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Nickel based superalloy welding practices for industrial gas turbine applications

机译:用于工业燃气轮机应用的镍基高温合金焊接方法

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摘要

The continued drive for increased efficiency, performance and reduced costs for industrial gas turbine engines demands extended use of high strength-high temperature capability materials, such as nickel based superalloys. To satisfy the requirements of the component design and manufacturing engineers, these materials must be capable of being welded in a satisfactory manner. The present paper describes the characteristic defects found as a result of welding the more difficult, highly alloyed materials and reviews a number of welding processes used in the manufacture and repair of nickel alloy components. These include gas tungsten arc (GTA) and electron beam (EB) welding, laser powder deposition and friction welding. Many of the more dilute nickel based alloys are readily weldable using conventional GTA processes; however, high strength, precipitation hardened materials are prone to heat affected zone and strain age cracking defect formation. A number of factors are found to affect the propensity for defects: composition (aluminium and titanium content), grain size, pre- and post-weld heat treatment, as well as the welding process itself (control of heat input and traverse speed). Process parameter identification is still largely empirical and a fuller understanding of the joining processes is dependent upon the development and application of more sophisticated numerical modelling techniques.
机译:为了提高工业燃气涡轮发动机的效率,性能和降低成本的持续动力,要求扩展使用高强度-高温能力的材料,例如镍基超级合金。为了满足组件设计和制造工程师的要求,这些材料必须能够以令人满意的方式进行焊接。本文描述了由于焊接较困难的,高度合金化的材料而发现的特征缺陷,并回顾了用于镍合金部件制造和维修的许多焊接工艺。这些包括气体钨极电弧(GTA)和电子束(EB)焊接,激光粉末沉积和摩擦焊接。使用常规GTA工艺可以轻松焊接许多更稀薄的镍基合金。但是,高强度,沉淀硬化的材料容易受到热影响区和应变时效裂纹的形成。已发现许多影响缺陷倾向的因素:成分(铝和钛含量),晶粒尺寸,焊前和焊后热处理以及焊接工艺本身(控制热量输入和横移速度)。工艺参数的识别仍然主要依靠经验,对连接工艺的更全面了解取决于更复杂的数值建模技术的发展和应用。

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