高级检索

熔化极脉冲氩弧焊熔滴滴落过程的分析

吕小青, 沈俊, 李桓, 刘永强

吕小青, 沈俊, 李桓, 刘永强. 熔化极脉冲氩弧焊熔滴滴落过程的分析[J]. 焊接学报, 2015, 36(12): 39-42.
引用本文: 吕小青, 沈俊, 李桓, 刘永强. 熔化极脉冲氩弧焊熔滴滴落过程的分析[J]. 焊接学报, 2015, 36(12): 39-42.
LV Xiaoqing, SHEN Jun, LI Huan, LIU Yongqiang. Droplet transfer analysis in pulsed gas metal arc welding[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2015, 36(12): 39-42.
Citation: LV Xiaoqing, SHEN Jun, LI Huan, LIU Yongqiang. Droplet transfer analysis in pulsed gas metal arc welding[J]. TRANSACTIONS OF THE CHINA WELDING INSTITUTION, 2015, 36(12): 39-42.

熔化极脉冲氩弧焊熔滴滴落过程的分析

基金项目: 国家自然科学基金青年科学基金资助项目(51205283)

Droplet transfer analysis in pulsed gas metal arc welding

  • 摘要: 采用数字图像处理技术,对熔化极脉冲氩弧焊熔滴滴落过程的高速摄像图片进行了处理,提取了熔滴的边缘轮廓并获得了熔滴质心的变化坐标,得到了熔滴滴落过程中速度变化曲线. 结果表明,熔滴在弧柱区的滴落过程为匀加速,而在近阴极区和近阳极区却是减速的,且近阴极区减速幅度较大;并对熔滴在弧柱区的受力过程进行了定量分析,其主要受到等离子体流拉力和重力的作用,以及对近阴极区进行了相关的定性分析,其速度的减小主要是因为金属熔池蒸气反力的阻碍作用和等离子体流拉力的减小,理论分析与试验结果较为吻合.
    Abstract: The high-speed video images of droplet transfer in pulsed gas metal arc welding(GMAW-P) were processed by digital image processing technology, then the droplet velocity transfer curve was obtained, and image edge contour was extracted with the corresponding coordinate of droplet centroid. The result shows that the droplet is uniformly accelerated during the arc column region, but is decelerated in near the anode and cathode region. Furthermore, the deceleration degree in near cathode region is more intense. The forces act on the droplet in the arc column region is quantitatively analyzed, it is mainly subjected to gravity and plasma drag force. Meanwhile, the force situation in near the anode and cathode region was qualitatively analyzed, the results indicated that the theoretical analysis is consistent with the practical.
  • [1] Lancaster J F. The physics of welding[J]. Physics in Technology, 1984, 15(2): 73-79.
    [2] Jones L A, Eagar T W, Lang J H. Magnetic forces acting on molten drops in gas metal arc welding[J]. Journal of Physics D(Applied Physics), 1998, 31(1): 93-106.
    [3] Jones L A, Eagar T W, Lang J H. A dynamic model of drops detaching from a gas metal arc welding electrode[J]. Journal of Physics D(Applied Physics), 1998, 31(1): 107-123.
    [4] 鲍爱莲, 耿 正, 刘万辉. GMAW熔滴过渡过程稳定性相关分析[J]. 焊接学报, 2008, 29(1): 77-80. Bao Ailian, Geng Zheng, Liu Wanhui. Analysis of stability in droplet transfer process of GMAW based on self-correlation[J]. Transactions of the China Welding Institution, 2008, 29(1):77-80.
    [5] 华爱兵, 殷树言, 陈树君, 等. 细丝大电流MAG焊的熔滴过渡机制[J]. 焊接学报, 2009, 30(8): 93-96. Hua Aibing, Yin Shuyan, Chen Shujun, et al. Mechanics of drop transfer for high-current density MAG welding process[J]. Transactions of the China Welding Institution, 2009, 30(8): 93-96.
    [6] Park H, Rhee S. Analysis of weld geometry considering the transferring droplets in gas metal arc welding[J]. JSME International Journal, 2001, 44(3): 856-862.
    [7] Xu G, Hu J, Tsai H L. Three-dimensional modeling of arc plasma and metaltrandfer in gas metal arc welding[J]. International Journal of Heat and Mass Transfer, 2009, 52(7): 1709-1733.
    [8] Ghosh P K, Dorn L,Hubner M, et al. Arc characteristics and behavior of metal transfer in pulsed current GMA welding of aluminium alloy[J]. Journal of Materials Processing Technology, 2007, 194(3): 163-175.
    [9] 杨运强, 李 桓, 李俊岳, 等. 熔化极电弧焊多信息同步高速摄影[J].焊接学报, 2002, 23(6): 29-32. Yang Yunqiang, Li Huan, Li Junyue, et al. High-speed photography with multi-information synchronizer for GMAW[J]. Transactions of the China Welding Institution, 2002, 23(6): 29-32.
    [10] Scheffel B, Goedicke K. In situ-force measurement for the determination of the evaporation rate with high-rate electron beam evaporation[J]. Surface and Coating Technology, 1998, 98(1): 944-947.
计量
  • 文章访问数:  461
  • HTML全文浏览量:  2
  • PDF下载量:  260
  • 被引次数: 0
出版历程
  • 收稿日期:  2014-04-13

目录

    /

    返回文章
    返回