研究目的
Investigating the effect of dual-beam laser welding with side-by-side configuration on the characteristics of steel/Al lapped joints, including weld shape, interface microstructures, tensile resistance, and fracture behavior.
研究成果
Soundly welded steel/Al lapped joints free of welding defects were achieved using dual-beam laser welding with side-by-side configuration. The processing parameters Rs and d1 significantly influence weld appearance, P2, and welding defects. The maximum tensile resistance of 109.2 N/mm was obtained at Rs of 1.50. Two fracture path modes were identified, with higher resistance achieved for joints with an optimum P2.
研究不足
The study is limited to the side-by-side configuration of dual-beam laser welding. The relationship between fine IMC microstructure and mechanical properties is not fully understood.
1:Experimental Design and Method Selection
Dual-beam laser welding with side-by-side configuration was used to weld Q235 low carbon steel and 6061 Al alloy sheets. The effect of dual-beam power ratio (Rs) and dual-beam distance (d1) on joint characteristics was investigated.
2:Sample Selection and Data Sources
Q235 low carbon steel and 6061 Al alloy sheets of 1.5 mm thickness were used. The specimens were arranged in a lapped configuration with an overlap distance of 20 mm.
3:List of Experimental Equipment and Materials
A 6 kW YLR-6000 Yb fiber laser (IPG Photonics) was used for welding. The welding system included a focal length of 200 mm collimating lens and a focusing lens. The beam diameter at the focal point was 0.3 mm.
4:Experimental Procedures and Operational Workflow
The dual beams were obtained using an optical prism. The Rs and d1 were varied to study their effects on weld characteristics. The welding operation was shielded by argon gas.
5:Data Analysis Methods
Microstructural analysis was performed using optical microscope, SEM, and EBSD. Tensile tests were conducted using a MTS810 testing machine. Fracture path and surface morphology were observed using SEM.
独家科研数据包,助您复现前沿成果,加速创新突破
获取完整内容