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22MnB5/DP980异种钢电阻点焊接头组织及力学性能分析

王海林 詹洪顺 王金凤 张元好 杨鍶伟

王海林, 詹洪顺, 王金凤, 张元好, 杨鍶伟. 22MnB5/DP980异种钢电阻点焊接头组织及力学性能分析[J]. 钢铁钒钛, 2025, 46(6): 172-178. doi: 10.7513/j.issn.1004-7638.2025.06.021
引用本文: 王海林, 詹洪顺, 王金凤, 张元好, 杨鍶伟. 22MnB5/DP980异种钢电阻点焊接头组织及力学性能分析[J]. 钢铁钒钛, 2025, 46(6): 172-178. doi: 10.7513/j.issn.1004-7638.2025.06.021
WANG Hailin, ZHAN Hongshun, WANG Jinfeng, ZHANG Yuanhao, YANG Siwei. Microstructure and mechanical properties analysis of resistance spot welded joints of 22MnB5/DP980 dissimilar steel[J]. IRON STEEL VANADIUM TITANIUM, 2025, 46(6): 172-178. doi: 10.7513/j.issn.1004-7638.2025.06.021
Citation: WANG Hailin, ZHAN Hongshun, WANG Jinfeng, ZHANG Yuanhao, YANG Siwei. Microstructure and mechanical properties analysis of resistance spot welded joints of 22MnB5/DP980 dissimilar steel[J]. IRON STEEL VANADIUM TITANIUM, 2025, 46(6): 172-178. doi: 10.7513/j.issn.1004-7638.2025.06.021

22MnB5/DP980异种钢电阻点焊接头组织及力学性能分析

doi: 10.7513/j.issn.1004-7638.2025.06.021
基金项目: 湖北省教育厅科学研究计划指导性项目(B2022370);大学生创新训练计划项目(DC2025119);十堰市引导性科研项目(25Y241)。
详细信息
    作者简介:

    王海林,1988年出生,男,湖北十堰人,硕士,研究方向:材料连接及表面改性,E-mail:1353906413@qq.com

  • 中图分类号: TG422

Microstructure and mechanical properties analysis of resistance spot welded joints of 22MnB5/DP980 dissimilar steel

  • 摘要: 利用MD-40中频逆变点凸焊设备,对1.2 mm厚22MnB5与1.6 mm厚DP980异种钢开展电阻点焊试验,结合拉伸试验、显微硬度测试、金相组织观察等方法,研究不同焊接电流与时间对22MnB5/DP980点焊接头成形质量、微观组织及力学性能的影响。结果表明:随焊接电流的增大,接头拉剪力呈现持续上升趋势,当焊接电流为11 kA时,拉剪力达到峰值16.81 kN;焊接时间的延长同样会使接头拉剪力不断提高,在焊接时间为400 ms时,拉剪力达到峰值17.23 kN,与焊接电流相比,焊接时间对接头拉剪力的提升作用更显著,但当焊接时间为400 ms时,会出现电极与材料粘连及飞溅现象,从而加剧电极的磨损。综合考虑焊接电流及时间对22MnB5/DP980焊接接头拉伸力学性能的影响,确定相对优异的焊接工艺参数为:电极压力0.2 MPa、焊接电流11 kA、焊接时间350 ms。焊接接头DP980钢侧热影响区存在软化现象,熔核区硬度高于热影响区,且焊接电流越大,该侧热影响区软化程度越严重;而22MnB5钢侧热影响区则发生硬化现象,热影响区硬度高于熔核区,接头的显微硬度值由高到低依次为22MnB5钢侧热影响区、熔核区、DP980钢侧热影响区。22MnB5/DP980焊接接头断裂方式为部分熔核拔出断裂,即熔核未完全拔出,拔出时沿熔核周围撕裂22MnB5侧母材,DP980侧无撕裂,熔核附着于DP980钢一侧。
  • 图  1  母材金相组织

    Figure  1.  Microstructure of the base material

    (a)22MnB5;(b)DP980

    图  2  接头宏观形貌

    Figure  2.  Macroscopic morphology of the joint

    图  3  不同焊接参数熔核区显微组织

    Figure  3.  Microstructure of the FZ under different welding parameters

    (a)11 kA,350 ms;(b)8 kA,350 ms;(c)11 kA,250 ms

    图  4  不同焊接参数22MnB5侧热影响区显微组织

    (a)11 kA,350 ms;(b)8 kA,350 ms;(c)11 kA,250 ms

    Figure  4.  Microstructure of the HAZ on the 22MnB5 side under different welding parameters

    图  5  不同焊接电流下接头显微硬度分布

    Figure  5.  Microhardness distribution of the joints with different welding currents

    图  6  不同焊接时间下接头显微硬度分布

    Figure  6.  Microhardness distribution of the joints with different welding times

    图  7  不同焊接电流下接头拉伸性能

    (a)拉伸曲线;(b)拉剪力

    Figure  7.  Tensile properties of the joint with different welding currents

    图  8  不同焊接时间下接头拉伸性能

    (a)拉伸曲线;(b)拉剪力

    Figure  8.  Tensile properties of the joints with different welding times

    图  9  焊接接头断裂形貌

    (a)22MnB5侧; (b)DP980侧

    Figure  9.  Fracture morphology of welded joints

    表  1  22MnB5和DP980钢的化学成分

    Table  1.   Chemical compositions of 22MnB5 and DP980 steels %

    MaterialCSiMnPSBCrTiMoAlFe
    22MnB50.210.281.350.0030.170.0360.005Bal.
    DP9800.080.3932.20.0080.00110.00190.050.180.032Bal.
    下载: 导出CSV

    表  2  点焊工艺参数

    Table  2.   Welding process parameters

    Test numberwelding current/kAWelding
    time/ms
    Electrode pressure/MPa
    183500.2
    293500.2
    3103500.2
    4113500.2
    5112500.2
    6113000.2
    7113500.2
    8114000.2
    下载: 导出CSV
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  • 收稿日期:  2025-09-10
  • 录用日期:  2025-10-11
  • 修回日期:  2025-10-09
  • 网络出版日期:  2025-12-31
  • 刊出日期:  2025-12-31

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