首页> 外文期刊>Theoretical and Applied Fracture Mechanics >Friction stir welded joints of Al-Li Alloys for aeronautical applications: Butt-joints and tailor welded blanks
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Friction stir welded joints of Al-Li Alloys for aeronautical applications: Butt-joints and tailor welded blanks

机译:航空用铝锂合金的搅拌摩擦焊接头:对接接头和特制焊接坯件

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摘要

Structural design for safety critical components, as airframes, requires comprehensive characterization of the materials and joints properties. This characterization must take into account a large amount of variables required for accurate design to ensure structural integrity during the different phases of the product life cycle of an aircraft. One of the most important variables in this characterization is fatigue behavior due to the cyclic loads during the life of an airframe.The application of welding processes to replace riveted joints in aeronautical structures is an attractive option, since it allows joints with less stress concentration points and might be applied efficiently without overlapping the two joining parts (with a butt-joint configuration), reducing the joint weight. This weight reduction can have a small impact in production costs, but has a huge impact in the life cycle costs. Friction stir is the most appealing welding process in aeronautical structures since it has been shown to produce joints with excellent properties when applied to aluminum alloys and can deal with hardened precipitated aluminum alloys, since it is a semi-solid state process. Furthermore, this joining process allows to join dissimilar materials and plates with different thicknesses, creating in this way tailor welded blanks, which support the manufacturing of optimized panels by tailoring their strength in function of their needs.This article presents a mechanical characterization of friction stir welds of last generation aluminum-lithium alloys, including tailor welded blanks with different thicknesses, with potential applications in aeronautical and aerospace components. Mechanical characterization with crack initiation and fatigue crack growth tests were included in this study for an enhanced assessment of these alloys behavior, and was preceded by welding parameter calibration.
机译:对于安全关键部件(例如机身)的结构设计,需要对材料和接头特性进行全面表征。这种表征必须考虑到准确设计所需的大量变量,以确保飞机产品生命周期的不同阶段中的结构完整性。该表征中最重要的变量之一是机身寿命期间的循环载荷引起的疲劳行为。采用焊接工艺代替航空结构中的铆钉接头是一种有吸引力的选择,因为它允许接头应力集中点较少并且可以有效地应用而不会使两个连接部分重叠(对接配置),从而减轻了连接重量。重量的减轻对生产成本的影响很小,但是对生命周期成本的影响却很大。搅拌摩擦是航空结构中最吸引人的焊接工艺,因为它被证明在应用于铝合金时会产生具有优异性能的接头,并且由于它是半固态工艺,因此可以处理硬化的沉淀铝合金。此外,这种连接过程允许将具有不同厚度的不同材料和板连接在一起,从而创建量身定制的焊接毛坯,从而通过根据需求调整其强度来支持优化板的制造。本文介绍了摩擦搅拌的机械特性上一代铝锂合金的焊接,包括厚度不同的定制焊接毛坯,在航空和航天部件中的潜在应用。这项研究包括通过裂纹萌生和疲劳裂纹扩展测试进行机械表征,以增强对这些合金行为的评估,并在焊接参数校准之前进行。

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