研究目的
Investigating the filler metal distribution and processing stability in laser-arc hybrid welding of thick HSLA steel.
研究成果
The study concluded that deep penetration laser-arc hybrid welding has inconsistent penetration depth related to process stability. The filler metal distribution is substantially lower in the root area, affecting mechanical properties. Longitudinal cuts revealed more features concerning weld defects and prior austenite grain morphology. The heat input from the laser beam significantly influences weld metal hardness, which varies in both longitudinal and vertical directions.
研究不足
The study acknowledges the challenges in accurately identifying filler metal distribution in HSLA steel due to similar chemical compositions between filler wire and base metal. The method requires additional experimental runs for materials with different compositions, which can be costly.
1:Experimental Design and Method Selection:
The study employed laser-arc hybrid welding (LAHW) with a continuous wave Yb:fiber laser and MAG arc source. The process parameters included laser beam power, focal point position, filler wire stickout, and shielding gas composition.
2:Sample Selection and Data Sources:
45 mm thick microalloyed HSLA steel plates were used, cut to 500 × 120 × 45 mm3 specimen size. Metal-cored filler wire with 1.2 mm diameter was used.
3:2 mm diameter was used.
List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Equipment included a 15 kW Yb:fiber laser (YLR-15000 from IPG Laser GmbH), MAG arc source (TPS4000 VMT Remote power source from Fronius GmbH), and SEM for analysis.
4:Experimental Procedures and Operational Workflow:
Welding was performed from both sides with varying parameters. Longitudinal cuts were made for analysis of NMIs, microstructure, and hardness.
5:Data Analysis Methods:
Statistical characterization of NMIs was performed using SEM and FIJI software. Microstructure evaluation was done via etching, and hardness tests were conducted based on EN ISO 9015-1.
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