[1]桂晓露, 王 琨, 苏 浩, 等. 重载铁路用贝氏体钢轨显微组织定量表征[J]. 材料导报, 2020, 34(22): 22136-22141. Gui Xiaolu, Wang Kun, Su Hao, et al. Quantitative characterization of microstructure of bainitic rail for heavy haul railway[J]. Materials Reports, 2020, 34(22): 22136-22141. [2]Hasan S M, Chakrabarti D, Singh S B. Dry rolling/sliding wear behaviour of pearlitic rail and newly developed carbide-free bainitic rail steels[J]. Wear, 2018, 408: 151-159. [3]谭谆礼, 高 博, 高古辉, 等. 国内外贝氏体钢轨的研发现状[J]. 金属热处理, 2018, 43(4): 10-18. Tan Zhunli, Gao Bo, Gao Guhui, et al. Current development situation of bainitic rails at home and abroad[J]. Heat Treatment of Metals, 2018, 43(4): 10-18. [4]Zhu M, Xu G, Zhou M X, et al. Effects of tempering on the microstructure and properties of a high-strength bainite rail steel with good toughness[J]. Metals, 2018, 8(7): 484. [5]包喜荣, 王均安, 王晓东, 等. 一种Mn-Cr-Mo-La系空冷贝氏体钢轨用钢的试验研究[J]. 铁道学报, 2017, 39(4): 118-125. Bao Xirong, Wang Jun'an, Wang Xiaodong, et al. Study on a Mn-Cr-La air-cooled bainitic steel for rails[J]. Journal of the China Railway Society, 2017, 39(4): 118-125. [6]陈建军, 姜茂发, 李 凯. 高强度高韧性贝氏体钢轨研究[J]. 钢铁, 2007(2): 68-71. Chen Jianjun, Jiang Maofa, Li Kai. Research on bainite steel rail with high strength and high toughness[J]. Iron & Steel, 2007(2): 68-71. [7]Liang G F, Tan Q Y, Liu Y G, et al. Effect of cooling rate on microstructure and mechanical properties of a low-carbon low-alloy steel[J]. Journal of Materials Science, 2020, 56: 1-11. [8]Zhao G D, Zang X M, Li W M, et al. Study on primary carbides precipitation in H13 tool steel regarding cooling rate during solidification[J]. China Foundry, 2020, 17(3): 235-244. [9]Varshney A, Sangal S, Pramanick A K, et al. On the extent of transformation of austenite to bainitic ferrite and carbide during austempering of high Si steel for prolonged duration and its effect on mechanical properties[J]. Materials Science and Engineering: A, 2020, 793: 139764. [10]Bao X R, Wang J A. Effects of lanthanum on bainite transformation behavior in Mn-Cr-Mo rail steel[J]. Journal of Materials Research, 2021, 36(6): 1400-1412. [11]Sourmail T, Smanio V. Low temperature kinetics of bainite formation in high carbon steels[J]. Acta Materialia, 2013, 61(7): 2639-2648. [12]Kang M K, Zhang M X, Zhu M. In situ observation of bainite growth during isothermal holding[J]. Acta Materialia, 2006, 54(8): 2121-2129. [13]胡海江, 徐 光, 刘 峰. 超级贝氏体钢相变的原位观察研究[J]. 材料科学与工艺, 2014, 22(5): 97-101. Hu Haijiang, Xu Guang, Liu Feng. In situ study of transformation in a superbainite steel[J]. Materials Science and Technology, 2014, 22(5): 97-101. [14]计云萍, 刘新华, 刘宗昌, 等. 20MnCrNi2Mo铸钢贝氏体形核-长大过程的原位观察[J]. 材料热处理学报, 2014, 35(11): 28-32. Ji Yunping, Liu Xinhua, Liu Zongchang, et al. In situ observation of nucleation and growth of bainite in 20MnCrNi2Mo cast steel[J]. Transactions of Materials and Heat Treatment, 2014, 35(11): 28-32. [15]王占花, 惠卫军, 陈 祯, 等. 钒及奥氏体化温度对Mn-Cr系贝氏体型非调质钢过冷奥氏体连续冷却转变行为的影响[J]. 材料导报, 2020, 34(18): 18145-18151, 18158. Wang Zhanhua, Hui Weijun, Chen Zhen, et al. Effects of vanadium and austenitizing temperature on continuous cooling transformation behavior of Mn-Cr type bainitic forging steels[J]. Materials Reports, 2020, 34(18): 18145-18151, 18158. [16]胡海江, 徐 光, 张玉龙, 等. 先进贝氏体钢奥氏体晶粒长大行为的动态观察[J]. 材料热处理学报, 2014, 35(1): 83-87.Hu Haijiang, Xu Guang, Zhang Yulong, et al. Dynamic observation of austenite grain growth behavior of an advanced bainite steel[J]. Transactions of Materials and Heat Treatment, 2014, 35(1): 83-87. [17]衣海龙, 杜林秀, 王国栋, 等. 铌微合金钢等温及连续冷却贝氏体相变[J]. 金属热处理, 2006, 31(8): 39-42. Yi Hailong, Du Linxiu, Wang Guodong, et al. Bainite transformation of niobium microalloyed steel under isothermal and continuous cooling conditions[J]. Heat Treatment of Metals, 2006, 31(8): 39-42. [18]Tian J Y, Xu G, Wang L, et al. In situ observation of the lengthening rate of bainite sheaves during continuous cooling process in a Fe-C-Mn-Si superbainitic steel[J]. Transactions of the Indian Institute of Metals, 2018, 71(1): 185-194. [19]Hu Zhangwei, Xu Guang, Hu Haijiang, et al. In situ measured growth rates of bainitic plates in a Fe-C-Mn-Si superbainitic steel[J]. International Journal of Minerals Metallurgy and Materials, 2014, 21(4): 371-378. [20]Quidort D, Brechet Y J M. Isothermal growth kinetics of bainite in 0.5%C steels[J]. Acta Materialia, 2001, 49(20): 4161-4170. [21]Matas S J, Hehemann R F. The structure of bainite in hypoeutectoid steels[J]. Transactions of the Metallurgical Society of AIME, 1961, 221(1): 179-185. [22]Yang M, Zhong Y, Liang Y L. Effect of hierarchical microstructures of lath martensite on the transitional behavior of fatigue crack growth rate[J]. Metals and Materials International, 2018, 24(5): 970-980. |