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Additively Manufactured Inconel 718 : Microstructures and Mechanical Properties

机译:添加剂制造的Inconel 718:微结构和机械性能

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摘要

Additive manufacturing (AM), also known as 3D printing, has gained significant interest in aerospace, energy, automotive and medical industries due to its capabilities of manufacturing components that are either prohibitively costly or impossible to manufacture by conventional processes. Among the various additive manufacturing processes for metallic components, electron beam melting (EBM) and selective laser melting (SLM) are two of the most widely used powder bed based processes, and have shown great potential for manufacturing high-end critical components, such as turbine blades and customized medical implants. The futures of the EBM and SLM are doubtlessly promising, but to fully realize their potentials there are still many challenges to overcome. Inconel 718 (IN718) is a nickel-base superalloy and has impressive combination of good mechanical properties and low cost. Though IN718 is being mostly used as a turbine disk material now, the initial introduction of IN718 was to overcome the poor weldability of superalloys in 1960s, since sluggish precipitation of strengthening phases λ’/λ’’ enables good resistance to strain-age cracking during welding or post weld heat treatment. Given the similarity between AM and welding processes, IN718 has been widely applied to the metallic AM field to facilitate the understandings of process-microstructure-property relationships. The work presented in this licentiate thesis aims to better understand microstructures and mechanical properties EBM and SLM IN718, which have not been systematically investigated. Microstructures of EBM and SLM IN718 have been characterized with scanning electron microscopy (SEM), transmission electron microscopy (TEM) and correlated with the process conditions. Monotonic mechanical properties (e.g., Vickers microhardness and tensile properties) have also been measured and rationalized with regards to the microstructure evolutions before and after heat treatments. For EBM IN718, the results show the microstructure is not homogeneous but dependant on the location in the components, and the anisotropic mechanical properties are probably attributed to alignment of porosities rather than texture. Post heat treatment can slightly increase the mechanical strength compared to the as-manufactured condition but does not alter the anisotropy. SLM IN718 shows significantly different microstructure and mechanical properties to EBM IN718. The as-manufactured SLM IN718 has very fine dendritic microstructure and Laves phases in the interdendrites, and is “work-hardened” by the residual strains and dislocations present in the material. Mechanical properties are different between horizontally and vertically built samples, and heat treatment can minimize this difference. Results from this licentiate thesis provide the basis for the further research on the cyclic mechanical properties of EBM and SLM IN718, which would be the focus of following phase of the Ph.D. research.
机译:增材制造(AM),也称为3D打印,由于其制造零件的能力过高而无法通过常规方法制造,因此在航空航天,能源,汽车和医疗行业引起了极大的兴趣。在用于金属部件的各种增材制造工艺中,电子束熔化(EBM)和选择性激光熔化(SLM)是最广泛使用的基于粉末床的工艺中的两种,并且在制造高端关键部件(例如:涡轮叶片和定制的医疗植入物。 EBM和SLM的前景无疑是有希望的,但是要充分实现其潜力,仍然有许多挑战需要克服。 Inconel 718(IN718)是一种镍基高温合金,具有良好的机械性能和低成本的出色组合。尽管现在IN718被广泛用作涡轮盘材料,但IN718的最初引入是为了克服1960年代超级合金的可焊性差,因为强化相λ'/λ''的缓慢析出可在高温下抵抗应变时效开裂。焊接或焊后热处理。鉴于增材制造和焊接工艺之间的相似性,IN718已被广泛应用于金属增材制造领域,以促进对工艺-微观结构-性能关系的理解。本许可论文中提出的工作旨在更好地了解尚未系统研究的EBM和SLM IN718的微观结构和力学性能。 EBM和SLM IN718的微观结构已通过扫描电子显微镜(SEM),透射电子显微镜(TEM)进行了表征,并与工艺条件相关。关于热处理之前和之后的微结构演变,也已经测量并合理化了单调的机械性能(例如维氏显微硬度和拉伸性能)。对于EBM IN718,结果表明,微观结构不是均匀的,而是取决于部件中的位置,并且各向异性的机械性能可能归因于孔隙的排列而不是织构。与制造条件相比,后热处理可以稍微提高机械强度,但不会改变各向异性。 SLM IN718具有与EBM IN718明显不同的微观结构和机械性能。出厂时制造的SLM IN718具有非常好的树枝状微结构和枝晶中的Laves相,并且由于材料中存在的残余应变和位错而被“加工硬化”。水平和垂直构建的样品的机械性能不同,热处理可以使这种差异最小化。该许可论文的结果为进一步研究EBM和SLM IN718的循环力学性能提供了基础,而这将是下一阶段博士学位的重点。研究。

著录项

  • 作者

    Deng, Dunyong;

  • 作者单位
  • 年度 2018
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 入库时间 2022-08-20 21:07:00

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