[1]Speer J G, Matlock D K, De Cooman B C, et al. Carbon partitioning into austenite after martensite transformation[J]. Acta Materialia, 2003, 51(9): 2611-2622. [2]Yan S, Liu X, Liu W J, et al. Comparative study on microstructure and mechanical properties of a C-Mn-Si steel treated by quenching and partitioning (Q&P) processes after a full and intercritical austenitization[J]. Materials Science and Engineering A, 2017, 684: 261-269. [3]Cho L, Seo E J, De Cooman B C. Near-Ac3 austenitized ultra-fine-grained quenching and partitioning (Q&P) steel[J]. Scripta Materialia, 2016, 123: 69-72. [4]Zhao Z Z, Liang J H, Zhao A M, et al. Effects of the austenitizing temperature on the mechanical properties of cold-rolled medium-Mn steel system[J]. Journal of Alloys and Compounds, 2017, 691(1): 51-59. [5]HajyAkbary F, Sietsma J, Miyamoto G, et al. Interaction of carbon partitioning, carbide precipitation and bainite formation during the Q&P process in a low C steel[J]. Acta Materialia, 2016, 104: 72-83. [6]Santofimia M J, Zhao L, Sietsma J. Microstructural Evolution of a low-carbon steel during application of quenching and partitioning heat treatments after partial austenitization[J]. Metallurgical and Materials Transactions A, 2008, 40: 46-57. [7]Ayenampudi S, Celada-Casero C, Sietsma J, et al. Microstructure evolution during high-temperature partitioning of a medium-Mn quenching and partitioning steel[J]. Materialia, 2019, 8: 1-11. [8]詹 华, 冷德平, 潘红波, 等. Nb对0.2C-1.5Si-1.8Mn淬火配分钢组织和力学性能的影响[J]. 金属热处理, 2020, 45(3): 73-77. Zhan Hua, Leng Deping, Pan Hongbo, et al. Influence of Nb on microstructure and mechanical properties of 0.2C-1.5Si-1.8Mn quenching and partitioning steel[J]. Heat Treatment of Metals, 2020, 45(3): 73-77. [9]Song C, Yu H, Li L, et al. The stability of retained austenite at different locations during straining of I&Q&P steel[J]. Materials Science and Engineering A, 2016, 670: 326-334. [10]Chen S, Wang G Z, Liu C, et al. Correlation of isothermal bainite transformation and austenite stability in quenching and partitioning steels[J]. Journal of Iron and Steel Research (International), 2017, 24(11): 1095-1103. [11]Kong H, Chao Q, Cai M H, et al. Microstructure evolution and mechanical behavior of a CMnSiAl TRIP steel subjected to partial austenitization along with quenching and partitioning treatment[J]. Metallurgical and Materials Transactions A, 2018, 49(5): 1509-1519. [12]Calcagnotto M, Ponge D, Demir E, et al. Orientation gradients and geometrically necessary dislocations in ultrafine grained dual phase steels studied by 2D and 3D EBSD[J]. Materials Science Engineering A, 2010, 527: 2738-2746. [13]Hu B, Luo H. A novel two-step intercritical annealing process to improve mechanical properties of medium Mn steel[J]. Acta Materialia, 2019, 176: 250-263. [14]Hu B, Guo H, Misra R D K, et al. Enhanced carbon enrichment in austenite through introducing pre-existing austenite as a ‘carbon container' in 0.2C-2Mn steel: The significant impact on microstructure and mechanical properties[J]. Materials Characterization, 2021, 176: 1-12. [15]Cai Z H, Ding H, Xue X, et al. Significance of control of austenite stability and three-stage work-hardening behavior of an ultrahigh strength-high ductility combination transformation-induced plasticity steel[J]. Scripta Materialia, 2013, 68: 865-868. [16]Shi J, Sun X, Wang M, et al. Enhanced work-hardening behavior and mechanical properties in ultrafine-grained steels with large fractioned metastable austenite[J]. Scripta Materialia, 2010, 63: 815-818. [17]任勇强, 谢振家, 张宏伟, 等. 前躯体组织对C-Mn-Si钢组织特征及力学行为的影响[J]. 金属学报, 2013, 49(12): 1558-1566. Ren Yongqiang, Xie Zhenjia, Zhang Hongwei, et al. Effect of precursor microstructure on morphology feature and mechanical property of C-Mn-Si steel[J]. Acta Metallurgica Sinica, 2013, 49(12): 1558-1566. [18]Liu G, Li T, Yang Z G, et al. On the role of chemical heterogeneity in phase transformations and mechanical behavior of flash annealed quenching & partitioning steels[J]. Acta Materialia, 2020, 201: 266-277. |