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终轧温度对钒微合金化500 MPa级高强钢组织和性能的影响

韩楚菲 董毅 时晓光 孙成钱 王俊雄 李智 徐海健

韩楚菲, 董毅, 时晓光, 孙成钱, 王俊雄, 李智, 徐海健. 终轧温度对钒微合金化500 MPa级高强钢组织和性能的影响[J]. 钢铁钒钛, 2026, 47(4): 151-156. doi: 10.7513/j.issn.1004-7638.2026.04.018
引用本文: 韩楚菲, 董毅, 时晓光, 孙成钱, 王俊雄, 李智, 徐海健. 终轧温度对钒微合金化500 MPa级高强钢组织和性能的影响[J]. 钢铁钒钛, 2026, 47(4): 151-156. doi: 10.7513/j.issn.1004-7638.2026.04.018
HAN Chufei, DONG Yi, SHI Xiaoguang, SUN Chengqian, WANG Junxiong, LI Zhi, XU Haijian. Effect of final rolling temperature on microstructure and properties of 500 MPa grade vanadium microalloyed high-strength steel[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(4): 151-156. doi: 10.7513/j.issn.1004-7638.2026.04.018
Citation: HAN Chufei, DONG Yi, SHI Xiaoguang, SUN Chengqian, WANG Junxiong, LI Zhi, XU Haijian. Effect of final rolling temperature on microstructure and properties of 500 MPa grade vanadium microalloyed high-strength steel[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(4): 151-156. doi: 10.7513/j.issn.1004-7638.2026.04.018

终轧温度对钒微合金化500 MPa级高强钢组织和性能的影响

doi: 10.7513/j.issn.1004-7638.2026.04.018
详细信息
    作者简介:

    韩楚菲,1991年出生, 女,辽宁鞍山人,硕士, 高级工程师,主要从事先进钢铁结构材料的研究;E-mail:chufeihan@ansteel.com.cn

    通讯作者:

    徐海健,1987年出生, 男,辽宁大连人, 博士,正高级工程师,主要从事先进钢铁结构材料的研究, E-mail:haijianxu2013@163.com

  • 中图分类号: TF76,TG142

Effect of final rolling temperature on microstructure and properties of 500 MPa grade vanadium microalloyed high-strength steel

  • 摘要: 围绕汽车、船舶制造及能源输送等领域轻量化与高性能的需求,开发了低 C-Mn-V-Cr-Nb 成分设计体系下屈服强度500 MPa级复合微合金化高强钢。通过采用-40 ℃低温CVN冲击、室温拉伸等力学性能测试和光学显微镜(OM)、透射电子显微镜(TEM)及扫描电子显微镜(SEM)等微观结构表征手段,研究了不同终轧温度(920、870、820 ℃和770 ℃)对500 MPa 级高强钢中析出相和显微结构特征与强韧性的影响。研究结果表明,在奥氏体未再结晶区轧制,随着终轧温度降低,钢的晶粒尺寸逐渐细化,晶粒内部富V的纳米碳氮化物体积分数呈现先增加后减少的趋势,同时组织由多边形铁素体(PF)+少量针状铁素体(AF)和粒状贝氏体(GB)逐渐演变为准多边形铁素体(QF)+针状铁素体(AF)+粒状贝氏体(GB),在力学性能上呈现出强度和-40 ℃低温韧性一并提高,综合考虑性能指标和轧制过程中板形控制,终轧温度820~870 ℃可满足工程装备用钢的技术要求。
  • 图  1  钒微合金钢控轧及控冷工艺

    Figure  1.  Schematic diagram of controlled rolling and controlled cooling process for vanadium microalloyed steel

    图  2  不同终轧温度下钒微合金钢的OM显微组织

    Figure  2.  OM microstructrues of vanadium microalloyed steels after rolling at different finish rolling temperatures

    (a) 920 ℃; (b) 870 ℃; (c) 820 ℃; (d) 770 ℃

    图  3  不同终轧温度下钒微合金钢的SEM显微组织

    Figure  3.  SEM microstructrues of vanadium microalloyed steels after rolling at different finish rolling temperatures

    (a) 920 ℃; (b) 870 ℃; (c) 820 ℃; (d) 770 ℃

    图  4  不同终轧温度下钒微合金钢析出相形貌

    Figure  4.  Precipitate morphologies of vanadium microalloyed steel at different finishing rolling temperatures

    (a)920 ℃; (b) 870 ℃; (c) 820 ℃; (d) 770 ℃

    图  5  不同终轧温度下钒微合金钢析出相尺寸分布

    Figure  5.  Size distribution of precipitates in vanadium microalloyed steel at different finishing rolling temperatures

    图  6  钒微合金钢中不同尺寸析出相的EDS能谱

    (a) 富V碳氮化物;(b) 富Ti碳氮化物

    Figure  6.  EDS energy spectrum of precipitated phases of different sizes in vanadium microalloyed steels

    图  7  不同终轧温度下试验钢的力学性能

    (a) 强度;(b) 冲击功

    Figure  7.  Mechanical properties of test steel after rolling at different finish rolling temperatures

    表  1  钒微合金钢坯料的化学成分

    Table  1.   The chemical composition of vanadium microalloyed steel billets %

    CSiMnPSCrTiNbNV
    0.05~0.070.15~0.251.60~1.75≤0.015≤0.0150.20~0.250.001~0.00150.02~0.040.008~0.0130.08~0.12
    下载: 导出CSV
  • [1] Atsuhiko Y, Masaaki F, Yoshiyuki W. Modelling of microstructural evolution and mechanical properties of steel plates produced by thermo-mechanical control process[J]. ISIJ International, 1992, 32(3): 395-404.
    [2] 裘韶均, 闫江辉, 唐辉, 等. 460 MPa级耐火耐候建筑用钢的组织和性能研究[J]. 热加工工艺, 2024, 53(16): 129-133. Qiu Shaojun, Yan Jianghui, Tang Hui, et al. Study on microstructure and properties of 460 MPa grade fire and weather resistant building steel[J]. Hot Working Technology, 2024, 53(16): 129-133.

    Qiu Shaojun, Yan Jianghui, Tang Hui, et al. Study on microstructure and properties of 460 MPa grade fire and weather resistant building steel[J]. Hot Working Technology, 2024, 53(16): 129-133.
    [3] Shanmuugam S, Misra R D K, Hartmann J, et al. Microstructure of high strength niobium-containing pipeline steel[J]. Materials Science and Engineering A, 2006, 441(1-2): 215-229. doi: 10.1016/j.msea.2006.08.017
    [4] 李博文, 高彩茹, 李旺, 等. 终冷温度对Q500耐候桥梁钢的低温冲击断裂行为影响[J]. 工业建筑, 2024, 54(12): 10-17. Li Bowen, Gao Cairu, Liwang, et al. Effects of final cooling temperature on low-temperature impact fracture behavior of Q500 weathering bridge steel[J]. Industrial Construction, 2024, 54(12): 10-17. doi: 10.3724/j.gyjzG24013001

    Li Bowen, Gao Cairu, Liwang, et al. Effects of final cooling temperature on low-temperature impact fracture behavior of Q500 weathering bridge steel[J]. Industrial Construction, 2024, 54(12): 10-17. doi: 10.3724/j.gyjzG24013001
    [5] 李龙飞, 林腾昌, 孟华栋, 等. 钒含量对X80管线钢显微结构及强塑性影响研究[J]. 钢铁钒钛, 2023, 44(5): 130-138. Li Longfei, Lin Tengchang, Meng Huadong, et al. Effect of vanadium content on microstructure and strength plasticity of X80 pipeline steel[J]. Iron Steel Vanadium Titanium, 2023, 44(5): 130-138.

    Li Longfei, Lin Tengchang, Meng Huadong, et al. Effect of vanadium content on microstructure and strength plasticity of X80 pipeline steel[J]. Iron Steel Vanadium Titanium, 2023, 44(5): 130-138.
    [6] 段贺, 单以银, 杨柯, 等. X80低温用高强度管线钢的工艺与组织性能试验[J]. 钢铁, 2020, 55(2): 103-112. Duan He, Shan Yiyin, Yang Ke, et al. Experimental of process, microstructure and mechanical properties of X80 high strength pipeline steel for low temperature[J]. Iron and Steel, 2020, 55(2): 103-112. doi: 10.13228/j.boyuan.issn0449-749x.20190216

    Duan He, Shan Yiyin, Yang Ke, et al. Experimental of process, microstructure and mechanical properties of X80 high strength pipeline steel for low temperature[J]. Iron and Steel, 2020, 55(2): 103-112. doi: 10.13228/j.boyuan.issn0449-749x.20190216
    [7] Sampath K. An understanding of HSLA-65 plate steels[J]. Journal of Materials Engineering and Performance, 2006, 15(1): 32-40. doi: 10.1361/105994906x83439
    [8] Zhao Mingchun, Yang Ke, Xiao Furen, et al. Continuous cooling transformation of undeformed and deformed low carbon pipeline steels[J]. Materials Science and Engineering A, 2003, 355(1/2): 126-136. doi: 10.1016/s0921-5093(03)00074-1
    [9] Li Longfei, Song Bo, Yang Biwen, et al. Effect of tempering temperature after thermo-mechanical control process on microstructure characteristics and hydrogen-induced ductility loss in high-vanadium X80 pipeline steel[J]. Materials, 2020, 13: 2839. doi: 10.3390/ma13122839
    [10] Amirjani N, Ketabchi M, Eskandari, et al. Effect of cooling rate and finish rolling temperature on structure and strength of API 5LX70 linepipe steel plate[J]. Journal of Materials Engineering and Performance, 2020, 29(7): 4275-4285. doi: 10.1007/s11665-020-04961-0
    [11] Mandal G, Ghosh S K, Chatterjee S. Effect of thermomechanical controlled processing and quenching & tempering on the structure and properties of bainite-martensite steels[J]. Archives of Metallurgy and Materials, 2020, 65(2): 861-868. doi: 10.24425/amm.2020.132832
    [12] 李永亮, 王福明, 李长荣, 等. 钒对高强度汽车大梁钢组织细化的影响[J]. 工程科学学报, 2016, 38(8): 1108-1114. Li Yongliang, Wang Fuming, Li Changrong, et al. Influence of vanadium on the microstructure refinement of high strength automobile beam steel[J]. Chinese Journal of Engineering, 2016, 38(8): 1108-1114.

    Li Yongliang, Wang Fuming, Li Changrong, et al. Influence of vanadium on the microstructure refinement of high strength automobile beam steel[J]. Chinese Journal of Engineering, 2016, 38(8): 1108-1114.
    [13] 卿家胜, 沈厚发, 刘明. 高强耐候钢YQ450NQR1钒氮微合金化[J]. 钢铁, 2017, 52(5): 87-93. Qing Jiasheng, Shen Houfa, Liu Ming. V-N microalloying of high strength weathering steel YQ450NQR1[J]. Iron and Steel, 2017, 52(5): 87-93. doi: 10.13228/j.boyuan.issn0449-749x.20160428

    Qing Jiasheng, Shen Houfa, Liu Ming. V-N microalloying of high strength weathering steel YQ450NQR1[J]. Iron and Steel, 2017, 52(5): 87-93. doi: 10.13228/j.boyuan.issn0449-749x.20160428
    [14] Chen S C, Huang C Y, Wang Y T, et al. Coopetitive micro-mechanisms between recrystallization and transformation during/after dynamic strain-induced transformation in aluminum-containing low-carbon steel[J]. Materials and Design, 2017, 134: 434-445. doi: 10.1016/j.matdes.2017.08.074
    [15] Ouchi C. Development of steel plates by intensive use of TMCP and direct quenching processes[J]. ISIJ International, 2001, 41(6): 542-553.
    [16] Raiput S K, Chaudari G P, Nath S K. Physical simulation of hot deformation of low-carbon Ti-Nb microalloyed steel and microstructural studies[J]. Journal of Materials Engineering and Performance, 2014, 23(8): 2930-2942. doi: 10.1007/s11665-014-1059-8
    [17] 霍向东, 夏继年, 李烈军, 等. 钛微合金化高强钢的研究与发展[J]. 钢铁钒钛, 2017, 38(4): 105-112. Huo Xiangdong, Xia Jinian, Li Liejun, et al. Research and development of titanium microalloyed high strength steel[J]. Iron Steel Vanadium Titanium, 2017, 38(4): 105-112. doi: 10.7513/j.issn.1004-7638.2017.04.019

    Huo Xiangdong, Xia Jinian, Li Liejun, et al. Research and development of titanium microalloyed high strength steel[J]. Iron Steel Vanadium Titanium, 2017, 38(4): 105-112. doi: 10.7513/j.issn.1004-7638.2017.04.019
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  • 收稿日期:  2026-02-19
  • 录用日期:  2026-03-31
  • 修回日期:  2026-03-25
  • 刊出日期:  2026-08-31

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