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脉冲YAG激光焊接原位生成TiB_2/ZL101铝基复合材料
引用本文:崔海超,芦凤桂,唐新华,姚舜,楼松年.脉冲YAG激光焊接原位生成TiB_2/ZL101铝基复合材料[J].上海交通大学学报,2010,44(1):1-0005.
作者姓名:崔海超  芦凤桂  唐新华  姚舜  楼松年
作者单位:上海交通大学 上海市激光制造与材料改性重点试验室
摘    要:采用脉冲激光技术对原位生成TiB2/ZL101铝基复合材料进行焊接,并分析了脉冲频率对焊缝成形及其微观组织、气孔和TiB2粒子在焊缝中分布的影响.结果表明:脉冲激光焊缝成形较好,焊缝内气孔数量较少,焊接后母材中团簇的TiB2粒子变得细小弥散且比母材分布更均匀;当脉冲频率增至200 Hz时,搅拌作用减弱且焊缝内气孔增多,TiB2粒子的弥散分布也相对减弱,激光穿透深度随着脉冲频率的增加而减小;激光焊接时,焊缝呈现出细小的等轴晶组织,在凝固过程中TiB2粒子被界面前沿推移至晶界处,使得其在焊缝内的硬度增加且分布较均匀,焊接后TiB2粒子未与铝基体发生界面反应而保持了对复合材料的增强效果.

关 键 词:TiB2/ZL101复合材料    脉冲激光    气孔    粒子分布    界面反应  
收稿时间:2009-6-4

Pulsed YAG Laser Welding of in situ TiB_2 Particulate Reinforced ZL101 Matrix Composite
CUI Hai-chao,LU Feng-gui,TANG Xin-hua,YAO Shun,LOU Song-nian.Pulsed YAG Laser Welding of in situ TiB_2 Particulate Reinforced ZL101 Matrix Composite[J].Journal of Shanghai Jiaotong University,2010,44(1):1-0005.
Authors:CUI Hai-chao  LU Feng-gui  TANG Xin-hua  YAO Shun  LOU Song-nian
Institution:Shanghai Key Laboratory of Materials Laser Processing and Modification, Shanghai Jiaotong University
Abstract:Pulsed laser welding of in situ TiB2 particulate reinforced ZL101 aluminum matrix composites was carried out. The effects of pulse frequency on the formation of bead and microstructure were studied. The results show that the formation of bead is good, and the porosity is decreased due to the effect of stirring of pulsed laser on the molten pool. The clusters of TiB2 get finer and distribute more homogeneously in the bead than that in the base metal. The stirring effect decreases when the pulse frequency is up to 200 Hz so that much porosity occurs and the clusters get larger. Moreover, the penetration depth is decreased with the pulse frequency increasing. The grain is very fine in the bead and TiB2 particles are located at the grain boundary. The values of hardness are uniform in the bead, higher than that in the base metal. There is no interface reaction to produce brittle products between the TiB2 and Al matrix so that it keeps the strengthening effects of reinforcement.
Keywords:TiB2/ZL101 composite  pulsed laser  porosity  particle distribution  interface reaction
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