4.8 Article

Effect of in-situ layer-by-layer rolling on the microstructure, mechanical properties, and corrosion resistance of a directed energy deposited 316L stainless steel

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ADDITIVE MANUFACTURING
卷 55, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.addma.2022.102863

关键词

316L stainless steel; Rolling; Porosity closure; Direct energy deposition; Hybrid manufacturing

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A novel micro-rolling set-up was used in the study to achieve in-situ grain refinement and porosity closure in 316L stainless steel parts. Micro-rolling resulted in increased part density, improved internal grain substructure, and increased hardness and yield strength. The corrosion resistance of the alloy was not affected, and ductility was maintained.
In this study a novel micro-rolling set-up was installed on a directed energy deposition additive manufacturing system to achieve in-situ grain refinement and porosity closure. A 316 L stainless steel was investigated and it was found that even low micro-rolling loads were capable of increasing the part density from 99.7% to 99.98%. Martensitic transformations as a result of micro-rolling were not detected. Additionally, using a combination of X-ray diffraction and optical, scanning, and transmission electron microscopy techniques, it was found that micro-rolling resulted in a finer internal grain substructure, twinning, an increase in dislocation density, a reduction of grain sizes, a refinement of the cellular structures, and a randomization of the crystallographic orientation distribution. This resulted in an increase in hardness by up to - 23% and in yield strength by up to 31%. More importantly, due to pore closure, improved mechanical properties were achieved without compromising ductility. As the segregation of solute elements to cell boundaries was also not affected by micro-rolling, the excellent corrosion resistance of the alloy was generally retained. Thus, this approach allows the fabrication of denser, stronger and harder 316 L parts without the need for additional post-processing steps such as hot isostatic pressing or thermo-mechanical treatments, while also maintaining ductility and corrosion performance.

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