Measurements of laser-induced plasma temperature field in deep penetration laser welding

被引:40
作者
Chen, Genyu [1 ]
Zhang, Mingjun [1 ]
Zhao, Zhi [2 ]
Zhang, Yi [1 ]
Li, Shichun [1 ]
机构
[1] Hunan Univ, State Key Lab Adv Design & Mfg Vehicle Body, Changsha 410082, Hunan, Peoples R China
[2] SAIC Technol Ctr, Shanghai 201804, Peoples R China
基金
中国国家自然科学基金;
关键词
Deep penetration laser welding; Plasma temperature; Optical spectroscopy; SPECTROSCOPIC MEASUREMENTS; KEYHOLE; MODEL;
D O I
10.1016/j.optlastec.2012.05.033
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Laser-induced plasma in deep penetration laser welding is located inside or outside the keyhole, namely, keyhole plasma or plasma plume, respectively. The emergence of laser-induced plasma in laser welding reveals important information of the welding technological process. Generally, electron temperature and electron density are two important characteristic parameters of plasma. In this paper, spectroscopic measurements of electron temperature and electron density of the keyhole plasma and plasma plume in deep penetration laser welding conditions were carried out. To receive spectra from several points separately and simultaneously, an Optical Multi-channel Analyser COMA) was developed. On the assumption that the plasma was in local thermal equilibrium, the temperature was calculated with the spectral relative intensity method. The spectra collected were processed with Abel inversion method to obtain the temperature fields of keyhole plasma and plasma plume. (c) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:551 / 557
页数:7
相关论文
共 26 条
[1]  
Bekefi G., 1976, PRINCIPLES LASER PLA
[2]   Prediction of the laser-induced plasma characteristics in laser welding: a new modelling approach including a simplified keyhole model [J].
Chen, X ;
Wang, HX .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2003, 36 (13) :1634-1643
[3]   Fresnel absorption and inverse bremsstrahlung absorption in an actual 3D keyhole during deep penetration CO2 laser welding of aluminum 6016 [J].
Cheng, Yuanyong ;
Jin, Xiangzhong ;
Li, Shichun ;
Zeng, Licheng .
OPTICS AND LASER TECHNOLOGY, 2012, 44 (05) :1426-1436
[4]   Numerical analysis of hybrid plasma generated by Nd YAG laser and gas tungsten arc [J].
Cho, Y. T. ;
Cho, W. I. ;
Na, S. J. .
OPTICS AND LASER TECHNOLOGY, 2011, 43 (03) :711-720
[5]   AN ANALYSIS OF THE LASER PLASMA INTERACTION IN LASER KEYHOLE WELDING [J].
DOWDEN, J ;
KAPADIA, P ;
POSTACIOGLU, N .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1989, 22 (06) :741-749
[6]   On-line quality monitoring of welding precesses by means of plasma optical spectroscopy [J].
Ferrara, M ;
Ancona, A ;
Lugarà, PM ;
Sibilano, M .
HIGH-POWER LASERS IN MANUFACTURING, 2000, 3888 :750-758
[7]   A FUNDAMENTAL PLASMA BASED MODEL FOR ENERGY-TRANSFER IN LASER MATERIAL PROCESSING [J].
FINKE, BR ;
KAPADIA, PD ;
DOWDEN, JM .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1990, 23 (06) :643-654
[8]   ATOMIC TRANSITION-PROBABILITIES FOR IRON, COBALT, AND NICKEL (A CRITICAL DATA COMPILATION OF ALLOWED LINES) [J].
FUHR, JR ;
MARTIN, GA ;
WIESE, WL ;
YOUNGER, SM .
JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 1981, 10 (02) :305-565
[9]  
Greses J, 2001, 20TH ICALEO 2001, VOLS 92 & 93, CONGRESS PROCEEDINGS, P1043
[10]  
Griem HR, 1964, SPECTROCHIM ACTA B