Mechanical Testing of Additively Manufactured Superalloy Lugs

S. Roychowdhury, H. Karlsson, B. Henriksson, P. Carlson
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Abstract

Additively manufactured parts, in spite of their many advantages, face substantial challenges on the path towards certification. This challenge is more pronounced in the quality-demanding aviation industry, where the safety considerations are paramount. A major reason for this challenge is the lack of history associated with additively built parts compared to the traditional cast and wrought components. In assessing the structural integrity of cast and wrought components, material properties obtained from laboratory coupon tests are routinely applied for design calculations of large components. However, for AM parts, questions remain over transferability of properties over multiple length scales due to possible variations in material chemistry, microstructure, and defect. In this work, this issue is investigated by conducting mechanical tests on small simplified lugs of nickel-based superalloy Haynes 282. The lugs are produced by the laser powder bed fusion process. After appropriate heat treatment and machining operations, the lugs are subjected to strength, low cycle fatigue, and crack propagation tests. Multiple tests are carried out in order to assess repeatability. Design calculations are performed to assess whether the test results can be predicted with standard methods. The results in the current work generate confidence in predictable, repeatable behavior of the AM built lugs. Continuation of this approach over larger length scales has the potential to build enough confidence so that additively manufactured parts can be used in load-bearing structural elements of the aircraft engine.
增材制造高温合金凸耳的力学试验
尽管增材制造的零件具有许多优势,但在通往认证的道路上面临着巨大的挑战。这一挑战在对质量要求很高的航空业更为明显,因为在航空业,安全考虑至关重要。这一挑战的一个主要原因是,与传统的铸造和锻造部件相比,缺乏与增材制造部件相关的历史。在评估铸件和锻件的结构完整性时,从实验室接头试验中获得的材料性能通常用于大型部件的设计计算。然而,对于增材制造零件,由于材料化学、微观结构和缺陷的可能变化,在多个长度尺度上性能的可转移性仍然存在问题。本文通过对Haynes 282镍基高温合金的小型简化凸耳进行力学试验来研究这一问题。耳片采用激光粉末床熔合工艺生产。经过适当的热处理和机加工操作后,耳片要进行强度、低周疲劳和裂纹扩展测试。为了评估可重复性,进行了多次测试。进行设计计算以评估是否可以用标准方法预测试验结果。当前工作的结果产生了对增材制造凸耳可预测、可重复行为的信心。在更大的长度尺度上继续采用这种方法有可能建立足够的信心,从而使增材制造的零件可以用于飞机发动机的承重结构元件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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