Numerical and experimental analysis for solidification and residual stress in the GMAW process for AISI 304 stainless steel

被引:31
作者
Choi, J [1 ]
Mazumder, J [1 ]
机构
[1] Univ Michigan, Dept Mech Engn, Ctr Laser Aided Intelligent Mfg, Ann Arbor, MI 48109 USA
关键词
D O I
10.1023/A:1015258322780
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Gas Metal Arc Welding (GMAW) process was analyzed by combining a finite element thermomechanical model for temperature and stress with solidification model. Model prediction was compared with experimental data in order to validate the model. The effects of welding process parameters on these welding fields were analyzed and reported. The effort to correlate the residual stress and solidification was initiated, yielding some valuable results. The solidification process was simulated using the formulation based on the Hunt-Trivedi model. Based on the temperature history, solidification speed and primary dendrite arm spacing were predicted at given nodes of interest. Results show that the variation during solidification is usually within an order of magnitude. The temperature gradient was generally in the range of 10(4)-10(5) K/m for the given welding conditions (welding power = 6 kW and welding speed = 3.39 to 7.62 mm/sec), while solidification speed appeared to slow down from an order of 10(-2) to 10(-3) m/sec during solidification. SEM images revealed that the Primary Dendrite Arm Spacing (PDAS) fell in the range of 10(1)-10(2) mum. The range of predicted sizes was in agreement with the experimental values. It was observed that the average size of the PDAS was dependent upon the welding speed. The PDAS fell between 7.5 to 20 mum for columnar and 10 to 30 mum for equiaxed dendrites, for welding speeds between 3.39 to 7.62 mm/sec. When the welding speed increased, it was observed that the average size of the PDAS decreased, as the model had predicted. For grain growth at the Heat Affected Zone (HAZ), Ashby's model was employed, and the prediction was in agreement with experimental results. For the residual stress calculation, the same mesh generation used in the heat transfer analysis was applied to make the simulation consistent. The analysis consisted of a transient heat analysis followed by a thermal stress analysis. An experimentally measured strain history was compared with the simulated result. The relationship between microstructure and the stress/strain field of welding was also obtained. (C) 2002 Kluwer Academic Publishers.
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页码:2143 / 2158
页数:16
相关论文
共 65 条
[1]   THERMAL-STRESSES IN LARGE BUTT-WELDED PLATES [J].
ANDERSSON, B ;
KARLSSON, L .
JOURNAL OF THERMAL STRESSES, 1981, 4 (3-4) :491-500
[2]  
ANDERSSON BAB, 1978, T ASME, V100, P56
[3]   COMPUTATIONAL ASPECTS OF WELDING STRESS-ANALYSIS [J].
ARGYRIS, JH ;
SZIMMAT, J ;
WILLAM, KJ .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1982, 33 (1-3) :635-665
[4]   A 1ST REPORT ON DIAGRAMS FOR GRAIN-GROWTH IN WELDS [J].
ASHBY, MF ;
EASTERLING, KE .
ACTA METALLURGICA, 1982, 30 (11) :1969-1978
[5]  
ASHBY MF, 1992, MATER SCI TECH SER, V8, P102, DOI 10.1179/026708392790170351
[6]  
ATHEY DR, 1980, J FLUID MECH, V98, P787
[7]   SOLIDIFICATION MODELING AND SOLID-STATE TRANSFORMATIONS IN HIGH-ENERGY DENSITY STAINLESS-STEEL WELDS [J].
BROOKS, JA ;
BASKES, MI ;
GREULICH, FA .
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1991, 22 (04) :915-926
[8]  
BROOKS JA, 1990, WELDING THEORY PRACT, P35
[9]  
CARRUPT B, 1988, P 4 C MOD CAST WELD, P581
[10]   A 2-DIMENSIONAL TRANSIENT MODEL FOR CONVECTION IN LASER MELTED POOL [J].
CHAN, C ;
MAZUMDER, J ;
CHEN, MM .
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1984, 15 (12) :2175-2184