Heat transfer and fluid flow in laser microwelding

被引:130
作者
He, X [1 ]
Elmer, JW
DebRoy, T
机构
[1] Penn State Univ, Dept Mat Sci & Engn, University Pk, PA 16802 USA
[2] Lawrence Livermore Natl Lab, Dept Chem & Mat Sci, Livermore, CA 94551 USA
关键词
D O I
10.1063/1.1873032
中图分类号
O59 [应用物理学];
学科分类号
摘要
The evolution of temperature and velocity fields during linear and spot Nd-yttrium aluminum garnet laser microwelding of 304 stainless steel was simulated using a well-tested, three-dimensional, numerical heat transfer and fluid flow model. Dimensional analysis was used to understand both the importance of heat transfer by conduction and convection as well as the roles of various driving forces for convection in the weld pool. Compared with large welds, smaller weld pool size for laser microwelding restricts the liquid velocities, but convection still remains an important mechanism of heat transfer. On the other hand, the allowable range of laser power for laser microwelding is much narrower than that for macrowelding in order to avoid formation of a keyhole and significant contamination of the workpiece by metal vapors and particles. The computed weld dimensions agreed well with the corresponding independent experimental data. It was found that a particular weld attribute, such as the peak temperature or weld penetration, could be obtained via multiple paths involving different sets of welding variables. Linear and spot laser microwelds were compared, showing differences in the temperature and velocity fields, thermal cycles, temperature gradients, solidification rates, and cooling rates. It is shown that the temperature gradient in the liquid adjacent to the mushy zone and average cooling rate between 800 and 500 degrees C for laser spot microwelding are much higher than those in linear laser microwelding. The results demonstrate that the application of numerical transport phenomena can significantly improve current understanding of both spot and linear laser microwelding. (C) 2005 American Institute of Physics.
引用
收藏
页数:9
相关论文
共 50 条
[1]   Fabrication of a miniaturized electron lens system and laser micro-machining condition for silicon membrane [J].
Ahn, S ;
Kim, DW ;
Kim, HS ;
Ahn, SJ ;
Cho, J .
MICROELECTRONIC ENGINEERING, 2003, 69 (01) :57-64
[2]  
*AM SOC MET, 1990, MET HDB, V1
[3]  
*AM SOC MET, 1994, ASM SPEC HDB
[4]  
[Anonymous], 1999, PRINCIPLES WELDING
[5]   Laser micro-machining of small objects for high-energy laser experiments [J].
Bednarczyk, S ;
Bechir, R ;
Baclet, P .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 1999, 69 (Suppl 1) :S495-S500
[6]   Recent applications of pulsed lasers in advanced materials processing [J].
Booth, HJ .
THIN SOLID FILMS, 2004, 453 :450-457
[7]  
Bramson M.A., 1968, Infrared Radiation: A Handbook for Applications
[8]   A study on the prediction of the laser weld shape with varying heat source equations and the thermal distortion of a small structure in micro-joining [J].
Chang, WS ;
Na, SJ .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2002, 120 (1-3) :208-214
[9]  
CREMERS DA, 1991, WELD J, V70, pS159
[10]  
Davis JR., 1998, METALS HDB, V2nd