Shielding gas effects on double-sided synchronous autogenous GTA weldability of high nitrogen austenitic stainless steel

被引:49
作者
Qiang, Wei [1 ]
Wang, Kehong [1 ]
机构
[1] Nanjing Univ Sci & Technol, Sch Mat Sci & Engn, Nanjing 210094, Jiangsu, Peoples R China
关键词
Double-sided synchronous autogenous GTA welding (DSSAGW); High nitrogen austenitic stainless steel (HNASS); Arc; Welding stability; Microstructure; Microhardness; HEAT-AFFECTED ZONE; STIR WELDED-JOINT; MECHANICAL-PROPERTIES; MICROSTRUCTURAL EVOLUTION; CORROSION BEHAVIOR; LASER; METAL; PLATE;
D O I
10.1016/j.jmatprotec.2017.07.021
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Acceptable weld formation in high nitrogen austenitic stainless steel (HNASS) was achieved when nitrogen gas (N-2) was added to the Ar-based shielding gas. Although a relatively unstable process, in double-sided synchronous autogenous gas tungsten arc (GTA) welding (DSSAGW), added N-2 enabled the arc plasma to shrink and accordingly heightened the arc voltage, leading to increased fusion areas of welds. Added N-2 in the shielding gas was very beneficial for suppressing nitrogen loss in welded joints, with the nitrogen content in the weld zone (WZ) increased to 1.25% with pure N-2 shielding gas, while the 8-ferrite content slightly decreased. With increased N-2 in shielding gas, both the primary and secondary dendrite arm spacing in the WZ increased, while the equiaxed austenite in heat-affected zone (HAZ) varied rather little. The WZ microhardness increased with N-2 addition to the shielding gas, indicating nitrogen's strong solid solution strengthening effects. Based on these results, N-2 was considered to be a promising shielding gas for HNASS welding in DSSAGW and the optimal N-2 and Ar proportions judged to be below 2/8 (by vol.).
引用
收藏
页码:169 / 181
页数:13
相关论文
共 36 条
[1]  
Bonnefois B., 2004, Weld. Int, V18, P208, DOI [10.1533/wint.2004.3226, DOI 10.1533/WINT.2004.3226]
[2]   The correlation between thermal variables and secondary dendrite arm spacing during solidification of horizontal cylinders of Sn-Pb alloys [J].
de Souza, EN ;
Cheung, N ;
Garcia, A .
JOURNAL OF ALLOYS AND COMPOUNDS, 2005, 399 (1-2) :110-117
[3]   Nitrogen desorption by high-nitrogen steel weld metal during CO2 laser welding [J].
Dong, W ;
Kokawa, H ;
Tsukamoto, S ;
Sato, YS .
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2005, 36 (05) :677-681
[4]  
DUPONT JN, 1995, WELD J, V74, pS406
[5]   Microstructure and mechanical properties of aluminium alloy 7A52 thick plates welded by robotic double-sided coaxial GTAW process [J].
Feng, Yuehai ;
Chen, Jiahe ;
Qiang, Wei ;
Wang, Kehong .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2016, 673 :8-15
[6]   Numerical Determination of Secondary Dendrite Arm Spacing for IN738LC Investment Castings [J].
Franke, M. M. ;
Hilbinger, R. M. ;
Konrad, C. H. ;
Glatzel, U. ;
Singer, R. F. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2011, 42A (07) :1847-1853
[7]   Grain refining mechanism of high-purity Mg-9 mass%Al alloy ingot and influence of Fe or Mn addition on cast grain size [J].
Haitani, T. ;
Tamura, Y. ;
Yano, E. ;
Motegi, T. ;
Kono, N. ;
Sato, E. .
Keikinzoku/Journal of Japan Institute of Light Metals, 2001, 51 (08) :403-408
[8]   THE DEFORMATION AND AGEING OF MILD STEEL .3. DISCUSSION OF RESULTS [J].
HALL, EO .
PROCEEDINGS OF THE PHYSICAL SOCIETY OF LONDON SECTION B, 1951, 64 (381) :747-753
[9]   Nitrogen loss and effects on microstructure in multipass TIG welding of a super duplex stainless steel [J].
Hosseini, Vahid A. ;
Wessman, Sten ;
Hurtig, Kjell ;
Karlsson, Leif .
MATERIALS & DESIGN, 2016, 98 :88-97
[10]   Microporosity formation in partially melted zone during welding of high nitrogen austenitic stainless steels [J].
Kamiya, O ;
Chen, ZW ;
Kikuchi, Y .
JOURNAL OF MATERIALS SCIENCE, 2002, 37 (12) :2475-2481