Research on the Characteristics of Double-Sided Hybrid Laser-GMAW Synchronous Horizontal Welding of High-strength Thick Steel Plates

  • CHEN Yanbin ,
  • FENG Jiecai ,
  • LI Liqun
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  • State Key Laboratory of Advanced Welding and Joining, Harbin Institute of Technology, Harbin 150001

Received date: 2015-04-27

  Revised date: 2015-10-10

  Online published: 2016-01-15

Abstract

A double-sided hybrid laser-gas metal arc welding(GMAW) synchronous welding technology is systematic studied against the application of 30 mm thick, shipbuilding high-strength steel 10Ni5CrMoV butt joint in horizontal welding. The results show that against the effect of the gravity in horizontal position and the unsymmetrical groove on the behavior of droplet and arc, the problems such as deviation of arc, landing location of droplet and lack of sidewall fusion in the hybrid laser-GMAW horizontal welding process are solved by using the influence of laser on the arc shape. The deviation of the arc can be effectively suppressed by decreasing the distance between the laser and the wire because the arc could be effectively attracted and compressed when the distance is shorter. Therefore, the electromagnetic force and the plasma drag force promote the droplet transferred to the weld pool. The double-sided hybrid laser-GMAW synchronous horizontal welding includes root pass and filling pass welding, and the root pass welding is the key to guarantee the welding quality. The results also indicate that a 30 mm thick, shipbuilding high-strength steel 10Ni5CrMoV is welded by the novel, high-strength and high-efficient double-sided hybrid laser-GMAW synchronous welding with 4 passes. Excellent weld surface and welded joints without crack, incomplete penetration and lack of sidewall fusion defect are achieved. The ultimate tensile strength of the welded joint is higher than that of the base metal. Additionally, the impact toughness absorbed energy value of the welded joint is 57.3 J at –50 ℃.

Cite this article

CHEN Yanbin , FENG Jiecai , LI Liqun . Research on the Characteristics of Double-Sided Hybrid Laser-GMAW Synchronous Horizontal Welding of High-strength Thick Steel Plates[J]. Journal of Mechanical Engineering, 2016 , 52(2) : 47 -55 . DOI: 10.3901/JME.2016.02.047

References

[1] HASHEMI S H. Strength-hardness statistical correlation in API X65 steel[J]. Materials Science and Engineering:A,2011,528(3):1648-1655.
 [2] GOMEZ M,VALLES P,MEDINA S F. Evolution of microstructure and precipitation state during thermomechanical processing of a X80 microalloyed steel[J]. Materials Science and Engineering:A,2011,528 (13-14):4761-4773.
 [3] RUSINEK A,RODRIGUEZ-MARTINEZ J A,KLEPACZKO J R,et al. Analysis of thermo-visco-plastic behaviour of six high strength steels[J]. Materials and Design,2009,30(5):1748-1761.
 [4] SHOW B K,VEERABABU R,BALAMURALIKRISHNAN R,et al. Effect of vanadium and titanium modification on the microstructure and mechanical properties of a microalloyed HSLA steel[J]. Materials Science and Engineering:A,2010,527 (6):1595-1604.
 [5] ST-LAURENT S, LESPERANCE G. Effects of chemistry, density and size distribution of inclusions on the nucleation of acicular ferrite of C/Mn steel shielded-metal-arc-welding weldments[J]. Materials Science and Engineering:A,1992,149(2):203-216.
 [6] YAYLA P,ALUC E,URAL K. Effects of welding processes on the mechanical properties of HY 80 steel weldments[J]. Materials and Design,2007,28(6):1898-1906.
 [7] LAN Liangyun,QIU Chunlin,ZHAO Dewen,et al. Analysis of microstructural variation and mechanical behaviors in submerged arc welded joint of high strength low carbon bainitic steel[J]. Materials Science and Engineering:A,2012,558:592-601.
 [8] KIRAN D V,BASU B,DE A. Influence of process variables on weld bead quality in two wire tandem submerged arc welding of HSLA steel[J]. Journal of Materials Processing Technology,2012,212(10):2041-2050.
 [9] SHEN S,OGUOCHA I N A,YANNACOPOULOS S. Effect of heat input on weld bead geometry of submerged arc welded ASTM A709 grade 50 steel joints[J]. Journal of Materials Processing Technology,2012,212(1):286-294.
[10] SAMPATH V,KEHL II J,VIZZA C,et al. Metallurgical design of high-performance GMAW electrodes for joining HSLA-65 steel[J]. Journal of Materials Engineering and Performance,2008,17(6):808-819.
[11] ZHANG Y M,ZHANG S B. Double-sided arc welding increases weld joint penetration[J]. Welding Journal,1998,77(6):57-62.
[12] ZHANG Huajun,ZHANG Guangjun,WU Lin. Effects of arc distance on angular distortion by asymmetrical double sided arc welding[J]. Science and Technology of Welding and Joining,2007,12(6):564-571.
[13] 阮登林,阮登荣. 铝镁合金焊接新工艺:双弧焊接技术[J]. 管道技术与设备,1998(6):21-22. RUAN Denglin,RUAN Dengrong. New welding technology of aluminium magnesium alloy:Double-sided arc welding technology[J]. Pipeline Technique and Equipment,1998(6):21-22.
[14] 冯曰海,周方明,蒋成禹. 双弧焊接工艺研究现状及发展[J]. 焊接,2002(1):5-9. FENG Yuehai,ZHOU Fangming,JIANG Chengyu. Research status and development of double-sided arc welding process[J]. Welding,2002(1):5-9.
[15] EBOO M,STEEN W,CLARCK J. Arc augmented laser processing of materials[C]//Proceedings of the Conference on Advances in Welding Processes,Harrogate,1978:257-265.
[16] STEEN W. Arc augmented laser processing of materials[J]. Journal of Applied Physics,1980,51:5636-5641.
[17] BAGGER C,OLSEN F O. Review of laser hybrid welding[J]. Journal of Laser Applications,2005,17(1):2-14.
[18] RIBIC B,PALMER T,DEBROY T. Problems and issues in laser-arc hybrid welding[J]. International Materials Reviews,2009,54(4):223-244.
[19] ROEPKE C,LIU S. Hybrid laser arc welding of HY-80 steel[J]. Welding Journal,2009,88(8):159-167.
[20] MOORE P L,HOWSE D S,WALLACH E R. Microstructures and properties of laser/arc hybrid welds and autogenous laser welds in pipeline steels[J]. Science and Technology of Welding and Joining,2004,9(4):314-322.
[21] CAO X,WANJARA P,HUANG J,et al. Hybrid fiber laser-arc welding of thick section high strength low alloy steel[J]. Materials and Design,2011,32(6):3399-3413.
[22] NILSSON K,HEIMBS S,ENGSTROM H,et al. Parameter influence in CO2-laser/MIG hybrid welding[J]. International Institute of Welding,2003,4(3):1-11.
[23] HOWSE D S,SCUDAMORE R J,BOOTH G S,et al. Development of the laser/MAG hybrid welding process for land pipeline construction[C]//Application and Evaluation of High-Grade Pipelines in Hostile Environments,Yokohama,2002:763-783.
[24] SHIN M,NAKATA K. Single pass full penetration welding of high-tensile steel thick-plate using 4 kW fiber laser and MAG arc hybrid welding process[J]. Transactions of Joining and Welding Research Institute,2009,27(2):80-84.
[25] GRUNENWALD S,SEEFELD T,VOLLERTSEN F,et al. Solutions for joining pipe steels using laser-GMA-hybrid welding processes[J]. Physics Procedia,2010,5:77-87.
[26] SHI Gongqi. Laser and hybrid laser MAG welding of thick section C-Mn steel[C]//Proceedings of International Forum on Welding Technologies in Energy Engineering,Shanghai,2005:11-16.
[27] VOLLERTSEN F,GRUNENWALD M S,RETHMEIER M,et al. Welding thick steel plates with fibre lasers and GMAW[J]. Welding in the World,2010,54(3-4):62-70.
[28] WESTIN E M,STELLING K,GUMENYUK A. Single-pass laser-GMA hybrid welding of 13.5 mm thick duplex stainless steel[J]. Welding in the World,2011,55(1-2):39-49.
[29] COUTOULY J F,DEPREZ P,DEMONCHAUX J,et al. The optimisation of laser welding and MIG/MAG-laser hybrid welding of thick steel sheets[J]. Lasers in Engineering,2006,16:399-411.
[30] YAMAMOTO N,LIAO J S,MURAKAMI T,et al. Fundamental study on fiber laser-MIG arc hybrid weldability of pure titanium[J]. Journal of the Japan Institute of Metals,2013,77(2):39-43.
[31] REUTZEL E W,SULLIVAN M J,MIKESIC D A. Joining pipe with the hybrid laser-GMAW process:Weld test results and cost analysis[J]. Welding Journal,2006,85(6):66-71.
[32] ROEPKE C,LIU S,KELLY S,et al. Hybrid laser arc welding process evaluation on DH36 and EH36 steel[J]. Welding Journal,2010,89(7):140-149.
[33] GEBHARDT M O,GUMENYUK A,RETHMEIER M. Solidification cracking in laser GMA hybrid welding of thick-walled parts[J]. Science and Technology of Welding and Joining,2014,19(3):209-213.
[34] ACHAR D R G,PARHAR S,DILTHEY U. Use of synergistic effects in high power laser-GMA hybrid welding for manufacturing of thick walled structural pipes[C]//Materials Science Forum,Zurich,2007:3872-3876.
[35] WIKLUND G,AKSELSEN O,SORGJERD A J,et al. Geometrical aspects of hot cracks in laser-arc hybrid welding[J]. Journal of Laser Applications,2013,26(1):1-6.
[36] GAO Ming,ZENG Xiaoyan,YAN Jun,et al. Microstructure characteristics of laser-MIG hybrid welded mild steel[J]. Applied Surface Science,2008,254(18):5715-5721.
[37] LIU Shuangyu,ZHANG Hong,HU Jiandong,et al. Microstructure of laser-MAG hybrid welds of sintered P/M steel[J]. Journal of Materials Engineering and Performance,2013,22(1):251-257.
[38] ZHEN Shu,DUAN Zhenzhen,SUN Daqian,et al. Study on microstructures and mechanical properties of laser-arc hybrid welded S355J2W+N steel[J]. Optics and Laser Technology,2014,59:11-18.
[39] KAH P. Overview of the exploration status of laser-arc hybrid welding processes[J]. Reviews on Advanced Materials Science,2012,30(2):112-132.
[40] HAYASHI T,KATAYAMA S,ABE N,et al. High-power CO2 laser-MIG hybrid welding for increased gap tolerance. hybrid weldability of thick steel plates with a square groove[J]. Welding International,2004,18(9):692-701.
[41] WEBSTER S,KRISTENSEN J K,PETRING D. Joining of thick section steels using hybrid laser welding[J]. Ironmaking and Steelmaking,2008,35(7):496-504.
[42] HOWSE D S,SCUDAMORE R J,BOOTH G S. The evolution of Yb fibre laser/MAG hybrid processing for welding of pipelines[C]//Proceedings of the 15th International Offshore and Polar Engineering Conference,Seoul,2005:90-94.
[43] HYATT C V,MAGEE K H,PORTER J F,et al. Laser-aassisted gas metal arc welding of 25-mm-thick HY-80 plate[J]. Welding Journal,2001,80(7):163-172.
[44] RETHMEIER M,GOOK S,LAMMERS M,et al. Laser-hybrid welding of thick plates up to 32mm using a 20kW fibre laser[J]. Quarterly Journal of the Japan Welding Society,2010,27(2):74-79.
[45] DEFALCO J. Practical applications for hybrid laser welding[J]. Welding Journal,2007,86(10):47-51.
[46] ROLAND F,MANZON L,KUJALA P,et al. Advanced joining techniques in European shipbuilding[J]. Journal of Ship Production,2004,20(3):200-210.
[47] KRISTENSEN J K. State of art in shipbuilding applications of hybrid laser-arc welding[C]//The 12th Conference on Laser Materials Processing in the Nordic Countries,Copenhagen,2009:1-13.
[48] 高超. 12Ni3CrMoV钢旋转电弧窄间隙MAG横向焊接工艺研究[D]. 哈尔滨:哈尔滨工业大学,2009. GAO Chao. Research on the narrow gap rotating MAG arc horizontal welding process of 12Ni3CrMoV steel[D]. Harbin:Harbin Institute of Technology,2009.
[49] 徐望辉,林三宝,范成磊,等. 船用高强钢双丝窄间隙GMAW组织与性能研究[J]. 焊接,2012(2):50-55.  XU Wanghui,LIN Sanbao,FAN Chenglei,et al. Research on the microstructure and mechanical properties of the narrow gap double-sided GMAW of shipbuilding steel[J]. Welding,2012(2):50-55.
[50] 梅崯玺,郭登成,丁敏,等. 大厚度10Ni5CrMoV钢小坡口旋转电弧GMAW焊接工艺研究[J]. 热加工工艺,2010(9):156-158. MEI Jinxi,GUO Dengcheng,DING Min,et al. Research on the small groove rotating GMAW process of thick-section 10Ni5CrMoV steel[J]. Hot Working Technology,2010(9):156-158.
[51] 刘凤德,张宏,王宇琪,等. 面能量对激光-电弧复合焊接焊缝及熔滴过渡的影响[J]. 机械工程学报,2012,48(14):84-90. LIU Fengde,ZHANG Hong,WANG Yuqi,et al. Influence of area energy for welding seam and droplet transfer on hybrid laser-arc welding[J]. Journal of Mechanical Engineering,2012,48(14):84-90.
[52] 刘凤德,张宏 杜劭峰,等. 激光功率对CO2激光-MAG电弧复合焊电弧与熔滴行为的影响[J]. 机械工程学报,2013,49(4):75-82. LIU Fengde,ZHANG Hong,DU Shaofeng,et al. Influence of laser power on arc and droplet behaviors in droplets on CO2 laser-MAG arc hybrid welding. Journal of Mechanical Engineering,2013,49(4):75-82.
[53] GAO Ming,MEI Shuwen,WANG Zemin,et al. Process and joint characterizations of laser–MIG hybrid welding of AZ31 magnesium alloy[J]. Journal of Materials Processing Technology,2012,212(6):1338-1346.
[54] CHEN Yanbin,FENG Jiecai,LI Liqun,et al. Microstructure and mechanical properties of a thick-section high-strength steel welded joint by novel double-sided hybrid fibre laser-arc welding[J]. Materials Science and Engineering:A,2013,582:284-293.
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