Transport phenomena and keyhole evolution process in laser welding of stainless steel

Jiang-wei Liu , Ping-wang Zeng , Zheng-hua Rao , Tian-li Zhang

Journal of Central South University ›› 2019, Vol. 26 ›› Issue (8) : 2088 -2099.

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Journal of Central South University ›› 2019, Vol. 26 ›› Issue (8) : 2088 -2099. DOI: 10.1007/s11771-019-4156-x
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Transport phenomena and keyhole evolution process in laser welding of stainless steel

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Abstract

Knowledge of transport phenomena and keyhole evolution is important for controlling laser welding process. However, it is still not well understood by far due to the complex phenomena occurring in a wide temperature range. A transient 3D model including heat transfer, fluid flow and tracking of free surface is built in this study. The transport phenomena are investigated by calculating the temperature and velocity fields. The 3D dynamic keyhole evolution process is revealed through tracking free surface using volume-of-fluid method. The results show that the keyhole deepening speed decreases with laser welding process before the quasi-steady state is reached. The plasma can greatly affect the keyhole depth through absorbing a great amount of laser energy and thus lowering the recoil pressure. Moreover, the relationship between keyhole depth and weld penetration is also discussed. This paper can help to better understand the dynamics in molten pool and then improve laser welding process.

Keywords

laser welding / keyhole evolution / weld pool dynamics / free surface tracking / weld penetration

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Jiang-wei Liu, Ping-wang Zeng, Zheng-hua Rao, Tian-li Zhang. Transport phenomena and keyhole evolution process in laser welding of stainless steel. Journal of Central South University, 2019, 26(8): 2088-2099 DOI:10.1007/s11771-019-4156-x

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References

[1]

ApostolosF, AlexiosP, GeorgiosP, PanagiotisS, GeorgeC. Energy efficiency of manufacturing processes. A critical review [J]. Procedia CIRP, 2013, 7: 628-633

[2]

LiY, TangW, ChenY, LiuJ, CHIA-FonF LPotential of acetone-butanol-ethanol (ABE) as a biofuel [J]. Fuel, 2019, 242: 673-686

[3]

MaW, XueX, LiuG. Techno-economic evaluation for hybrid renewable energy system. Application and merits [J]. Energy, 2018, 159: 385-409

[4]

DuleyW W. Laser processing and analysis of materials [M]. Springer Science & Business Media, 2012

[5]

AkmanE, DemirA, CanelT, SinmazcelikT. Laser welding of Ti6A14V titanium alloys [J]. Journal of materials processing technology, 2009, 209(8): 3705-3713

[6]

LiC, MuneharuaK, TakaoS, KoujiH. Fiber laser-GMA hybrid welding of commercially pure titanium [J]. Materials & Design, 2009, 30(30): 109-114

[7]

SandersP G, KeskeJ S, LeongK H, KorneckiG. High power Nd: YAG and CO2 laser welding of magnesium [J]. Journal of Laser Applications, 1999, 11(11): 96-103

[8]

ErikssonI, PowellJ, KaplanA F H. Melt behavior on the keyhole front during high speed laser welding [J]. Optics and Lasers in Engineering, 2013, 51(51): 735-740

[9]

ZhangM, ChenS, ZhangY, ChenG, BiZMechanisms for improvement of weld appearance in autogenous fiber laser welding of thick stainless steels [J]. Metals, 2018, 8(8): 625

[10]

ZhangM, ZhangY, MaoC, HuY, ChenG, BiZ. Experiments on formation mechanism of root humping in high-power laser autogenous welding of thick plates with stainless steels [J]. Optics & Laser Technology, 2019, 111: 11-19

[11]

TixC, SimonG. Model of a laser heated plasma interacting with walls arising in laser keyhole welding [J]. Physical Review E, 1994, 50(1): 453

[12]

DowdenJ, KapadiaP, PostaciogluN. An analysis of the laser-plasma interaction in laser keyhole welding [J]. Journal of Physics D: Applied Physics, 1989, 2222741

[13]

KimK R, FarsonD F. CO2 laser-plume interaction in materials processing [J]. Journal of Applied Physics, 2001, 8989681-688

[14]

KaplanA. A model of deep penetration laser welding based on calculation of the keyhole profile [J]. Journal of Physics D: Applied Physics, 1994, 27(9): 1805

[15]

SolanaP, NegroG. A study of the effect of multiple reflections on the shape of the keyhole in the laser processing of materials [J]. Journal of Physics D: Applied Physics, 1997, 30303216

[16]

FabbroR, ChoufK. Keyhole modeling during laser welding [J]. Journal of applied Physics, 2000, 8794075-4083

[17]

JinX, LiL, ZhangY. A heat transfer model for deep penetration laser welding based on an actual keyhole [J]. International Journal of Heat and Mass Transfer, 2003, 46(46): 15-22

[18]

RaiR, RoyG G, DebroyT. A computationally efficient model of convective heat transfer and solidification characteristics during keyhole mode laser welding [J]. Journal of Applied Physics, 2007, 101(101): 054909

[19]

RaiR, KellyS M, MartukanitzR P, DebroyT. A convective heat-transfer model for partial and full penetration keyhole mode laser welding of a structural steel [J]. Metallurgical and Materials Transactions A, 2008, 393998-112

[20]

LankalapalliK N, TuJ F, GartnerM. A model for estimating penetration depth of laser welding processes [J]. Journal of Physics D: Applied Physics, 1996, 29(29): 1831

[21]

KarA, MazumderJ. Two-dimensional model for material damage due to melting and vaporization during laser irradiation [J]. Journal of Applied Physics, 1990, 68683884-3891

[22]

KroosJ, GratzkeU, SimonG. Towards a self-consistent model of the keyhole in penetration laser beam welding [J]. Journal of physics D: Applied physics, 1993, 26(26): 474

[23]

KiH, MazumderJ, MohantyP S. Modeling of laser keyhole welding: Part I. Mathematical modeling, numerical methodology, role of recoil pressure, multiple reflections, and free surface evolution [J]. Metallurgical and Materials Transactions A, 2002, 33331817-1830

[24]

DasguptaA K, MazumderJ, LiP. Physics of zinc vaporization and plasma absorption during CO2 laser welding [J]. Journal of Applied Physics, 2007, 102(102): 053108

[25]

JinX. A three-dimensional model of multiple reflections for high-speed deep penetration laser welding based on an actual keyhole [J]. Optics and Lasers in Engineering, 2008, 464683-93

[26]

ShanmugamN S, BuvanashekaranG, SankaranarayanasamyK, ManonmaniK. Some studies on temperature profiles in AISI 304 stainless steel sheet during laser beam welding using FE simulation [J]. The International Journal of Advanced Manufacturing Technology, 2009, 43(12): 78-94

[27]

LiuJ, RaoZ, LiaoS, WangP C. Modeling of transport phenomena and solidification cracking in laser spot bead-on-plate welding of AA6063-T6 alloy. Part I—the mathematical model [J]. The International Journal of Advanced Manufacturing Technology, 2014, 73(9-12): 1705-1716

[28]

LiuJ, RaoZ, LiaoS, WangP C. Modeling of transport phenomena and solidification cracking in laser spot bead-on-plate welding of AA6063-T6 alloy. Part II—simulation results and experimental validation [J]. The International Journal of Advanced Manufacturing Technology, 2014, 74(1-4): 285-296

[29]

WangR, LeiY, ShiYNumerical simulation of transient temperature field during laser keyhole welding of 304 stainless steel sheet [J]. Optics & Laser Technology, 2011, 43(43): 870-873

[30]

PangS, ChenX, ZhouJ, ShaoX, WangC. 3D transient multiphase model for keyhole, vapor plume, and weld pool dynamics in laser welding including the ambient pressure effect [J]. Optics and Lasers in Engineering, 2015, 7447-58

[31]

PangS, ChenX, ShaoX, GongS, XiaoJ. Dynamics of vapor plume in transient keyhole during laser welding of stainless steel: local evaporation, plume swing and gas entrapment into porosity [J]. Optics and Lasers in Engineering, 2016, 82: 28-40

[32]

LiX, LuF, CuiH, TangX, WuY. Numerical modeling on the formation process of keyhole-induced porosity for laser welding steel with T-joint [J]. The International Journal of Advanced Manufacturing Technology, 2014241254

[33]

ChiangK C, TsaiH L. Shrinkage-induced fluid flow and domain change in two-dimensional alloy solidification [J]. International Journal of Heat and Mass Transfer, 1992, 35(35): 1763-1770

[34]

WangY, TsaiH L. Impingement of filler droplets and weld pool dynamics during gas metal arc welding process [J]. International Journal of Heat and Mass Transfer, 2001, 44(44): 2067-2080

[35]

MetzbowerE AAbsorption in the Keyhole [C]// Proc ICALEO, 19971625

[36]

Journal of physics D: Applied Physics, 2007, 40(40

[37]

SolanaP, Negro GA. study of the effect of multiple reflections on the shape of the keyhole in the laser processing of materials [J]. Journal of Physics D: Applied Physics, 1997, 3030): 3216

[38]

ConnorL P, O'BrienR L. Welding handbook: welding processes [M]. Amer Welding Society, 1991

[39]

MatsunawaA, KimJ D, SetoN, MizutaniM, KatayamaS. Dynamics of keyhole and molten pool in laser welding [J]. Journal of Laser Applications, 1998, 1010247-254

[40]

JinX, LiL. An experimental study on the keyhole shapes in laser deep penetration welding [J]. Optics and Lasers in Engineering, 2004, 41(41): 779-790

[41]

PangS, ChenL, ZhouJ, YinY, ChenT. A three-dimensional sharp interface model for self-consistent keyhole and weld pool dynamics in deep penetration laser welding [J]. Journal of Physics D: Applied Physics, 2010, 4444025301

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