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增材制造镍基高温合金中不存在动态应变时效。

Absence of dynamic strain aging in an additively manufactured nickel-base superalloy.

机构信息

Department of Materials Science and Engineering, Pennsylvania State University, University Park, PA, 16802, USA.

Department of Mechanical Engineering, Pennsylvania State University, University Park, PA, 16802, USA.

出版信息

Nat Commun. 2018 May 25;9(1):2083. doi: 10.1038/s41467-018-04473-5.

Abstract

Dynamic strain aging (DSA), observed macroscopically as serrated plastic flow, has long been seen in nickel-base superalloys when plastically deformed at elevated temperatures. Here we report the absence of DSA in Inconel 625 made by additive manufacturing (AM) at temperatures and strain rates where DSA is present in its conventionally processed counterpart. This absence is attributed to the unique AM microstructure of finely dispersed secondary phases (carbides, N-rich phases, and Laves phase) and textured grains. Based on experimental observations, we propose a dislocation-arrest model to elucidate the criterion for DSA to occur or to be absent as a competition between dislocation pipe diffusion and carbide-carbon reactions. With in situ neutron diffraction studies of lattice strain evolution, our findings provide a new perspective for mesoscale understanding of dislocation-solute interactions and their impact on work-hardening behaviors in high-temperature alloys, and have important implications for tailoring thermomechanical properties by microstructure control via AM.

摘要

动态应变时效(DSA)在高温下进行塑性变形时,镍基高温合金中宏观上表现为锯齿状塑性流动,长期以来一直受到关注。在这里,我们报告了在增材制造(AM)制造的 Inconel 625 中不存在 DSA,而在传统加工的对应物中,DSA 存在于温度和应变速率下。这种不存在归因于独特的 AM 微观结构,其中精细分散的二次相(碳化物、富氮相和 Laves 相)和织构晶粒。基于实验观察,我们提出了位错捕获模型,以阐明 DSA 发生或不存在的标准,这是位错管扩散和碳化物-碳反应之间的竞争。通过原位中子衍射研究晶格应变演化,我们的发现为位错-溶质相互作用及其对高温合金加工硬化行为的影响提供了一种新的介观理解,并且通过 AM 对微观结构控制来调整热机械性能具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d608/5970170/ea223b7f53ad/41467_2018_4473_Fig1_HTML.jpg

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