagation, with microcracks preferentially advancing along the {001} crystallographic planes.
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Received: 18 July 2025
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| Fund: Key Project of National Natural Science Foundation Joint Fund(U23A20628);Fundamental Re-search Program of Shanxi Province(202403021222207) |
Corresponding Authors:
HOU Hua, professor, Tel: 13934153099, E-mail: houhua@nuc.edu.cn
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| [1] |
Meyers M A. Dynamic Behavior of Materials [M]. New York: John Wiley & Sons, 1994: 1
|
| [2] |
Cai Y, Li C, Lu L. Effects of microstructure and loading characteristics on spallation of metallic materials under shock loading [J]. Chin. J. High Press. Phys., 2021, 35(4): 040104
|
|
蔡 洋, 李 超, 卢 磊. 冲击载荷下金属材料的微结构-加载特性-层裂响应关系概述 [J]. 高压物理学报, 2021, 35(4): 040104
|
| [3] |
Chen Y, Mao P L, Liu Z, et al. Detwinning behaviors and dynamic mechanical properties of precompressed AZ31 magnesium alloy subjected to high strain rates impact [J]. Acta Metall. Sin., 2022, 58: 660
|
|
陈 扬, 毛萍莉, 刘 正 等. 高速冲击载荷下预压缩AZ31镁合金的退孪生行为与动态力学性能 [J]. 金属学报, 2022, 58: 660
|
| [4] |
Antoun T, Seaman L, Curran D R, et al. Spall Fracture [M]. New York: Springer-Verlag, 2003: 1
|
| [5] |
Xu Z J, Li Y L, Li N, et al. Effect of loading rate on mode I dynamic fracture toughness of high strength steels 40Cr and 30CrMnSiNi2A [J]. Acta Metall. Sin., 2006, 42: 965
|
|
许泽建, 李玉龙, 李 娜 等. 加载速率对高强钢40Cr和30CrMnSiNi2A I型动态断裂韧性的影响 [J], 金属学报, 2006, 42: 965
|
| [6] |
Li S L, Wang X T, Wang Y L, et al. Effects of thermal aging on micro-mechanical properties and impact fracture behavior of Z3Cn20-09M stainless steels [J]. Acta Metall. Sin., 2011, 47: 751
|
|
李时磊, 王西涛, 王艳丽 等. 热老化对Z3CN20-09M不锈钢微区力学性能和冲击断裂行为的影响 [J]. 金属学报, 2011, 47: 751
|
| [7] |
Dollar M, Bernstein I M, Thompson A W. Influence of deformation substructure on flow and fracture of fully pearlitic steel [J]. Acta Metall., 1988, 36: 311
|
| [8] |
Yahyaoui H, Sidhom H, Braham C, et al. Effect of interlamellar spacing on the elastoplastic behavior of C70 pearlitic steel: Experimental results and self-consistent modeling [J]. Mater. Des., 2014, 55: 888
|
| [9] |
Euser V K, Jones D R, Martinez D T, et al. The effect of microstructure on the dynamic shock response of 1045 steel [J]. Acta Mater., 2023, 250: 118874
|
| [10] |
Yang K, Li C, Zhao X J, et al. Impact-induced twinning and phase transition in a medium carbon steel [J]. J. Alloys Compd., 2021, 881: 160421
|
| [11] |
Euser V K, Martinez D T, Valdez J A, et al. The influence of pearlite fraction on the shock properties of ferrite-pearlite steel microstructures: Insight into the effect of second-phase particles [J]. J. Appl. Phys., 2022, 131: 115902
|
| [12] |
Hyzak J M, Bernstein I M. The role of microstructure on the strength and toughness of fully pearlitic steels [J]. Metall. Trans., 1976, 7A: 1217
|
| [13] |
Marder A R, Bramfitt B L. The effect of morphology on the strength of pearlite [J]. Metall. Trans., 1976, 7A: 365
|
| [14] |
Makarov A V, Savrai R A, Schastlivtsev V M, et al. Mechanical properties and fracture upon static tension of the high-carbon steel with different types of pearlite structure [J]. Phys. Met. Metallogr., 2007, 104: 522
|
| [15] |
Li C, Yang K, Tang X C, et al. Spall strength of a mild carbon steel: Effects of tensile stress history and shock-induced microstructure [J]. Mater. Sci. Eng., 2019, A754: 461
|
| [16] |
Zhang J, Wang Z P, Huang J, et al. The dynamic spallation and deformation mechanisms of M42 steel under high strain rate [J]. Mater. Sci. Eng., 2025, A934: 148332
|
| [17] |
Shu H, Huang X G, Pan H, et al. Plastic behavior of steel and iron in high strain rate regime [J]. Int. J. Fract., 2017, 206: 81
|
| [18] |
Whiteman G, Keightley P T, Millett J C F. The behaviour of 2169 steel under uniaxial stress and uniaxial strain loading [J]. J. Dynam. Behav. Mater., 2016, 2: 337
|
| [19] |
Butcher B M, Barker L M, Munson D E, et al. Influence of stress history on time-dependent spall in metals [J]. AIAA J., 1964, 2: 977
|
| [20] |
Hahn E N, Germann T C, Ravelo R, et al. On the ultimate tensile strength of tantalum [J]. Acta Mater., 2017, 126: 313
|
| [21] |
Li C, Li B, Huang J Y, et al. Spall damage of a mild carbon steel: Effects of peak stress, strain rate and pulse duration [J]. Mater. Sci. Eng., 2016, A660: 139
|
| [22] |
Zhang N B, Liu Q, Yang K, et al. Effects of shock-induced phase transition on spallation of a mild carbon steel [J]. Int. J. Mech. Sci., 2022, 213: 106858
|
| [23] |
Langford G. Deformation of pearlite [J]. Metall. Trans., 1977, 8A: 861
|
| [24] |
Porter D A, Easterling K E, Smith G D W. Dynamic studies of the tensile deformation and fracture of pearlite [J]. Acta Metall., 1978, 26: 1405
|
| [25] |
Karlsson B, Linden G. Plastic deformation of ferrite-pearlite structures in steel [J]. Mater. Sci. Eng., 1975, 17: 209
|
| [26] |
Gray III G T, Bourne N K, Vecchio K S, et al. Influence of anisotropy (crystallographic and microstructural) on spallation in Zr, Ta, HY-100 steel, and 1080 eutectoid steel [J]. Int. J. Fract., 2010, 163: 243
|
| [27] |
Chung D H, Silversmith D J, Chick B B. A modified ultrasonic pulse-echo-overlap method for determining sound velocities and attenuation of solids [J]. Rev. Sci. Instrum., 1969, 40: 718
|
| [28] |
Brown J M, McQueen R J. Phase transitions, Grüneisen parameter, and elasticity for shocked iron between 77 GPa and 400 GPa [J]. J. Geophys. Res. Sol. Earth, 1986, 91(B7): 7485
|
| [29] |
Meyers M A, Aimone C T. Dynamic fracture (spalling) of metals [J]. Prog. Mater. Sci., 1983, 28: 1
|
| [30] |
Luo S N, Cai Y, Xu J. Shock Wave Physics: Shock Properties of Materials [M]. Beijing: Science Press, 2025: 108
|
|
罗胜年, 蔡 洋, 徐 杰. 冲击波物理: 冲击物性数据 [M]. 北京: 科学出版社, 2025: 108
|
| [31] |
Curry D A, Knott J F. The relationship between fracture toughness and microstructure in the cleavage fracture of mild steel [J]. Met. Sci., 1976, 10: 1
|
| [32] |
Wang G Y. Influence of shock pre-compression stress and tensile strain rate on the spall behaviour of mild steel [J]. Strain, 2011, 47: 398
|
| [33] |
Hu Z Z, Zhang P S. Observation on fatigue crack propagation of pearlitic structure [J]. Acta Metall. Sin., 1983, 19: A142
|
|
胡志忠, 张平生. 珠光体组织疲劳裂纹扩展方式的观察 [J]. 金属学报, 1983, 19: A142
|
| [34] |
Yanagimoto F, Hemmi T, Suzuki Y, et al. Contribution of grain size to resistance against cleavage crack propagation in ferritic steel [J]. Acta Mater., 2019, 177: 96
|
| [35] |
Petch N J. The influence of grain boundary carbide and grain size on the cleavage strength and impact transition temperature of steel [J]. Acta Metall., 1986, 34: 1387
|
| [36] |
Alexander D J, Bernstein I M. Cleavage fracture in pearlitic eutectoid steel [J]. Metall. Trans., 1989, 20A: 2321
|
| [37] |
Li C, Zeng Z H, Li Y, et al. Shock-induced twinning and texture in a mild carbon steel [J]. Mater. Sci. Eng., 2020, A773: 138832
|
| [38] |
Izotov V I, Pozdnyakov V A, Luk’Yanenko E V, et al. Influence of the pearlite fineness on the mechanical properties, deformation behavior, and fracture characteristics of carbon steel [J]. Phys. Met. Metallogr., 2007, 103: 519
|
| [39] |
Cheng M, Li C, Tang M X, et al. Intragranular void formation in shock-spalled tantalum: Mechanisms and governing factors [J]. Acta Mater., 2018, 148: 38
|
| [40] |
Tang W Y, Bian Y L, Cai Y, et al. Effects of microstructures on dynamic deformation and spallation damage of high-entropy alloy Al0.3CoCrFeNi under plate impact loading [J]. Mater. Charact., 2014, 216: 114282
|
| [41] |
Zhang Z G, Chen S, Hong Y F, et al. Multi-scale damage mechanism of hierarchically structured high-strength martensitic steels under shock loading [J]. Int. J. Plast., 2024, 175: 103945
|
| [42] |
Cheng J C, Qin H L, Li C, et al. Deformation and damage of equiatomic CoCrFeNi high-entropy alloy under plate impact loading [J]. Mater. Sci. Eng., 2023, A862: 144432
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