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Microstructure, mechanical behavior and corrosion properties of friction stir welded aluminum alloys used in the aerospace industry

机译:航空航天业用摩擦搅拌焊接铝合金的组织,力学性能和腐蚀性能

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摘要

Friction stir welding (FSW) has been identified as “key” technology for the production of primary aerospace structures, being able to substitute conventional riveted airframes. FSW is a solid state welding process that avoids any problems caused by the solidification of the melted weld pool. Besides the production of high quality similar joints from high strength aluminum alloys, it allows for joining materials of different metallurgical characteristics. However, problems concerning the corrosion behavior of dissimilar joints may arise, since aircrafts operate in corrosive media. For the safe implementation of dissimilar joints, a good understanding of the relevant corrosion mechanisms is crucial. In this study, the correlation between microstructure, local strength and corrosion behavior of dissimilar FSW joints produced from 2024A and 6056 alloys in two different tempering conditions was investigated. The heat affected zone of 6056 in 2024A-T3/6056-T6 as-welded joints could easily be identified by a marked hardness drop. Coarsening and dissolution of strengthening precipitates in that region brought about the weakest link during static tensile tests. Because of the low strength of as-welded dissimilar joints, welds were also produced from 6056 in the naturally aged T4 condition. After FSW, these joints were aged at 190°C for 10h resulting in a 2024A-T8/6056-T7X tempering condition. Due to a more homogeneous precipitation of hardening particles, the post-weld heat treatment improved hardness and static strength remarkably. The corrosion performance of the dissimilar joints observed in various immersion tests was governed by galvanic coupling between both aluminum alloys. For as-welded joints, the more active 6056-T6 alloy provided cathodic protection to 2024-T3 when exposed to aqueous chloride solutions, particularly under permanent immersion conditions. Strips of alloy 6056 being present in the nugget region corroded preferentially. A significant improvement of the corrosion behavior was observed in the case of the post-weld heat treated 2024A-T8/6056- T7X joints. Although corrosion potential of both alloys considerably decreased, the difference between them was also reduced. Therefore, the post weld heat treatment equalized the corrosive attack and suppressed preferential dissolution of 6056 alloy.
机译:搅拌摩擦焊(FSW)被认为是生产主要航空航天结构的“关键”技术,能够替代传统的铆接机身。 FSW是一种固态焊接工艺,可避免熔化的熔池凝固引起的任何问题。除了使用高强度铝合金生产高质量的相似接头之外,它还可以接合具有不同冶金特性的材料。但是,由于飞机在腐蚀性介质中运行,可能会出现与异种接头的腐蚀行为有关的问题。为了安全地实现异种接头,对相关腐蚀机理的良好理解至关重要。在这项研究中,研究了在两种不同的回火条件下,由2024A和6056合金制成的异种FSW接头的组织,局部强度和腐蚀行为之间的相关性。 2024A-T3 / 6056-T6焊接接头中6056的热影响区可以通过明显的硬度下降轻松识别。在该区域中,强化沉淀物的粗化和溶解导致静态拉伸试验中最薄弱的环节。由于焊接后的异种接头强度低,因此在自然时效T4条件下也从6056产生了焊缝。 FSW之后,这些接头在190°C时效10h,从而导致2024A-T8 / 6056-T7X回火。由于硬化颗粒的沉淀更加均匀,焊后热处理显着提高了硬度和静态强度。在各种浸没测试中观察到的异种接头的腐蚀性能取决于两种铝合金之间的电偶耦合。对于焊接接头,活性更高的6056-T6合金在暴露于氯化物水溶液中时,尤其是在永久浸入条件下,可为2024-T3提供阴极保护。存在于熔核区域中的合金6056的条带被优先腐蚀。在焊后热处理的2024A-T8 / 6056-T7X接头的情况下,观察到腐蚀行为的显着改善。尽管两种合金的腐蚀潜能大大降低,但它们之间的差异也减小了。因此,焊后热处理可均衡腐蚀侵蚀并抑制6056合金的优先溶解。

著录项

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    Alfaro Mercado Ulises;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 eng
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