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稀土元素钇改性的镁铝锌合金:微观结构、降解性能与硬度

Rare Earth Element Yttrium Modified Mg-Al-Zn Alloy: Microstructure, Degradation Properties and Hardness.

作者信息

Liu Long, Yuan Fulai, Zhao Mingchun, Gao Chengde, Feng Pei, Yang Youwen, Yang Sheng, Shuai Cijun

机构信息

State Key Laboratory of High Performance Complex Manufacturing, Central South University, Changsha 410083, China.

Health Management Center, Xiangya Hospital, Central South University, Changsha 410008, China.

出版信息

Materials (Basel). 2017 Apr 28;10(5):477. doi: 10.3390/ma10050477.

Abstract

The overly-fast degradation rates of magnesium-based alloys in the biological environment have limited their applications as biodegradable bone implants. In this study, rare earth element yttrium (Y) was introduced into AZ61 magnesium alloy (Mg-6Al-1Zn wt %) to control the degradation rate by laser rapid melting. The results showed that the degradation rate of AZ61 magnesium alloy was slowed down by adding Y. This was attributed to the reduction of MgAl phase and the formation of Al₂Y phase that has a more active potential, which decreased galvanic corrosion resulting from its coupling with the anodic matrix phase. Meanwhile, the hardness increased as Y contents increased due to the uniform distribution of the Al₂Y and MgAl phases. However, as the Y contents increased further, the formation of excessive Al₂Y phase resulted in the increasing of degradation rate and the decreasing of hardness due to its agglomeration.

摘要

镁基合金在生物环境中过快的降解速率限制了它们作为可生物降解骨植入物的应用。在本研究中,通过激光快速熔化将稀土元素钇(Y)引入AZ61镁合金(Mg-6Al-1Zn wt%)中以控制其降解速率。结果表明,添加Y后AZ61镁合金的降解速率减慢。这归因于MgAl相的减少以及具有更活泼电位的Al₂Y相的形成,这减少了其与阳极基体相耦合所导致的电偶腐蚀。同时,由于Al₂Y相和MgAl相的均匀分布,随着Y含量的增加硬度增大。然而,随着Y含量进一步增加,过量Al₂Y相的形成由于其团聚导致降解速率增加和硬度降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/64a0/5459074/0275d74faffc/materials-10-00477-g001.jpg

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