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Microstructural characterisation and in-situ straining of additive-manufactured X3NiCoMoTi 18-9-5 maraging steel

机译:增材制造的X3NiCoMoTi 18-9-5马氏体时效钢的显微组织表征和原位应变

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Additive manufacturing (AM) is an advanced technology used for the manufacture of products that have intricate shapes and complex inner geometries. Various metal powders can be used for AM; however, the resulting microstructures will differ profoundly from those obtained via the casting, heat treatment, or thermomechanical processing of metals with the same chemical composition. This is because of the rapid heating and cooling rates used during three-dimensional (3D) printing. Further complications arise from the repeated heating and cooling of some regions, which is owed to the step-by-step formation of the solidified layers. A powder consisting of 1.2709 (X3NiCoMoTi 18-9-5) low-carbon maraging steel was used in an AM experiment. Given the high residual stresses that exist within printed metals, a post-processing heat treatment is desirable to limit the risk of cracking. In this study, solution annealing and hardening treatments were applied to the printed samples to induce changes in their microstructures and mechanical properties. The mechanical properties and microstructures of the builds were characterised and compared to those of a bar of conventional steel with the same chemical composition. During tensile loading, the fracture that was initiated at the sites of metallurgical defects was observed in situ.
机译:增材制造(AM)是一种先进技术,用于制造形状复杂且内部几何形状复杂的产品。各种金属粉末均可用于增材制造;但是,最终的微观结构将与通过化学成分相同的金属的铸造,热处理或热机械加工获得的微观结构有很大不同。这是因为在三维(3D)打印过程中使用了快速的加热和冷却速率。某些区域的反复加热和冷却会进一步增加复杂性,这归因于逐步形成的固化层。在AM实验中使用了由1.2709(X3NiCoMoTi 18-9-5)低碳马氏体时效钢组成的粉末。考虑到印刷金属内存在的高残余应力,需要进行后处理热处理以限制开裂的风险。在这项研究中,固溶退火和硬化处理应用于印刷样品,以诱导其微观结构和机械性能的变化。对铸件的机械性能和微观结构进行了表征,并与化学成分相同的传统钢棒进行了比较。在拉伸载荷过程中,在原位观察到了在冶金缺陷部位开始的断裂。

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