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Effect of Water Depth on the Microstructure and Tensile Strength of the 5 G Position Underwater Wet Welded Low Carbon Steel

机译:水深对5G位置水下湿焊的低碳钢的微观结构和拉伸强度的影响

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Underwater wet welding is widely used to maintenance and repair of offshore engineering equipment construction. Up to now, the research underwater wet welding only is carried out in a laboratory scale with a shallow. So the depth factor is ignored, meanwhile the depth of the water will affect cooling rate and hyrostatic pressure. The cooling rate is usually related with the volume fractions of microstructure and mechanical properties. Therefore, the experiment focused on the microstructures, hardness and tensile strength of low carbon steel welded joints that were welded using welding on air and underwater wet welding under several water depths (2.5 m, 5 m and 10m). The spesimens at underwater wet welding under several water depths 2.5 m, 5 m and 10 m produced the tensile strength 277 MPa, 303 MPa and 313 MPa. The increase depth of water makes the cooling rate increase. With increase the cooling rate, the tensile strength of weld metal increased due to increase volume fraction of acicular ferrite. The fracture surface was investigated by SEM (scanning electron microscope) appear porosity of spesimens weld joint at underwater wet welded due to hydrogen absorbed is very high, so the underwater weld metal are easy fragile.
机译:水下湿焊​​接广泛用于海上工程设备建设的维护和修复。到目前为止,研究水下湿焊接仅在实验室规模中进行,浅。因此,深度因子被忽略,同时水的深度会影响冷却速率和逆流压力。冷却速率通常与微观结构和机械性能的体积分数有关。因此,实验专注于低碳钢焊接接头的微观结构,硬度和拉伸强度,在几个水深(2.5米,5米和10m)下,在空气中焊接焊接和水下湿焊接。水下湿焊​​的杂散在几个水深2.5米,5米和10米下产生拉伸强度277MPa,303MPa和313MPa。增加水深使得冷却速率增加。随着冷却速率,由于升高的针状铁氧体的体积分数增加,焊接金属的拉伸强度增加。通过SEM(扫描电子显微镜)研究了裂缝表面,由于吸收的氢气焊接在水下湿焊接中的Spesimens焊接接头的孔隙度非常高,因此水下焊接金属易脆弱。

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