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Ti/N比对Mg处理船板钢焊后第二相粒子及韧性的影响

张玉旗 杨健 张银辉

张玉旗, 杨健, 张银辉. Ti/N比对Mg处理船板钢焊后第二相粒子及韧性的影响[J]. 钢铁钒钛, 2026, 47(3): 172-180. doi: 10.7513/j.issn.1004-7638.2026.03.020
引用本文: 张玉旗, 杨健, 张银辉. Ti/N比对Mg处理船板钢焊后第二相粒子及韧性的影响[J]. 钢铁钒钛, 2026, 47(3): 172-180. doi: 10.7513/j.issn.1004-7638.2026.03.020
ZHANG Yuqi, YANG Jian, ZHANG Yinhui. Ti/N control of precipitates and toughness in welded Mg-treated shipbuilding steel plate[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 172-180. doi: 10.7513/j.issn.1004-7638.2026.03.020
Citation: ZHANG Yuqi, YANG Jian, ZHANG Yinhui. Ti/N control of precipitates and toughness in welded Mg-treated shipbuilding steel plate[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 172-180. doi: 10.7513/j.issn.1004-7638.2026.03.020

Ti/N比对Mg处理船板钢焊后第二相粒子及韧性的影响

doi: 10.7513/j.issn.1004-7638.2026.03.020
详细信息
    作者简介:

    张玉旗,1998年出生,女,山东菏泽人,博士研究生,研究方向:氧化物冶金技术,E-mail:qiqzhang1984@shu.edu.cn

    通讯作者:

    杨健,1965年出生,男,湖南株洲人,教授,研究方向:炼钢、连铸、夹杂物及氧化物冶金技术,E-mail:yang_jian@t.shu.edu.cn

  • 中图分类号: TG142.1,TF76

Ti/N control of precipitates and toughness in welded Mg-treated shipbuilding steel plate

  • 摘要: 通过400 kJ/cm焊接热模拟试验探究了Ti/N比对Mg处理船板钢-20 ℃焊接热影响区低温冲击韧性的影响。当Ti/N比从3.00(TN30)增加到5.67(TN57)时,钢中的析出粒子均为TiN粒子,纳米析出粒子的平均尺寸从150 nm增加到205 nm,且TN57钢中粒子的数量密度约为TN30钢中的2.5倍。TN30钢中尺寸约为3 μm的Mg-Ti-O-MnS复合夹杂物能够有效诱导IAF的形核,铁素体板条和位错塞积的出现有利于提高其韧性;在TN57钢中观察到形状规则、棱角分明的尺寸约为5 μm的含Ti(C, N)复合夹杂物,这种粗大的碳氮化物不利于钢材的韧性。当钢中的Ti/N比由3.00增加到5.67,钢材在-20 ℃低温冲击韧性由183 J降至49 J。
  • 图  1  TiN平衡溶解度与实际溶解度比较

    (a) 液相; (b) 两相区; (c)γ-Fe相

    Figure  1.  Comparison of equilibrium solubility products with actual solubility products of TiN

    图  2  纳米粒子的典型形态和组成

    Figure  2.  Typical morphologies and compositions of nanoparticles

    (a)(b) TN30; (c)(d) TN57

    图  3  粒子尺寸分布对比

    (a) 尺寸分布; (b) 平均尺寸和数量密度

    Figure  3.  Comparison of particle size distributions

    图  4  TN30钢Mg-Ti-O-N-MnS复合夹杂物形貌及EDS面扫描分析

    (a)夹杂物1;(b)夹杂物2;(c)夹杂物3;(d)夹杂物4

    Figure  4.  Morphologies and EDS-mapping of Mg-Ti-O-N-MnS composite inclusions in TN30 steel

    图  5  TN57钢夹杂物形貌及EDS面扫描分析

    (a)(b)(c) Mg-Ti-O-N-MnS复合夹杂物; (d)以Ti(C, N)为主的复合夹杂物

    Figure  5.  Morphologies and EDS-mapping of inclusions in TN57 steel

    图  6  钢焊接热影响区的TEM图

    Figure  6.  TEM image of the HAZ

    (a)(b)(c) TN30; (d)(e)(f) TN57

    图  7  Mg-Ti-O-MnS 复合夹杂物

    Figure  7.  Mg-Ti-O-MnS composite inclusion

    (a) TN30; (b) TN57

    图  8  钢中第二相粒子、原奥氏晶粒和微观组织关系的示意

    Figure  8.  Schematic diagram of the relationship among the second phase particles, PAGs and microstructures

    (a) TN30; (b) TN57

    表  1  试验钢的化学成分

    Table  1.   Chemical compositions of the steel samples

    Steels Chemical composition/% Ti/N
    C Si Mn P S Mg Ti N
    TN30 0.076 0.22 1.55 0.007 0.004 0.0027 0.012 0.004 3.00
    TN57 0.081 0.22 1.56 0.007 0.004 0.0026 0.017 0.003 5.67
    下载: 导出CSV

    表  2  焊接热模拟试验条件

    Table  2.   Experimental conditions of simulation welding

    Plate
    thickness/mm
    Welding heat
    input/(kJ·cm-1)
    Peak
    temperature/℃
    Peak holding
    time/s
    t8/5/s
    5040014003385
    下载: 导出CSV
  • [1] LIU P. New progress of oxide metallurgy technology used in high heat input welding for high strength ship plate steel[J]. World Iron & Steel, 2012, 12(1): 20-28. (刘湃. 大线能量焊接高强船板钢氧化物冶金技术的新进展[J]. 世界钢铁, 2012, 12(1): 20-28. doi: 10.3969/j.issn.1672-9587.2012.01.006

    LIU P. New progress of oxide metallurgy technology used in high heat input welding for high strength ship plate steel[J]. World Iron & Steel, 2012, 12(1): 20-28. doi: 10.3969/j.issn.1672-9587.2012.01.006
    [2] YANG J, ZHU K, WANG G D. Progress in the technological development of oxide metallurgy for manufacturing steel plates with excellent HAZ toughness[J]. Baosteel Technical Research, 2008, 2(4): 43-50.
    [3] LI X M, ZHENG S B, ZHENG Q, et al. Oxides metallurgy[J]. Shanghai Metals, 2005, 27(5): 55-60. (李新明, 郑少波, 郑庆, 等. 钢的氧化物冶金技术[J]. 上海金属, 2005, 27(5): 55-60.

    LI X M, ZHENG S B, ZHENG Q, et al. Oxides metallurgy[J]. Shanghai Metals, 2005, 27(5): 55-60.
    [4] YANG J, ZHU K, WANG R Z, et al. Excellent heat affected zone toughness technology improved by use of strong deoxidizers[J]. Journal of Iron and Steel Research International, 2011, 18(S2): 141-147.
    [5] LI Y D, XING W W, LI X B, et al. Effect of mg addition on the microstructure and properties of a heat-affected zone in submerged arc welding of an Al-killed low carbon steel[J]. Materials, 2021, 14(9): 2445-2464. doi: 10.3390/ma14092445
    [6] LIU Y, WAN X L, LI G Q, et al. Grain refinement in coarse-grained heat-affected zone of Al-Ti-Mg complex deoxidised steel[J]. Science and Technology of Welding and Joining, 2019, 24(1): 43-51. doi: 10.1080/13621718.2018.1476804
    [7] ZHAN D P, MA J H, JIANG Z H, et al. Effect of inclusions containing Ti, Mg on microstructure and performance of HAZ in low carbon steel[J]. Journal of Iron and Steel Research International, 2011, 18: 164-167.
    [8] SONG M M, SONG B, HU C L, et al. Formation of acicular ferrite in Mg treated Ti-bearing C-Mn steel[J]. ISIJ International, 2015, 55(7): 1468-1473. doi: 10.2355/isijinternational.55.1468
    [9] KIM H S, CHANG C H, LEE H G. Evolution of inclusions and resultant microstructural change with Mg addition in Mn/Si/Ti deoxidized steels[J]. Scripta Materialia, 2005, 53(11): 1253-1258. doi: 10.1016/j.scriptamat.2005.08.001
    [10] XU L Y, YANG J, WANG R Z, et al. Effect of Mg addition on formation of intragranular acicular ferrite in heat-affected zone of steel plate after high-heat-input welding[J]. Journal of Iron and Steel Research International, 2018, 25(4): 433-441. doi: 10.1007/s42243-018-0054-y
    [11] XU L Y, YANG J. Effects of Mg content on characteristics of nanoscale TiN particles and toughness of heat-affected zones of steel plates after high-heat-input welding[J]. Metallurgical and Materials Transactions A, 2020, 51(9): 4540-4548. doi: 10.1007/s11661-020-05864-4
    [12] SHEN Y, WAN X L, LIU Y, et al. The significant impact of Ti content on microstructure–toughness relationship in the simulated coarse-grained heated-affected zone of high-strength low-alloy steels[J]. Ironmaking Steelmaking, 2019, 46(6): 584-596. doi: 10.1080/03019233.2018.1533608
    [13] ZHANG Y, LI X B, MA H. Enhancement of heat-affected zone toughness of a low carbon steel by TiN particle[J]. Metallurgical and Materials Transactions B, 2016, 47(4): 2148-2156. doi: 10.1007/s11663-015-0534-4
    [14] YAN W, SHAN Y, YANG K. Effect of TiN inclusions on the impact toughness of low-carbon microalloyed steels[J]. Metallurgical and Materials Transactions A, 2006, 37A(7): 2147-2158.
    [15] LI N, WANG L, XUE Z L, et al. Study of precipitation and growth processes of Ti-bearing inclusions in tire cord steel[J]. Results in Physics, 2020, 16: 102929. doi: 10.1016/j.rinp.2020.102929
    [16] WANG P, LI C, WANG L, et al. Thermodynamic analysis of TiN precipitation in SWRH92A high carbon tire cord steel under the influence of solute micro-segregations during solidification[J]. Metallurgical and Materials Transactions B, 2021, 52(4): 2056-2071. doi: 10.1007/s11663-021-02166-x
    [17] MA Z T, JANKE D. Characteristics of oxide precipitation and growth during solidification of deoxidized steel[J]. ISIJ International, 1998, 38(1): 46-52. doi: 10.2355/isijinternational.38.46
    [18] XIAO Y Y, CAO L, WANG G C, et al. Formation and precipitation mechanism of TiN inclusion in Mg-treated GCr15 bearing steel[J]. Metallurgical and Materials Transactions B, 2022, 53(2): 916-930. doi: 10.1007/s11663-021-02415-z
    [19] INOUE K, OHNUMA I, OHTANI H, et al. Solubility product of TiN in austenite[J]. ISIJ International, 1998, 38(9): 991-997. doi: 10.2355/isijinternational.38.991
    [20] QU T P, ZHANG C W, WANG D Y, et al. Effect of Mg-Ti treatment on nucleation mechanism of TiN inclusions and ferrite[J]. Metals, 2020, 10(6): 755. doi: 10.3390/met10060755
    [21] ZHANG Y Q, ZHANG Y H, YANG J, et al. Influence of Ti/N ratio on inclusions, microstructures, and toughness in heat-affected zone of shipbuilding steel plates with Mg deoxidation after high heat input welding[J]. Steel Research International, 2024, 95(1): 2300283. doi: 10.1002/srin.202300283
    [22] LIU T, LONG M J, CHEN D F, et al. Effect of coarse TiN inclusions and microstructure on impact toughness fluctuation in Ti micro-alloyed steel[J]. Journal of Iron and Steel Research International, 2018, 25(10): 1043-1053. doi: 10.1007/s42243-018-0149-5
    [23] MEDINA S, CHAPA M, VALLES P, et al. Influence of Ti and N contents on austenite grain control and precipitate size in structural steels[J]. ISIJ International, 1999, 39(9): 930-936. doi: 10.2355/isijinternational.39.930
    [24] MEDINA S F, VEGA M I, QUISPE A. Influence of TiN particles distribution on static recrystallisation in structural steels at reheating temperature[J]. Steel Research, 2001, 72(1): 24-28. doi: 10.1002/srin.200100076
    [25] PAN X Q, YANG J, ZHANG Y H. Microstructure and fracture characteristics of heat-affected zone in shipbuilding steel plates with Mg deoxidation after high heat input welding[J]. Steel Research International, 2021, 92(11): 2100376. doi: 10.1002/srin.202100376
    [26] ZOU X D, SUN J C, MATSUURA H, et al. Documenting ferrite nucleation behavior differences in the heat-affected zones of EH36 shipbuilding steels with Mg and Zr additions[J]. Metallurgical and Materials Transactions A, 2019, 50A(10): 4506-4512.
    [27] ZHANG Y Q, ZHANG Y H, YANG J, et al. Effect of Ti/N ratio on TiN particles, prior austenite grains and toughness of HAZ of steel plates with Mg deoxidization after high heat input welding[J]. Journal of Iron and Steel Research International, 2025, 32(9): 2964-2973.
    [28] DU J, STRANGWOOD M, DAVIS C. Effect of TiN particles and grain size on the charpy impact transition temperature in steels[J]. Journal of Materials Science & Technology, 2012, 28(10): 878-888. doi: 10.1016/S1005-0302(12)60146-7
    [29] LI X, MA X, SUBRAMANIAN S, et al. Influence of prior austenite grain size on martensite-austenite constituent and toughness in the heat affected zone of 700 MPa high strength linepipe steel[J]. Materials Science and Engineering A, 2014, 616: 141-147. doi: 10.1016/j.msea.2014.07.100
    [30] ZHANG X F, HAN P, TERASAKI H, et al. Analytical investigation of prior austenite grain size dependence of low temperature toughness in steel weld metal[J]. Journal of Materials Science & Technology, 2012, 28(3): 241-248. doi: 10.1016/S1005-0302(12)60048-6
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  • 收稿日期:  2025-12-14
  • 录用日期:  2026-01-14
  • 修回日期:  2025-12-31
  • 刊出日期:  2026-06-29

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