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Influence of Metallic Oxide Nanoparticles on the Mechanical Properties of an A-TIG Welded 304L Austenitic Stainless Steel

机译:金属氧化物纳米粒子对A-TIG焊接304L奥氏体不锈钢机械性能的影响

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摘要

Austenitic stainless steels represent a significant aerospace material, being used for various castings, structural components, landing gear components, afterburners, exhaust components, engine parts, and fuel tanks. The most common joining process is tungsten inert gas (TIG) welding, which possesses many advantages such as suitability to weld a wide range of ferrous and non-ferrous metals and alloys, providing high quality welds with good mechanical properties. Its major disadvantage is low productivity due to low penetration and welding speed. This can be overcome by introducing an activating flux before welding. The activating flux reverses the material flow of the weld pool, significantly increasing penetration. Therefore, shielding gas consumption is reduced and welding without a consumable is enabled. However, the consumable in conventional TIG also enables the conditioning of the mechanical properties of welds. In this study, Si and Ti metallic oxide nanoparticles were used to increase the weld penetration depth, while bend testing, tensile, and impact toughness were determined to evaluate the mechanical properties of welds. Furthermore, optical emission spectroscopy, light, and scanning electron microscope were used to determine the chemical compositions and microstructures of the welds. Chemical compositions and weld mechanical properties were similar in all specimens. The highest tensile and impact properties were obtained with the specimen welded with the flux containing 20% TiO2 and 80% SiO2 nanoparticles. Although lower than those of the base metal, they were well within the nominal base metal mechanical properties.
机译:奥氏体不锈钢代表了一个重要的航空航天材料,用于各种铸件,结构部件,着陆齿轮部件,加息,排气组件,发动机部件和燃料箱。最常见的连接过程是钨惰性气体(TIG)焊接,其具有许多优点,如适合焊接各种亚铁和有色金属和合金,提供具有良好机械性能的高质量焊缝。由于低渗透和焊接速度,其主要缺点是生产率低。这可以通过在焊接前引入激活通量来克服这一点。激活助熔剂反转焊接池的材料流动,显着提高渗透。因此,屏蔽气体消耗减少,并且能够焊接而不会消耗焊接。然而,传统TIG的消耗也使得能够调节焊缝的机械性能。在该研究中,使用Si和Ti金属氧化物纳米颗粒来增加焊接穿透深度,而弯曲测试,拉伸和冲击韧性被确定为评估焊缝的机械性能。此外,使用光学发射光谱,光和扫描电子显微镜来确定焊缝的化学组成和微观结构。所有标本中的化学组成和焊接机械性能相似。用焊接含有20%TiO 2和80%SiO 2纳米颗粒的焊剂焊接的标本获得最高的拉伸和冲击性能。虽然低于基础金属的那些,但它们在标称基础金属机械性能范围内。

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