Effect of Water Flow on Underwater Wet Welded A36 Steel

被引:7
|
作者
Surojo, Eko [1 ]
Gumilang, Aziz Harya [1 ]
Triyono, Triyono [1 ]
Prabowo, Aditya Rio [1 ]
Budiana, Eko Prasetya [1 ]
Muhayat, Nurul [1 ]
机构
[1] Univ Sebelas Maret, Dept Mech Engn, Surakarta 57126, Indonesia
关键词
underwater wet welding; ASTM A36; SMAW; steel; water flow rate; welding defects; microstructure; Vickers microhardness; impact strength; bending test; toughness; tensile test; MECHANICAL-PROPERTIES; METAL TRANSFER; BUBBLE; MICROSTRUCTURE; STABILITY; CARBON; CRASHWORTHINESS; COLLISION;
D O I
10.3390/met11050682
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Underwater wet welding (UWW) combined with the shielded metal arc welding (SMAW) method has proven to be an effective way of permanently joining metals that can be performed in water. This research was conducted to determine the effect of water flow rate on the physical and mechanical properties (tensile, hardness, toughness, and bending effect) of underwater welded bead on A36 steel plate. The control variables used were a welding speed of 4 mm/s, a current of 120 A, electrode E7018 with a diameter of 4 mm, and freshwater. The results show that variations in water flow affected defects, microstructure, and mechanical properties of underwater welds. These defects include spatter, porosity, and undercut, which occur in all underwater welding results. The presence of flow and an increased flow rate causes differences in the microstructure, increased porosity on the weld metal, and undercut on the UWW specimen. An increase in water flow rate causes the acicular ferrite microstructure to appear greater, and the heat-affected zone (HAZ) will form finer grains. The best mechanical properties are achieved by welding with the highest flow rate, with a tensile strength of 534.1 MPa, 3.6% elongation, a Vickers microhardness in the HAZ area of 424 HV, and an impact strength of 1.47 J/mm(2).
引用
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页数:18
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