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Design of novel materials for additive manufacturing - Isotropic microstructure and high defect tolerance

机译:用于增材制造的新型材料的设计-各向同性的微观结构和高缺陷耐受性

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摘要

Electron Beam Melting (EBM) is a powder-bed additive manufacturing technology enabling the production of complex metallic parts with generally good mechanical properties. However, the performance of powder-bed based additively manufactured materials is governed by multiple factors that are difficult to control. Alloys that solidify in cubic crystal structures are usually affected by strong anisotropy due to the formation of columnar grains of preferred orientation. Moreover, processing induced defects and porosity detrimentally influence static and cyclic mechanical properties. The current study presents results on processing of a metastable austenitic CrMnNi steel by EBM. Due to multiple phase transformations induced by intrinsic heat-treatment in the layer-wise EBM process the material develops a fine-grained microstructure almost without a preferred crystallographic grain orientation. The deformation-induced phase transformation yields high damage tolerance and, thus, excellent mechanical properties less sensitive to process-induced inhomogeneities. Various scan strategies were applied to evaluate the width of an appropriate process window in terms of microstructure evolution, porosity and change of chemical composition.
机译:电子束熔化(EBM)是粉末床增材制造技术,可生产具有一般良好机械性能的复杂金属零件。但是,粉末床基增材制造的性能受难以控制的多个因素支配。由于形成了优选取向的柱状晶粒,在立方晶体结构中凝固的合金通常会受到强各向异性的影响。此外,加工引起的缺陷和孔隙率不利地影响静态和循环机械性能。当前的研究提出了利用EBM加工亚稳态奥氏体CrMnNi钢的结果。由于在层状EBM工艺中由固有热处理引起的多相转变,该材料几乎没有优选的结晶晶粒取向,却形成了细晶粒的微观结构。变形引起的相变产生高的损伤容忍度,因此,优异的机械性能对过程引起的不均匀性不敏感。应用了各种扫描策略,以根据微观结构演变,孔隙率和化学成分的变化来评估适当工艺窗口的宽度。

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