研究目的
To clearly observe the keyhole behavior, spatter, and keyhole-induced bubble formation in laser welding of a steel/glass sandwich and analyze their formation mechanisms and relationship.
研究成果
The study successfully observed and analyzed the keyhole behavior, spatter, and keyhole-induced bubble formation in laser welding of a steel/glass sandwich. It identified five necessary steps for spatter formation and two types of keyhole-induced bubbles. The findings contribute to the understanding of the mechanisms behind these welding phenomena and their interrelationships.
研究不足
The study focuses on laser welding of a specific steel/glass sandwich configuration, which may limit the generalizability of the findings to other materials or welding conditions. The observation technology may not capture all aspects of the welding process due to the complexity of the phenomena involved.
1:Experimental Design and Method Selection:
Laser welding of a steel/glass sandwich was performed to observe keyhole behavior, spatter, and bubble formation. A fiber laser welding machine was used with specific parameters.
2:Sample Selection and Data Sources:
Q345 steel and heat-resistant quartz glass were used as materials. High-speed video camera was used for observation.
3:List of Experimental Equipment and Materials:
Fiber laser welding machine (IPG YLS-10,000), high-speed video camera, Q345 steel, heat-resistant quartz glass.
4:Experimental Procedures and Operational Workflow:
The laser beam irradiated the interface of the steel and glass in the forward direction with an angle of 10°. The laser power was 6 kW, and the defocused distance was 0 mm. The welding speed was 2 m/min. Pure argon gas was used as the shielding gas.
5:0°. The laser power was 6 kW, and the defocused distance was 0 mm. The welding speed was 2 m/min. Pure argon gas was used as the shielding gas.
Data Analysis Methods:
5. Data Analysis Methods: High-speed photographic analysis was used to observe and analyze the weld pool behavior and spatter formation.
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