Effect of heat input on weld bead geometry of submerged arc welded ASTM A709 Grade 50 steel joints
暂无分享,去创建一个
[1] J. N. Clark. Manual metal arc weld modelling: Part 1 Effect of process parameters on dimensions of weld bead and heat-affected zone , 1985 .
[2] K. Easterling. Introduction to the physical metallurgy of welding , 1983 .
[3] B. Basu,et al. Microstructural variations in a high-strength structural steel weld under isoheat input conditions , 2002 .
[4] B. M. Patchett,et al. Estimation of cooling rate in the welding of plates with intermediate thickness , 2005 .
[5] V. Gunaraj,et al. Application of response surface methodology for predicting weld bead quality in submerged arc welding of pipes , 1999 .
[6] A. P. Chakravarti,et al. COOLING CHARACTERISTICS OF BEAD-ON-PLATE WELDS , 1985 .
[7] N. Murugan,et al. Optimization of weld bead geometry for stainless steel claddings deposited by FCAW , 2007 .
[8] A. G. Olabi,et al. Optimization of different welding processes using statistical and numerical approaches - A reference guide , 2008, Adv. Eng. Softw..
[9] Yongxuan Yang. The effect of submerged arc welding parameters on the properties of pressure vessel and wind turbine tower steels , 2008 .
[10] J. Indacochea,et al. Inclusion effects on submerged-arc weld microstructure , 1987 .
[11] R. S. Chandel. Electrode melting and plate melting efficiencies of submerged arc welding and gas metal arc welding , 1990 .
[12] H. P. Seow,et al. Effect of Welding Parameters on the Size of Heat Affected Zone of Submerged Arc Welding , 2000 .
[13] J. F. Lancaster,et al. Metallurgy of Welding , 1980 .