Hu Yunpeng, Dong Delong, Wang Xiangyu, Chen Hongtang, Qiao Yang
School of Mechanical Engineering, University of Jinan, Jinan 250022, China.
Materials (Basel). 2021 Apr 8;14(8):1855. doi: 10.3390/ma14081855.
The magnesium alloys Mg-0.5Mn-2Zn, Mg-1.0Mn-2Zn, and Mg-1.5Mn-2Zn (wt.%) with potential biomedical applications, synthesized by powder metallurgy, were investigated to evaluate the influence of manganese content on their microstructure, mechanical properties, and corrosion resistance. The results show that Mg-Mn-Zn alloys prepared by powder metallurgy reached the maximum compressive stress of 316 MPa and the maximum bending strength of 186 MPa, showing their good resistance to compression and bending, and meeting the mechanical properties required for the human bone plate. With an increase in manganese content, the corrosion resistance improved. In the polarization curve, the maximum positive shift of corrosion potential was 92 mV and the maximum decrease of corrosion current density was 10.2%. It was concluded that, of the alloys tested, Mg-1.0Mn-2.0Zn (wt.%) had the best overall performance, and its maximum compressive stress force and corrosion current density reached 232.42 MPa and 1.32 × 10 A·cm, respectively, being more suitable for service in human body fluids.
对通过粉末冶金法合成的具有潜在生物医学应用价值的镁合金Mg-0.5Mn-2Zn、Mg-1.0Mn-2Zn和Mg-1.5Mn-2Zn(重量百分比)进行了研究,以评估锰含量对其微观结构、力学性能和耐腐蚀性的影响。结果表明,通过粉末冶金法制备的Mg-Mn-Zn合金的最大压缩应力为316 MPa,最大弯曲强度为186 MPa,显示出其良好的抗压和抗弯性能,满足人体骨板所需的力学性能。随着锰含量的增加,耐腐蚀性提高。在极化曲线中,腐蚀电位的最大正向偏移为92 mV,腐蚀电流密度的最大降低为10.2%。得出的结论是,在所测试的合金中,Mg-1.0Mn-2.0Zn(重量百分比)具有最佳的综合性能,其最大压缩应力和腐蚀电流密度分别达到232.42 MPa和1.32×10 A·cm,更适合在人体体液中使用。