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Thermal Stability of Aluminum Alloys

机译:铝合金的热稳定性

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摘要

Thermal stability, determining the material ability of retaining its properties at required temperatures over extended service time, is becoming the next frontier for aluminum alloys. Its improvement would substantially expand their range of structural applications, especially in automotive and aerospace industries. This report explains the fundamentals of thermal stability; definitions, the properties involved; and the deterioration indicators during thermal/thermomechanical exposures, including an impact of accidental fire, and testing techniques. For individual classes of alloys, efforts aimed at identifying factors stabilizing their microstructure at service temperatures are described. Particular attention is paid to attempts of increasing the current upper service limit of high-temperature grades. In addition to alloying aluminum with a variety of elements to create the thermally stable microstructure, in particular, transition and rare-earth metals, parallel efforts are explored through applying novel routes of alloy processing, such as rapid solidification, powder metallurgy and additive manufacturing, engineering alloys in a liquid state prior to casting, and post-casting treatments. The goal is to overcome the present barriers and to develop novel aluminum alloys with superior properties that are stable across the temperature and time space, required by modern designs.
机译:热稳定性,确定在延长服务时间的所需温度下保持其性能的材料能力,正在成为铝合金的下一个前沿。其改进将大大扩大其结构应用范围,特别是在汽车和航空航天行业。本报告说明了热稳定性的基础;定义,所涉及的属性;热/热机械曝光期间的劣化指示器,包括意外火灾的影响和测试技术。对于个别的合金类,描述了旨在识别稳定在维修温度下微观结构的因素的努力。需要特别注意的是,尝试增加高温等级的上层服务限制。除了具有多种元件的合金化铝外,特别是过渡和稀土金属外,通过应用新颖的合金加工途径来探索平行努力,例如快速凝固,粉末冶金和添加剂制造,在铸造之前液态的工程合金,以及铸造后处理。目标是克服目前的障碍并开发新型铝合金,其具有在现代设计所需的温度和时间空间上稳定的优异性能。

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