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    1800 MPa熱成形鋼與CR340LA低合金高強鋼激光焊接性能

    梁文 馮彬 朱國明 康永林 林利 劉仁東

    梁文, 馮彬, 朱國明, 康永林, 林利, 劉仁東. 1800 MPa熱成形鋼與CR340LA低合金高強鋼激光焊接性能[J]. 工程科學學報, 2020, 42(6): 755-762. doi: 10.13374/j.issn2095-9389.2019.06.24.005
    引用本文: 梁文, 馮彬, 朱國明, 康永林, 林利, 劉仁東. 1800 MPa熱成形鋼與CR340LA低合金高強鋼激光焊接性能[J]. 工程科學學報, 2020, 42(6): 755-762. doi: 10.13374/j.issn2095-9389.2019.06.24.005
    LIANG Wen, FENG Bin, ZHU Guo-ming, KANG Yong-lin, LIN Li, LIU Reng-dong. Laser welding properties of 1800 MPa press hardening steel and low-alloy high-strength steel CR340LA[J]. Chinese Journal of Engineering, 2020, 42(6): 755-762. doi: 10.13374/j.issn2095-9389.2019.06.24.005
    Citation: LIANG Wen, FENG Bin, ZHU Guo-ming, KANG Yong-lin, LIN Li, LIU Reng-dong. Laser welding properties of 1800 MPa press hardening steel and low-alloy high-strength steel CR340LA[J]. Chinese Journal of Engineering, 2020, 42(6): 755-762. doi: 10.13374/j.issn2095-9389.2019.06.24.005

    1800 MPa熱成形鋼與CR340LA低合金高強鋼激光焊接性能

    doi: 10.13374/j.issn2095-9389.2019.06.24.005
    基金項目: 國家自然科學基金資助項目(U1460101);北京科技大學基本科研業務費資助項目(FRF-AT-18-009)
    詳細信息
      通訊作者:

      E-mail: zhuguoming@ustb.edu.cn

    • 中圖分類號: TG456.7

    Laser welding properties of 1800 MPa press hardening steel and low-alloy high-strength steel CR340LA

    More Information
    • 摘要: 采用光纖激光焊接設備對1800 MPa級熱成形鋼與CR340LA低合金高強鋼進行對接激光拼焊,研究了不同激光焊接功率和焊接速度下焊接接頭的組織演變規律及熱沖壓成形性能,并對焊接接頭的力學性能和硬度進行了分析。結果表明,3種焊接工藝下激光拼焊原板綜合力學性能相差較小,由焊接接頭造成的伸長率和抗拉強度的損失均在母材的28.3%和9.1%以內。激光焊接后焊縫區均為粗大、高硬度的馬氏體結構;兩側熱影響區組織主要為鐵素體和馬氏體,接頭未出現明顯的軟化區。激光拼焊原板拉伸試樣均斷裂于CR340LA母材區,距離焊縫12 mm左右,且存在焊縫隆起現象。選取焊接功率和焊接速率分別為4000 W和0.18 m·s?1的焊接試樣在高溫下進行熱沖壓成形檢測,未出現焊縫開裂,熱成形后拼焊板具有良好性能,滿足汽車激光拼焊板使用要求,拉伸結果表明,試樣斷裂位置與未熱沖壓成形前一致,均位于CR340LA母材區,拉伸過程中,焊縫向高強度母材側偏移,在弱強度母材側產生應力集中并縮頸斷裂。

       

    • 圖  1  母材的基本組織形貌。(a)AC1800HS;(b)CR340LA

      Figure  1.  Microstructure of the base material: (a) AC1800HS; (b) CR340LA

      圖  2  激光焊接示意圖

      Figure  2.  Schematic diagram of the laser welding

      圖  3  熱沖壓成形模具(a)及U型拼焊板構件(b)

      Figure  3.  Hot stamping forming die (a) and U-shaped tailor welded blank component (b)

      圖  4  U型件拉伸試樣取樣圖

      Figure  4.  Sample diagram of the tensile specimens for the U-shaped parts

      圖  5  拉伸試樣尺寸(單位:mm)

      Figure  5.  Size of the tensile specimen (unit:mm)

      圖  6  各工藝下焊接接頭宏觀形貌。(a,d)K1接頭;(b,e)K2接頭;(c,f)K3接頭

      Figure  6.  Macromorphology of the welded joints under various processes: (a,d) K1 joint; (b,e) K2 joint; (c,f) K3 joint

      圖  7  組織檢驗結果。(a)K1焊縫區;(b)K2焊縫區;(c)K3焊縫區;(d)K1 AC1800HS側熱影響區;(e)K2 AC1800HS側熱影響區;(f)K3 AC1800HS側熱影響區;(g)K1 CR340LA側熱影響區;(h)K2 CR340LA側熱影響區;(i)K3 CR340LA側熱影響區

      Figure  7.  Microstructure examination results: (a) FZ of K1; (b) FZ of K2; (c) FZ of K3; (d) HAZ of the AC1800HS side of K1; (e) HAZ of the AC1800HS side of K2; (f) HAZ of the AC1800HS side of K3; (g) HAZ of the CR340LA side of K1; (h) HAZ of the CR340LA side of K2; (i) HAZ of the CR340LA side of K3

      圖  8  接頭顯微硬度

      Figure  8.  Microhardness of the welded joints

      圖  9  激光拼焊原板應力應變曲線(a)及拉伸試樣斷裂位置(b)

      Figure  9.  Stress–strain curve (a) and fracture location (b) of the tensile specimens of the laser tailor-welded blanks

      圖  10  熱成形后U型件應力應變曲線(a)及拉伸試樣斷裂位置(b)

      Figure  10.  Stress–strain curve (a) and fracture location (b) of the tensile specimens of the U-shaped components

      圖  11  熱沖壓成形后母材及焊縫微觀組織。(a)CR340LA;(b)焊縫;(c)AC1800HS

      Figure  11.  Microstructure of the base metal and fusion zone after hot stamping: (a) CR340LA; (b) fusion zone; (c) AC1800HS

      表  1  激光焊接母材化學成分(質量分數)

      Table  1.   Chemical composition of the base material %

      Base metalCSiMnBAlNb+Ti+Mo+Cr+V
      AC1800HS0.340.401.360.0030.040.51
      CR340LA0.070.381.080.040.071
      下載: 導出CSV

      表  2  激光焊接工藝

      Table  2.   Laser welding processes

      No.Power/WWelding speed/(m·s?1)Heat input/(J·mm?1)
      K120000.0450.0
      K230000.0837.5
      K340000.1136.4
      下載: 導出CSV

      表  3  AC1800HS與CR340LA焊接接頭力學性能

      Table  3.   Mechanical properties of the welded joint between AC1800HS and CR340LA

      NumberElongation/%Yield strength/MPaTensile strength/MPaProduct of tensile strength and elongation/(GPa·%)Fracture location
      AC1800HS25.52±0.28397±3562±214.3
      CR340LA26.60±0.2421±8548±314.6
      K119.08±0.32350±2513±29.8CR340LA
      K220.22±0.46362±2506±110.2CR340LA
      K321.24±0.28361±6498±710.6CR340LA
      下載: 導出CSV

      表  4  U型件各部位力學性能

      Table  4.   Mechanical properties of the various parts of the U-shaped components

      NumberElongation/%Yield strength/MPaTensile strength/MPaFracture location
      AC1800HS(after hot stamping)5.12±0.131232±281890±29
      CR340LA(after hot stamping)23.45±0.15417±3597±10
      KA19.90±0.18299±6499±8CR340LA
      KB15.74±0.86356±9550±1CR340LA
      KC21.14±0.18335±7481±2CR340LA
      下載: 導出CSV
      中文字幕在线观看
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    • 收稿日期:  2019-06-24
    • 刊出日期:  2020-06-01

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