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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Microstructure evolution, mechanical response and underlying thermodynamic mechanism of multi-phase strengthening WC/Inconel 718 composites using selective laser melting
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Microstructure evolution, mechanical response and underlying thermodynamic mechanism of multi-phase strengthening WC/Inconel 718 composites using selective laser melting

机译:多相强化WC / Inconel 718复合材料使用选择性激光熔化的微观结构演化,机械响应和底层热力学机理

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For further understanding the underlying relations of microstructure evolution on mechanical properties of Inconel 718 composites reinforced by WC particles using selective laser melting (SLM), the influence of laser scanning speed on microstructure growth, evolution mechanism and mechanical properties was analyzed combining with experiments and mesoscopic simulations. The obtained results apparently reveal that the Ni2W4C primary dendrites exhibit with a reduced trunk length as well as the decreasing length and spacing of dendrite arms following an increasing scanning speed according to the combining analysis of X-ray diffraction spectrum and EDS, due to the significant reduction of operating temperature and the resultantly weak atoms diffusion rate and thermodynamic driving force of dendrite growth. Meanwhile, the (Nb, M)C carbides (M representing Ni, Cr, W, Fe, Ti) generated in gamma-Ni matrix are inversely refined as elevating the laser scanning speed. Both the experimental microhardness and ultimate tensile strength of SLM-processed WC/Inconel 718 composite is, therefore, evidently enhanced with a slight reduction of elongation as successively increasing the scanning speed, attributing to the combined strengthening effects of refined multi-phase of Ni2W4C primary dendrite and granular (Nb, M)C carbides. Furthermore, the underlying evolution mechanism of composite microstructure with variable processing conditions is discussed. (C) 2018 Elsevier B.V. All rights reserved.
机译:为了进一步了解通过选择性激光熔化(SLM)加强的Inconel 718复合材料的机械性能的微观结构演化的基础关系,分析了与实验和介观的基组织生长,进化机理和机械性能的激光扫描速度对微观结构的影响模拟。所获得的结果显然揭示了Ni2W4C初级树枝状物的表现出降低的树干长度以及根据X射线衍射谱和EDS的组合分析,在增加扫描速度之后,由于X射线衍射光谱和EDS的组合分析,枝晶臂的长度和间隔的减小和间隔减少工作温度和产生的弱原子扩散速率和树突生长的热力学驱动力。同时,在γ-Ni矩阵中产生的(Nb,m)c碳化物(代表Ni,Cr,W,Fe,Ti)倒置为升高激光扫描速度。因此,SLM加工的WC / Inconel 718复合材料的实验性微硬度和最终拉伸强度均显然增强,随着伸长的伸长率,伸长率降低,呈扫描速度,归因于Ni2W4C初级的精制多相的组合强化作用树突和粒状(Nb,m)c碳化物。此外,讨论了具有可变加工条件的复合微观结构的潜在演化机制。 (c)2018年elestvier b.v.保留所有权利。

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