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    雙電弧集成冷絲復合焊中冷絲位置對焊接過程的影響

    向婷 張明瑞 李桓 高瑩 吳世品 婁麗艷

    向婷, 張明瑞, 李桓, 高瑩, 吳世品, 婁麗艷. 雙電弧集成冷絲復合焊中冷絲位置對焊接過程的影響[J]. 工程科學學報, 2021, 43(11): 1474-1481. doi: 10.13374/j.issn2095-9389.2020.12.10.001
    引用本文: 向婷, 張明瑞, 李桓, 高瑩, 吳世品, 婁麗艷. 雙電弧集成冷絲復合焊中冷絲位置對焊接過程的影響[J]. 工程科學學報, 2021, 43(11): 1474-1481. doi: 10.13374/j.issn2095-9389.2020.12.10.001
    XIANG Ting, ZHANG Ming-rui, LI Huan, GAO Ying, WU Shi-pin, LOU Li-yan. Effect of cold wire position on the welding process in twin-arc integrated cold wire hybrid welding[J]. Chinese Journal of Engineering, 2021, 43(11): 1474-1481. doi: 10.13374/j.issn2095-9389.2020.12.10.001
    Citation: XIANG Ting, ZHANG Ming-rui, LI Huan, GAO Ying, WU Shi-pin, LOU Li-yan. Effect of cold wire position on the welding process in twin-arc integrated cold wire hybrid welding[J]. Chinese Journal of Engineering, 2021, 43(11): 1474-1481. doi: 10.13374/j.issn2095-9389.2020.12.10.001

    雙電弧集成冷絲復合焊中冷絲位置對焊接過程的影響

    doi: 10.13374/j.issn2095-9389.2020.12.10.001
    基金項目: 國家自然科學基金資助項目(52105394);天津職業技術師范大學科研發展基金資助項目(KYQD202101,KJ1704);天津市教委科研計劃資助項目(2020KJ104)
    詳細信息
      通訊作者:

      E-mail: lihuan@tju.edu.cn

    • 中圖分類號: TG442

    Effect of cold wire position on the welding process in twin-arc integrated cold wire hybrid welding

    More Information
    • 摘要: 搭建了雙電弧集成冷絲復合焊接系統,研究了冷絲不同位置對焊接過程的影響機理,其中包括冷絲作用位置對其加熱熔化作用及表面成形的影響。實驗結果表明:冷絲從兩引導焊絲正前方送入時,熔池前端對冷絲的加熱熔化作用不充分,冷絲末端會頂觸熔池底部,隨著冷絲的持續送進和母材的向后移動,某一時刻冷絲回彈,焊絲末端的熔滴彈出落在母材表面形成大顆粒飛濺。當冷絲從側面送入時,熔池一側的溫度較低,影響熔池金屬的流動,導致最終的焊縫成形不對稱分布。當冷絲從兩引導焊絲正后方送入熔池時,冷絲始終插入熔池中,焊接過程穩定,是理想的冷絲作用位置。此外,隨著冷絲送絲速度的增加,兩種脈沖電流模式(同相和反相)下,熔敷率均隨之增加,且相差不大。同相脈沖電流下電弧對冷絲的加熱熔化作用最強烈,反相脈沖電流下次之,直流模式下最弱。

       

    • 圖  1  雙電弧集成冷絲復合焊焊接系統示意圖

      Figure  1.  Schematic of twin-arc integrated cold wire hybrid welding system

      圖  2  冷絲不同作用位置的示意圖。(a)位于兩引導焊絲正后方;(b)位于兩引導焊絲正前方;(c)位于兩引導焊絲側面

      Figure  2.  Schematic of cold wire different locations: (a) right behind the two leading wires; (b) in front of the two leading wires; (c) in side of the two leading wires

      圖  3  冷絲在后方時的高速攝像圖片

      Figure  3.  High-speed photographs of the cold wire in the rear

      圖  4  冷絲在正前方時的高速攝像圖片

      Figure  4.  High-speed photographs of the cold wire in the front

      圖  5  冷絲在側面時的高速攝像圖片

      Figure  5.  High-speed photographs of the cold wire in the side

      圖  6  冷絲不同作用位置時的焊縫宏觀形貌。(a)冷絲在后;(b)冷絲在側面;(c)冷絲在前

      Figure  6.  Welding appearances at different cold wire positions: (a) cold wire in the rear; (b) cold wire in the side; (c) cold wire in the front

      圖  7  冷絲送絲速度與熔敷速度的關系

      Figure  7.  Relationship between the cold wire feed speed and deposition rate

      圖  8  三種電流模式下冷絲在熔池中的狀態與送絲速度間的對應關系。(a)同相脈沖電流;(b)反相脈沖電流;(c)直流

      Figure  8.  Corresponding relationships between the states of cold wire in the weld pool and feed wire speeds under three current modes: (a) in-phase pulse current; (b) reverse-phase pulse current; (c) direct current

      表  1  兩引導焊絲上的基本脈沖電參數

      Table  1.   Basic pulse parameters of the two leading wires

      Preset current/APreset voltage/VPulse peak current/APulse peak voltage/VPulse base current/APulse base voltage/VPulse peak time/msPulse basic time/msFrequency/Hz
      1402460040100203.2889
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    • 收稿日期:  2020-12-10
    • 網絡出版日期:  2021-02-01
    • 刊出日期:  2021-11-25

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