摘要
激光深熔焊过程中等离子体羽流的热力学行为与焊接过程稳定性及焊接质量息息相关。利用激光焊接等离子体光电信息同步检测系统测量了等离子体羽流热力学基本参数,并分析了其统计分布规律。结果表明:等离子体喷发速度主要分布在6~70 m/s范围内;随着焊接热输入增加,概率最大的等离子体喷发速度减小,而喷发速度分布范围变化不明显;在等离子体喷发过程中,随着等离子体羽流上升,其温度不断下降,等离子体羽流温度的下降程度随着焊接热输入的增加呈现为减小的趋势;在喷发后期,两探针电信号开始回升的前后顺序与喷发后期等离子体喷发的剧烈程度紧密相关。
Objective In the laser deep-penetration welding process,a high-energy-density laser produces intense melting and evaporation on the metal surface,generating a keyhole inside the molten pool.The keyhole gives rise to a plasma plume,composed of metallic vapor and plasma,induced by the evaporation and ionization of the molten metal.Previous studies generally believed that the plasma plume eruption process is periodic;however,elements of randomness are also present,specifically reflected in the random plasma eruption period and the difference in plasma plume eruption intensity.However,systematic research on the thermodynamic behavior of plasma plumes is still lacking.Therefore,it is of great significance to further study mass and energy transfer in laser welding by measuring the basic thermodynamic data of the plasma plume and analyzing its distribution.Methods In this study,a TC4 titanium alloy was used to study the thermodynamic behavior of a plasma plume in laser deeppenetration welding.A titanium alloy plate with a thickness of 3 mm was welded using an Nd∶YAG laser.During the welding process,a plasma photoelectric signal synchronous detection system with a passive dual-probe device was used to obtain the photoelectric information of the plasma plumes under different welding heat inputs.The thermodynamic parameters,including the eruption velocity and temperature of the plasma plume,were measured to study the thermodynamic behavioral characteristics of the plasma plume.Results and Discussions The plasma plume expanded and contracted frequently during laser welding.In this study,the plasma eruption velocity and spatiotemporal distribution characteristics of the plasma plume temperature were studied by analyzing the characteristics of electrical signals in the plasma eruption process.Under the welding heat inputs of 75 J/mm,50 J/mm,and 37.5 J/mm,the maximum probability plasma erupting velocity was 13 m/s,14 m/s,and 15.5 m/s,respectively(Fig.6).In the eruption process,the decrease degree of the plasma plume temperat
作者
贾晨鹏
黄一鸣
赵圣斌
袁炯
张枫
杨立军
Jia Chenpeng;Huang Yiming;Zhao Shengbin;Yuan Jiong;Zhang Feng;Yang Lijun(School of Materials Science and Engineering,Tianjin University,Tianjin 300350,China;Tianjin Key Laboratory of Advanced Joining Technology,Tianjin University,Tianjin 300350,China)
出处
《中国激光》
EI
CAS
CSCD
北大核心
2023年第20期59-65,共7页
Chinese Journal of Lasers
基金
国家自然科学基金(51875403,52201048)。
关键词
激光技术
激光焊接
钛合金
激光等离子体
等离子体喷发速度
小孔振荡
laser technique
laser welding
titanium alloy
laser-induced plasma
plasma erupting velocity
keyhole oscillation