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水下焊条半干式仰焊新工艺 被引量:2

Novel semi-dry type underwater overhead electrode welding technology
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摘要 为了克服水下湿法焊条仰焊位置难以施焊的困难,文中提出了一种水下焊条半干式仰焊新工艺,并阐明了该工艺的基本原理和操作方法,且对其焊接工艺性能、焊缝组织、硬度以及扩散氢含量进行了分析.结果表明,所提出的半干式仰焊工艺可以实现水下焊条仰焊位置焊接,焊缝成形良好,对于直径3.2 mm的水下焊条最佳焊接电流范围为100~140 A,焊接电压为28~32 V;该方法焊缝微观组织主要为侧板条铁素体、针状铁素体和贝氏体,与传统水下湿法焊条焊相比,铁素体的含量增加而贝氏体含量减少;焊接接头最高硬度值和熔敷金属扩散氢含量也明显低于水下湿法焊条焊. In order to overcome the difficulty of wet-type underwater electrode welding,a novel p semi-dry type underwater overhead welding was proposed. The principle of the process and the operation procedure was clarified it's the welding ability,weld microstructure,hardness and diffusion hydrogen content were studied. The results indicate that this semi-dry overhead welding procedure can be successfully applied in underwater overhead welding position and the appearance of weld is good.The optimum welding current range is 100-140 A for electrode of3. 2 mm diameter,the corresponding welding voltage range is28-32 V. The weld microstructure is mainly composed of ferrite side-plate,needle-like ferrite and bainite. Compared with the traditional underwater wet-type welding,the content of ferrite increased,and the content of bainite decreases accordingly. The highest hardness of welded joints and diffusion hydrogen content in deposited metal are remarkably lower than those of the wettype underwater electrode welding.
出处 《焊接学报》 EI CAS CSCD 北大核心 2016年第1期107-110,134,共4页 Transactions of The China Welding Institution
关键词 水下仰焊 焊接成形 金相组织 扩散氢 硬度 underwater overhead welding weld formation microstructure diffusion hydrogen hardness
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参考文献7

  • 1薛龙,王中辉,周灿丰,焦向东.高压空气环境下TIG焊接机器人关键技术[J].焊接学报,2006,27(12):17-20. 被引量:12
  • 2林尚扬,宋宝天,宋天虎.水下局部排水CO2半自动焊接技术的研究和应用[J].焊接学报,1981,2(1):9-20.
  • 3Labanowski J.Development of under-water welding techniques[J].Welding International,2011,25(12):933-937.
  • 4胡家琨,武传松,贾传宝.水下湿法焊条电弧焊接过程稳定性评价[J].焊接学报,2013,34(5):99-102. 被引量:10
  • 5石永华,郑泽培,黄晋.水下湿法药芯焊丝焊接电弧稳定性[J].焊接学报,2012,33(10):49-53. 被引量:21
  • 6张福根,叶德成.躺条电弧焊接法在角接焊缝中的应用(一)[J].焊接技术,1987(6):19-21.
  • 7Da Silva W C D,Hibeiro L F,Bracarense AQ,et al.Effect of the hydrostatic pressure in the diffusible hydrogen at the underwater wet welding[C]// ASME 201231st International Conference on O- cean,Offshore and Arctic Engineering.American Society of Me- chanical Engineers,Rio de Janeiro Brazil,2012:1-8.

二级参考文献22

  • 1方臣富,陈树君,刘嘉,殷树言,宋永伦,李桓,侯润石,温永平.SACTIG与VPTIG电弧稳定性的比较分析(一)[J].焊接学报,2005,26(12):1-5. 被引量:3
  • 2胡家琨,高进强,武传松.T形接头机器人CO2焊接过程实时监控[J].焊接学报,2006,27(6):79-82. 被引量:2
  • 3宋宝天.我国水下焊接与切割技术发展与展望[A].第八届全国焊接会议论文集[C],深圳,1992,220-223.
  • 4Scott Lyons R,Middleton T B.Underwater orbital TIG welding[J].Metal Construction,1985,5(8):504-507.
  • 5John H Nixon,Ian M Richardson.The design and construction of a 250bar hyperbaric welding research facility[J].Materials Engineering,1995,3(2):553-562.
  • 6David Gibson,Kevin Barratt,Jan Paterson.Robotic equipment for pipeline repair[J].Materials Engineering ASME,1995,3(2):509-515.
  • 7Dos Santos J F,Szelagowski P,Manzenrieder H.Diverless pipeline welding beyond 600 msW[J].Materials Engineering ASME,1992,3(2):153-163.
  • 8Rowe M, Liu S. Recent developments in underwater wet welding [J]. Science and Technology of Welding and Joining, 2001, 6 (6) : 387 -396.
  • 9Hart P, Richardson I M, Nixon J H. The effects of pressure on e- lectrical Performance and weld bead geometry in high pressure GMA welding[ J]. Welding in the World, 2001,45(11/12) : 25 -33.
  • 10Mazzaferro J A E, Machado I G. Study of arc stability in underwa- ter shielded metal arc welding at shallow depths [ J ]. Proceedings of the Institution of Mechanical Engineers, Part C : Journal of Me- chanical Engineering Science, 2009, 223 (3) : 699 - 709.

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