Effect of silane-doped argon shielding gases for gas metal arc welding of S355

IF 2.4 4区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING
Kai Treutler, Philipp Neef, Volker Wesling
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引用次数: 0

Abstract

The welding of steel grades relies primarily on the interaction of the weld metal with doped oxygen components of the shielding gas. This mainly serves to decrease the viscosity and reduce the surface tension of the melt in order to achieve an adjusted material transition. Interference with the ambient atmosphere is undesirable in this context. In order to prevent material-related changes in the microstructure, slag initiators are admixed which promote the precipitation of low-density oxides on the weld seam surface. Manufacturing technology is increasingly striving to eliminate the interaction of atmospheric oxygen in the production process. It is primarily intended to counteract the negative effects of oxygen during manufacturing. For this objective, silane-doped gases for subtractive manufacturing processes and additive manufacturing via the PBF-LB/M process have been considered. Small amounts of silane in conventional inert shielding gases allow partial pressures of oxygen that are comparable to a high vacuum. In the scope of this publication on investigations for welding applications, blind welds on S355 substrate plates were performed using G3Si1 filler material. In addition to the recommended M21, an argon shielding gas with 1.5% silane doping and argon 4.6 are applied for welding. Apart from the observation of the resulting energy input, the weld seams are metallographically characterized. For this purpose, the formation of silicates on the weld seam surface and the development of the weld seam within the base material are investigated. The volume of the weld seam is reduced as a result of the silane doping compared to the M21 application. The composition of the weld metal is significantly influenced by the silane content, leading to an increased manganese content in particular. The silane doping results in an intensified formation of an acicular bainitic structure and an accompanying hardening within the weld metal.

掺硅烷的氩气保护气体对 S355 气体金属弧焊的影响
钢种的焊接主要依赖于焊缝金属与保护气体中掺氧组分的相互作用。这主要是为了降低粘度和降低熔体的表面张力,以实现调整的材料过渡。在这种情况下,与周围大气的干扰是不可取的。为了防止材料引起的组织变化,在焊缝表面加入了引发渣剂,促进了低密度氧化物的析出。制造技术正日益努力消除生产过程中大气中氧的相互作用。它主要是为了抵消生产过程中氧气的负面影响。为此,考虑了通过PBF-LB/M工艺用于减法制造工艺和增材制造的硅烷掺杂气体。在传统的惰性保护气体中,少量的硅烷允许氧气的分压与高真空相当。在本出版物关于焊接应用研究的范围内,使用G3Si1填充材料在S355基板上进行盲焊。除推荐的M21外,还可采用硅烷掺杂1.5%、氩气4.6的氩保护气进行焊接。除了观察产生的能量输入外,焊缝还具有金相特征。为此,研究了焊缝表面硅酸盐的形成和焊缝在母材内部的发展。与M21相比,硅烷掺杂减少了焊缝的体积。焊接金属的组成受硅烷含量的显著影响,特别是导致锰含量的增加。硅烷掺杂导致焊缝金属中针状贝氏体结构的强化形成和伴随的硬化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Welding in the World
Welding in the World METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
4.20
自引率
14.30%
发文量
181
审稿时长
6-12 weeks
期刊介绍: The journal Welding in the World publishes authoritative papers on every aspect of materials joining, including welding, brazing, soldering, cutting, thermal spraying and allied joining and fabrication techniques.
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