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首页> 外文期刊>Lasers in engineering >Supersaturated Solid Solution of Mg in Fe Produced by Mechanical Alloying Followed by Selective Laser Melting (SLM) to Accelerate Degradation for Biomedical Applications
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Supersaturated Solid Solution of Mg in Fe Produced by Mechanical Alloying Followed by Selective Laser Melting (SLM) to Accelerate Degradation for Biomedical Applications

机译:通过机械合金化产生的Mg中的超饱和固溶体,然后选择性激光熔融(SLM)加速生物医学应用的降解

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摘要

Solid solution of Mg in Fe is an effective strategy to accelerate degradation for artificial bone applications while it is extremely difficult to realize since the melting point of Fe greatly exceeds the boiling point of Mg. Herein we present a supersaturated solid solution of Mg in Fe which was achieved by mechanical alloying and then consolidated by selective laser melting (SLM). First, solid solution of Mg in Fe was accomplished by mechanical alloying in the condition of elements inter-dispersion at low temperature. Then the alloyed powders were rapidly consolidated by SLM to avoid the segregation and evaporation of Mg in the case of extremely short melting and cooling time. X-ray diffraction (XRD) results for the Fe-Mg powders showed that Mg peaks disappeared while Fe peaks broadened and shifted to a low angle after milling for 40 hours, indicating the successful solution of Mg in Fe; consequently, the Fe-Mg alloy presented a much lower potential of -0.805 V than that of alloy at -0.542 V without milling, which increased degradation rate by 2.74 times after immersion for 21 days. MG-63 cells proliferated more rapidly, indicating good cytocompatibility, which showed potentials for artificial bone applications.
机译:Mg IN Fe的固体溶液是加速人造骨应用的降解的有效策略,同时由于Fe的熔点大大超过Mg的沸点,因此难以实现。在此,我们介绍了通过机械合金化实现的Mg中的超饱和固溶体,然后通过选择性激光熔化(SLM)固结。首先,通过在低温下分散的元素间的元件条件下机械合金化完成Mg In Fe的固溶溶液。然后通过SLM迅速固结合金粉末,以避免在极短的熔融和冷却时间的情况下拆卸mg。 Fe-Mg粉末的X射线衍射(XRD)结果表明,Mg峰消失,而Fe峰在研磨后换成40小时后向低角度移至低角度,表明MG在Fe中的成功溶液;因此,Fe-Mg合金在没有研磨的情况下呈现比-0.542V的合金的潜力远低于-0.805V的电位。 Mg-63细胞更快地增殖,表明良好的细胞组合,其显示了人造骨应用的潜力。

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