The effect of beam oscillations on the microstructure and mechanical properties of electron beam welded steel joints

被引:0
作者
Krishna Komerla
Stefan Gach
Thomas Vossel
Alexander Schwedt
Andreas Bührig-Polaczek
Uwe Reisgen
Wolfgang Bleck
机构
[1] RWTH Aachen University,Steel Institute IEHK
[2] RWTH Aachen University,Welding and Joining Institute ISF
[3] RWTH Aachen University,The Foundry Institute GI
[4] RWTH Aachen University,Central Facility for Electron Microscopy GFE
[5] RWTH Aachen University,Steel Institute IEHK
来源
The International Journal of Advanced Manufacturing Technology | 2019年 / 102卷
关键词
Electron beam welding; Electron backscatter diffraction (EBSD); Microhardness; Phase transformation; Weld microstructure; Tensile properties;
D O I
暂无
中图分类号
学科分类号
摘要
The influence of beam oscillations on the microstructure and mechanical properties of low-carbon steels, subjected to electron beam welding, was investigated. Beam oscillations created a dynamic distribution of power around the stationary position of the beam resulting in the enhanced flow of heat inside the keyhole and yielded wider fusion and heat-affected zones. A reduction in the undercutting at the weld root was also achieved through beam oscillation. The weld microstructure consisted of large columnar grains in the fusion zone and equiaxed grains of varying sizes in the heat-affected zone. The variation in grain size across the weld joint was attributed to the steep temperature gradients produced during electron beam welding. High hardness was seen in the fusion and heat-affected zones due to the occurrence of martensite. Weld samples fabricated using beam oscillations showed lower microhardness compared with joints produced by stationary beam welding. This decrease in hardness arose from enhanced grain growth and additional diffusion of carbon out of the austenite lattice due to beam oscillations. Beam oscillations did not introduce any significant morphological changes to the weld microstructure, but resulted in enhanced tensile strength and lower microhardness in the weld joints.
引用
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页码:2919 / 2931
页数:12
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共 144 条
  • [1] Wang P(2016)Laser welding dissimilar materials of aluminum to steel: an overview Int J Adv Manuf Technol 87 3081-3090
  • [2] Chen X(2017)Laser processing of bulk metallic glass: A review J Mater Process Technol 247 73-91
  • [3] Pan Q(2017)Effect of welding processes and conditions on the microstructure, mechanical properties and corrosion resistance of duplex stainless steel weldments - A review J Manuf Process 25 134-152
  • [4] Madigan B(1992)Current issues and problems in welding science Science 257 497-502
  • [5] Long J(2017)Weldability, machinability and surfacing of commercial duplex stainless steel AISI2205 for marine applications - a recent review J Adv Res 8 183-199
  • [6] Williams E(2016)Numerical modeling of the electron beam welding and its experimental validation Finite Elem Anal Des 121 118-133
  • [7] Lavery N(2015)Electron beam characterisation methods and devices for welding equipment J Mater Process Technol 221 225-232
  • [8] Verma J(2016)Electron beam welding–techniques and trends–review Vacuum 130 72-92
  • [9] Taiwade RV(2017)Through-thickness microstructure and mechanical properties of electron beam welded 20mm thick aisi 316l austenitic stainless steel Mater Des 130 488-500
  • [10] David SA(2013)Research on modeling of heat source for electron beam welding fusion-solidific ation zone Chin J Aeron 26 217-223