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ARC STABILITY INDEXES EVALUATION ON UNDERWATER WET WELDING

机译:水下湿式焊接的电弧稳定性指标评估

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Underwater wet welding (UWW) with shielded metal arc welding (SMAW) is employed basically in repairs of offshore structures, including platforms, ships and others. The main problems of this type of welds are related, of course, with water presence in the electric arc that causes higher cooling rates, Oxygen and Hydrogen availability in the arc atmosphere and arc instability. Many of research and test welding programs in laboratory are undertaken in shallow water performed by automatic devices using hyperbaric chambers to simulate depths. Also, welding arc signals are acquired using data acquisition systems and the arc stability is estimated through indexes calculated from values acquired and analyzed. It is very well known the reduced stability of the wet welding process at shallow depths - less than approximately five meters. So this effect would be considerable significant since it can be used to make correlations between the arc stability indexes and the welds quality results. The main objective of this work was to evaluate the efficiency of the most used arc stability indexes reported in the literature in detect the arcinstability effect of shallow water wet welding. Bead-on-plate welds had been made using a gravity feeding system device inside a hyperbaric chamber, applying straight polarity (DCEN) in ASTM A36 steel plates, using the same weld parameters in two different depths, 0.5 and 20.0 meters. Rutile, basic and oxidizing commercial electrodes types prepared for UWW with 3.25mm rod diameter were used. Visual analysis, bead morphology and arc stability were the criteria used to evaluate the weld quality. The voltage and current arc signals were acquired at 10 KHz rate. The arc stability indexes measured were average voltage and current and its standard deviation, S (Imax/Imin) parameter, voltage and current square mean, arc "re-ignition" voltage and current, metal transfer time and its deviation, metal transfer frequency and its deviation, short circuit time and its deviation and the voltage versus current graph area. The results shown that none of the stability indexes tested has been shown to indicate, alone, a good relationship to the surface appearance obtained for the three electrodes studied. The rutile type electrode was the only one that clearly produced better weld appearance at 20 meters than in shallow water depth. The rutile and oxidizing electrodes showed better surface appearance with the increased number of short circuits. For the rutile electrode, the globular transfer mode with high voltage were directly related with poor weld bead surface appearance.
机译:带有屏蔽金属电弧焊(SMAW)的水下湿焊(UWW)基本上用于海上平台的维修,包括平台,船舶等。当然,这类焊缝的主要问题与电弧中存在的水有关,这会导致较高的冷却速度,电弧气氛中的氧气和氢气的可用性以及电弧的不稳定性。实验室中的许多研究和测试焊接程序都是在浅水中进行的,这些焊接是通过使用高压舱来模拟深度的自动设备执行的。同样,使用数据采集系统采集焊接电弧信号,并通过根据采集和分析的值计算出的指标来估算电弧稳定性。众所周知,在小于约五米的浅深度处,湿式焊接工艺的稳定性降低。因此,这种效果非常重要,因为它可用于在电弧稳定性指标和焊缝质量结果之间建立关联。这项工作的主要目的是评估文献中报告的最常用的电弧稳定性指标在检测电弧中的效率。 浅水湿焊的不稳定性影响。使用高压舱内的重力进料系统设备在ASTM A36钢板上施加直极性(DCEN),并在两个不同的深度(0.5和20.0米)中使用相同的焊接参数,进行了圆珠焊。使用为UWW制备的金红石型,碱性和氧化型商业电极,棒直径为3.25mm。视觉分析,焊缝形态和电弧稳定性是评估焊接质量的标准。电压和电流电弧信号以10 KHz的速率采集。测得的电弧稳定性指标为平均电压和电流及其标准偏差,S(Imax / Imin)参数,电压和电流平方均值,电弧“重燃”电压和电流,金属转移时间及其偏差,金属转移频率和它的偏差,短路时间及其偏差以及电压与电流的关系图面积。结果表明,所测试的稳定性指标均未显示单独表明与所研究的三个电极获得的表面外观具有良好的关系。金红石型焊条是唯一一种在20米处比在浅水深处明显产生更好焊接外观的焊条。金红石和氧化电极显示出更好的表面外观,并增加了短路次数。对于金红石焊条,高电压的球形转移模式与不良的焊道表面外观直接相关。

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