[1]马鸣图, Shi M F. 先进的高强度钢及其在汽车工业中的应用[J]. 钢铁, 2004, 39(7): 68-72. Ma Mingtu, Shi M F. Advanced high strength steel and it's applications in automobile industry[J]. Iron and Steel, 2004, 39(7): 68-72. [2]安柯宇, 梁佳敏, 幸非凡, 等. 第三代汽车用高强钢—Q&P钢的研究现状[J]. 金属热处理, 2019, 44(2): 8-14. An Keyu, Liang Jiamin, Xing Feifan, et al. Research status of the 3rd generation advanced high strength steels for automobiles —Q&P steels[J]. Heat Treatment of Metals, 2019, 44(2): 8-14. [3]魏元生. 第三代高强度汽车钢的性能与应用[J]. 金属热处理, 2015, 40(12): 34-39. Wei Yuansheng. Performance and application of the 3rd generation high strength automobile steel[J]. Heat Treatment of Metals, 2015, 40(12): 34-39. [4]冯树明, 万德成, 王亚婷, 等. Q&P处理低碳中锰钢的显微组织与力学性能[J]. 金属热处理, 2020, 45(4): 69-74. Feng Shuming, Wan Decheng, Wang Yating, et al. Microstructure and mechanical properties of low carbon medium manganese steel treated by Q&P process[J]. Heat Treatment of Metals, 2020, 45(4): 69-74. [5]田敬成, 孙艳波, 滕敦波, 等. 高强Q&P钢中残留奥氏体的TRIP行为[J]. 金属热处理, 2019, 44(7): 169-172. Tian Jingcheng, Sun Yanbo, Teng Dunbo, et al. TRIP effect of retained austenite in high strength Q&P steel[J]. Heat Treatment of Metals, 2019, 44(7): 169-172. [6]郭艳辉, 付 斌, 邓想涛. 低碳硅锰钢的Q&P热处理工艺[J]. 金属热处理, 2019, 44(7): 24-27. Guo Yanhui, Fu Bin, Deng Xiangtao. Q&P heat treatment process for low carbon Si-Mn steel[J]. Heat Treatment of Metals, 2019, 44(7): 24-27. [7]Speer J, Matlock D K, Cooman B C D, et al. Carbon partitioning into austenite after martensite transformation[J]. Acta Materialia, 2003, 51(9): 2611-2622. [8]Clarke A J, Speer J G, Miller M K, et al. Carbon partitioning to austenite from martensite or bainite during the quench and partition (Q&P) process: A critical assessment[J]. Acta Materialia, 2008, 56(1): 16-22. [9]Lee S, Lee S J, Cooman B C D. Austenite stability of ultrafine-grained transformation-induced plasticity steel with Mn partitioning[J]. Scripta Materialia, 2011, 65(3): 225-228. [10]Toji Y, Yamashita T, Nakajima K, et al. Effect of Mn partitioning during intercritical annealing on following γ→ α transformation and resultant mechanical properties of cold-rolled dual phase steels[J]. ISIJ International, 2011, 51(5): 818-825. [11]陈连生, 张健杨, 田亚强, 等. 预先Mn配分处理对Q&P钢中C配分及残余奥氏体的影响[J]. 金属学报, 2015, 51(5): 527-536. Chen Liansheng, Zhang Jianyang, Tian Yaqiang, et al. Effect of Mn pre-partitioning on C partitioning and retained ausenite of Q&P steels[J]. Acta Metallurgica Sinica, 2015, 51(5): 527-536. [12]陈连生, 胡宝佳, 田亚强, 等. 含Cu低碳钢双相区形变+IQ处理的组织及Cu配分行为[J]. 金属热处理, 2017, 42(7): 51-54. Chen Liansheng, Hu Baojia, Tian Yaqiang, et al. Microstructure and Cu partitioning behavior in intercritical deformationplus IQ process of Cu-bearing low carbon steel[J]. Heat Treatment of Metals, 2017, 42(7): 51-54. [13]陈连生, 徐静辉, 田亚强, 等. Cu配分时间对I&Q&P处理钢组织性能影响[J]. 热加工工艺, 2016, 45(14): 229-232. Chen Liansheng, Xu Jinghui, Tian Yaqiang, et al. Effect of Cu partitioning time on microstructure and properties of steel with I&Q&P treatment[J]. Hot Work Technology, 2016, 45(14): 229-232. [14]闫 述, 刘相华, 刘伟杰, 等. 含Cu低碳钢Q&P工艺处理的组织性能与强化机理[J]. 金属学报, 2013, 49(8): 917-924. Yan Shu, Liu Xianghua, Liu Weijie, et al. Microstructure, mechanical properties and strengthening mechanisms of Cu bearing low-carbon steel treated by Q&P process[J]. Acta Metallurgica Sinica, 2013, 49(8): 917-924. [15]Borgenstam A, Engstrom A, Hoglund L, et al. DICTRA, a tool for simulation of diffusional transformations in alloys[J]. Journal of Phase Equilibria, 2000, 21(3): 269-280. [16]Tsuchiyama T, Inoue T, Tobata J, et al. Microstructure and mechanical properties of a medium manganese steel treated with interrupted quenching and intercritical annealing[J]. Scripta Materialia, 2016, 122: 36-39. [17]何燕霖, 李 麟, 叶 平, 等. Thermo-Calc和DICTRA 软件系统在高性能钢研制中的应用[J]. 材料热处理学报, 2003, 24(4): 73-77, 85. He Yanlin, Li Lin, Ye Ping, et al. Application of Thermo-Calc and DICTRA software system in development of high performance steel[J]. Transactions of Materials and Heat Treatment, 2003, 24(4): 73-77, 85. [18]雍歧龙. 钢铁材料中的第二相[M]. 1版. 北京: 冶金工业出版社, 2006. |