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钒微合金化Q390FRW钢焊后热处理接头的组织和性能研究

柏钦成 崔永凤 于海宝 解婷婷 韩如东 刘建莹 周书豪

柏钦成, 崔永凤, 于海宝, 解婷婷, 韩如东, 刘建莹, 周书豪. 钒微合金化Q390FRW钢焊后热处理接头的组织和性能研究[J]. 钢铁钒钛, 2026, 47(3): 164-171. doi: 10.7513/j.issn.1004-7638.2026.03.019
引用本文: 柏钦成, 崔永凤, 于海宝, 解婷婷, 韩如东, 刘建莹, 周书豪. 钒微合金化Q390FRW钢焊后热处理接头的组织和性能研究[J]. 钢铁钒钛, 2026, 47(3): 164-171. doi: 10.7513/j.issn.1004-7638.2026.03.019
BAI Qincheng, CUI Yongfeng, YU Haibao, XIE Tingting, HAN Rudong, LIU Jianying, ZHOU Shuhao. Microstructure and mechanical properties of post-weld heat-treated joints in vanadium microalloyed Q390FRW steel[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 164-171. doi: 10.7513/j.issn.1004-7638.2026.03.019
Citation: BAI Qincheng, CUI Yongfeng, YU Haibao, XIE Tingting, HAN Rudong, LIU Jianying, ZHOU Shuhao. Microstructure and mechanical properties of post-weld heat-treated joints in vanadium microalloyed Q390FRW steel[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 164-171. doi: 10.7513/j.issn.1004-7638.2026.03.019

钒微合金化Q390FRW钢焊后热处理接头的组织和性能研究

doi: 10.7513/j.issn.1004-7638.2026.03.019
详细信息
    作者简介:

    柏钦成,1987年出生,男,山东泰安人,学士,高级工程师,主要从事金属材料的检验检测研究,E-mail:baiqincheng@126.com

    通讯作者:

    周书豪,1999年出生,男,安徽淮北人,硕士研究生,主要从事金属焊接及焊后热处理相关研究,E-mail:17862852911@163.com

  • 中图分类号: TG44

Microstructure and mechanical properties of post-weld heat-treated joints in vanadium microalloyed Q390FRW steel

  • 摘要: 为提升桥梁伸缩缝用钢的综合性能,制备了一种钒微合金化的耐火耐候Q390FRW钢,研究了药芯气体保护焊(FCAW)与埋弧焊(SAW)及其焊后热处理(PWHT-525 ℃×60 min)对接头组织和性能的影响。热力学计算表明,钒的碳化物(VC)可于799 ℃析出,细化晶粒。试验结果表明:FCAW焊缝组织主要为铁素体与少量马-奥岛,而SAW焊缝则以贝氏体和铁素体为主。经热处理后,两种焊缝的马-奥岛均发生分解,晶粒显著细化,同时促进了钒的碳化物的弥散析出。热处理后,FCAW接头的抗拉强度与伸长率分别达到686 MPa与33.64%,其塑性的显著提升主要归因于钒的析出强化与组织稳定化作用。断口分析表明热处理使接头断裂机制由韧脆混合型向韧性断裂转变。
  • 图  1  焊接坡口与焊缝示意(单位:mm)

    (a)X型坡口—FCAW;(b)Y型坡口—SAW

    Figure  1.  Schematic diagram of welding groove and weld seam

    图  2  Q390FRW钢TTT曲线

    Figure  2.  TTT curve of Q390 FRW steel

    图  3  Q390FRW钢热轧态母材的金相组织(F与P)

    Figure  3.  Microstructure of as-rolled Q390FRW steel base metal (F and P)

    图  4  Q390FRW钢相演变

    Figure  4.  Phase transition of Q390FRW steel

    图  5  焊接接头宏观形貌

    Figure  5.  Macroscopic morphology of welded joints

    (a)FCAW;(b)SAW

    图  6  FCAW焊接接头显微组织

    (a)焊缝中心;(b)图(a)局部放大;(c)熔合线附近区域;(d)图(c)局部放大

    Figure  6.  Microstructure of FCAW welded joints

    图  7  SAW 焊接接头显微组织

    (a)焊缝中心区域;(b)图(a)局部放大;(c)熔合线附近区域;(d)图(c)局部放大

    Figure  7.  Microstructure of SAW welded joints

    图  8  焊后热处理(525 ℃×60 min)焊接接头显微组织

    (a)FCAW焊缝中心;(b)FCAW熔合区;(c)SAW焊缝中心;(d)SAW熔合区

    Figure  8.  Microstructure of the welded joints after post-weld heat treatment (525 ℃×60 min)

    图  9  Q390焊接接头的拉伸性能

    (a)工程应力-应变曲线;(b)抗拉强度和伸长率

    Figure  9.  Tensile properties of Q390 welded joints

    图  10  未加钒Q390钢与钒微合金化Q390FRW钢(FCAW+热处理)接头的工程应力-应变曲线对比

    (a)未加钒Q390钢;(b)钒微合金化Q390FRW钢

    Figure  10.  Comparison of engineering stress-strain curves of joints of vanadium-free Q390 steel and vanadium microalloyed Q390FRW steel (FCAW + heat treatment)

    图  11  断口形貌

    (a)FCAW;(b)SAW;(c)热处理FCAW;(d)热处理SAW

    Figure  11.  Tensile fracture

    表  1  焊接工艺参数

    Table  1.   Welding process parameters

    Welding process Groove type Wire / Flux type Welding current /A Welding voltage
    /V
    Welding speed/(cm·min-1) Calculate heat input/ (kJ·cm-1)
    FCAW X YJ711(Q) Flux-cored wire 260~280 28~30 25~30 15~20
    SAW Y WH H10Mn2 Solid wire+ HJ431 Soldering flux 550~600 32~34 40~45 25~30
    下载: 导出CSV

    表  2  Q390FRW钢力学性能

    Table  2.   Mechanical properties of Q390FRW steel

    Properties Yield
    strength/MPa
    Tensile
    strength/MPa
    Elongation/%
    Measured value 530 635 25
    GB/T 1591-2018 ≥380 490~650 ≥21
    下载: 导出CSV
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  • 收稿日期:  2026-01-05
  • 录用日期:  2026-02-11
  • 修回日期:  2026-02-06
  • 刊出日期:  2026-06-29

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