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An Investigation on the role of crystallographic texture on anisotropic electrochemical behavior of a commercially pure nickel manufactured by laser powder bed fusion (L-PBF) additive manufacturing

机译:结晶纹理对激光粉床融合(L-PBF)添加剂制造商业纯镍的各向异性电化学行为的研究

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The layer-wise deposition of the laser powder bed fusion (L-PBF) process offers a tailorable microstructure with anisotropic properties. This research aimed to investigate the contribution of crystallographic texture on the anisotropic electrochemical/corrosion behavior of a L-BPF processed commercially pure nickel (Ni) cube along surfaces oriented parallel and perpendicular to the building direction. In order to exclusively assess the role of crystallographic texture on the corrosion behavior, the electrochemical measurements were performed on different surfaces of the L-PBF processed cube in alkaline and acidic chloride-free solutions. Orientation microscopy analysis showed that the morphology of grains along the parallel surface to the building direction was columnar, and their crystallographic orientation distribution was uniform. In contrast, the morphology of grains on the surface aligned normal to the building direction was equiaxed and highly oriented toward [110]. This bias in the orientation distribution led to the highest residual affinity for oxidation in comparison to the other planes in the FCC (Face Centered Cubic) crystal structure. In the case of 1 M NaOH solution, the hydroxide layer formed at the exposed surface did not effectively control the cation ejection from the surface. Also, surfaces oriented normal to the building direction, with lower surface atomic density, showed an elevated dissolution rate. Conversely, in the case of 1 M H2SO4 solution, a more integrated and thicker oxide film formed in comparison to the surface aligned parallel to the building direction. This fact led to reduced surface dissolution. This study shows that engineering the topology and microstructure based on the desired properties can remarkably promote the performance of additively manufactured materials in extreme environments. (C) 2020 Elsevier Ltd. All rights reserved.
机译:激光粉末融合(L-PBF)工艺的层面沉积提供具有各向异性特性的可占状的微观结构。该研究旨在探讨晶体纹理对L-BPF的直观电化学/腐蚀行为的贡献,其L-BPF处理的商业纯镍(Ni)立方体沿着平行的和垂直于建筑方向的表面。为了完全评估结晶纹理对腐蚀行为的作用,在L-PBF加工立方体的不同表面上进行电化学测量,在碱性和酸性氯化物溶液中的不同表面上进行。取向显微镜分析表明,沿着平行表面到建筑方向的颗粒形态是柱状的,并且它们的结晶取向分布是均匀的。相反,正常呈现正常与建筑方向对齐的表面上的晶粒的形态并高度导向至[110]。与FCC(面为中心立方体)晶体结构中的其他平面相比,定向分布中的这种偏置导致了对氧化的最高残余亲和力。在1M NaOH溶液的情况下,在暴露表面处形成的氢氧化物层没有有效地控制来自表面的阳离子喷射。而且,具有较低表面原子密度的建筑方向正常定向的表面显示出升高的溶解速率。相反,在1M H 2 SO 4溶液的情况下,与平行于建筑方向对齐的表面相比,形成更集成和更厚的氧化膜。这一事实导致表面溶解减小。本研究表明,工程基于所需特性的拓扑和微观结构可以显着地促进极端环境中瘾地制造材料的性能。 (c)2020 elestvier有限公司保留所有权利。

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