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How build angle and post-processing impact roughness and corrosion of additively manufactured 316L stainless steel

机译:如何构建角度和后处理的影响粗糙度和加瘾制造的316L不锈钢的腐蚀

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摘要

Additively manufactured austenitic stainless steels exhibit numerous microstructural and morphological differences compared to their wrought counterparts that will influence the metals corrosion resistance. The characteristic as-printed surface roughness of powder bed fusion (PBF) stainless steel parts is one of these morphological differences that increases the parts susceptibility to localized corrosion. This study experimentally determines the average surface roughness and breakdown potential (Eb) for PBF 316L in 6 surface finished states: as-printed, ground with SiC paper, tumble polished in abrasive media, electro-polished, chemically passivated, and the application of a contour/re-melt scan strategy. In general, a smaller average surface roughness led to a larger Eb. The smoothest surface treatments, ground and electro-polished conditions, led to Eb near the materials limit (~ 1.0 VAg/AgCl) while all other surface treatments exhibited significantly lower Eb (~ 0.3 VAg/AgCl) The build angle was also shown to impact surface roughness, where surfaces at high angles from the build direction resulted in larger roughness values, hence lower Eb.
机译:与其锻造的对手相比,含有加剧制造的奥氏体不锈钢表现出众多微观结构和形态差异,这将影响金属耐腐蚀性。粉末床融合(PBF)不锈钢部件的特征印刷表面粗糙度是这些形态差异之一,可以增加对局部腐蚀的易感性。本研究实验地确定了6种表面成品的PBF 316L的平均表面粗糙度和击穿电位(EB):用SiC纸,用SiC纸,在磨料介质,电抛光,化学钝化的抛光,以及应用的抛光轮廓/重新熔化扫描策略。通常,较小的平均表面粗糙度导致更大的EB。表面处理,地面和电抛光条件,导致EB靠近材料限制(〜1.0 vag / AgCl),虽然所有其他表面处理显着降低EB(〜0.3 vag / AgCl),构建角也显示为撞击表面粗糙度,其中来自构建方向高角度的表面导致较大的粗糙度值,因此降低EB。

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