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Heat Source Characteristics of Ternary-Gas-Shielded Tandem Narrow-Gap GMAW

机译:三元气屏蔽串联窄缝GMAW的热源特性

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摘要

The characteristics of the welding heat source for tandem narrow-gap gas metal arc welding are examined for different ternary shielding gas (Ar-CO2-He) compositions. Results of previous calculations of arc properties for bead-on-plate geometry are adapted to the narrow-gap geometry to predict these characteristics. The heat source concentration factor decreases and the maximum heat flux density increases as the helium content increases, which leads to an increased welding heat efficiency. Addition of CO2 up to around 10% also increases the heat efficiency. When the CO2 content exceeds 10%, the heat source concentration factor increases significantly and the heat efficiency decreases. The shielding gas composition also affects the heat source distribution. The heat source characteristics are applied to a computational fluid dynamic model of the weld pool to predict the weld shape, and the predictions are verified by experiment. The results indicate that the appropriate addition of helium to the shielding gas can increase the heat transferred to the peripheral regions of the arc and increase the sidewall penetration.
机译:针对不同的三元保护气体(Ar-CO2-He)组成,研究了用于窄间隙气体金属电弧焊的焊接热源的特性。先前对板上珠状几何形状的电弧特性的计算结果适用于窄间隙几何形状,以预测这些特性。随着氦含量的增加,热源集中系数降低,最大热通量密度增加,这导致焊接热效率提高。最多添加10%左右的CO2也会提高热效率。当CO 2含量超过10%时,热源浓度系数显着增加并且热效率降低。保护气体成分也影响热源分布。将热源特性应用于焊接池的计算流体动力学模型以预测焊缝形状,并通过实验验证了该预测。结果表明,向保护气体中适当添加氦气可以增加传递到电弧外围区域的热量,并增加侧壁渗透。

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