Shi Qifeng, Wu Huishu, Gao Zhixian, Wang Dongsheng, Wang Jingwen, Yang Youwen, Li Runxia
College of Mechanical Engineering, Tongling University, Tongling 244000, China.
New Copper-Based Material Industry Generic Technology Research Center of Anhui Province, Tongling 244000, China.
Materials (Basel). 2023 Sep 27;16(19):6423. doi: 10.3390/ma16196423.
To further improve the mechanical properties and corrosion resistance of the biodegradable magnesium (Mg) alloy, the Mg-4Zn-0.5Sr-xAg alloy (x = 0.2 wt.%, 0.5 wt.%, 1.0 wt.%, and 2.0 wt.%) was smelted in vacuum under the protection of inert gas. The effect of the Ag content on the microstructure and mechanical properties of Mg-4Zn-0.5Sr was tested. The results show that the comprehensive properties of Mg-4Zn-0.5Sr-0.5Ag are best. The grain size of the Mg-4Zn-0.5Sr-0.5Ag alloy is minimal, that is, 83.28 μm. The average tensile strength (σ), yield strength (σ), elongation (ε), and hardness for the Mg-4Zn-0.5Sr-0.5Ag alloy is 168.00 MPa, 88.00 MPa, 12.20%, and 59.90 HV, respectively. To further improve the properties of cast Mg-4Zn-0.5Sr-0.5Ag alloy, extruding treatment was conducted. After extrusion deformation, the grain size of the alloy was significantly refined to 9 μm; at the same time, fine second phases were formed and evenly distributed in the matrix. And then, the mechanical properties of the alloy are significantly enhanced due to the effect of fine crystal strengthening and dispersion strengthening. The σ, σ, ε, and hardness value for the extruded Mg-4Zn-0.5Sr-0.5Ag alloy are 236.00 MPa, 212.00 MPa, 18.97%, and 65.42 HV, respectively. Under the synergistic action of adding the Ag element and extrusion treatment, the grain size of the alloy was significantly refined and the coarse second phase in the alloy became refined to disperse in the matrix, which benefits the formation of electric couples characterized as small cathode-large anode between the second phase and Mg matrix. During full immersion, corrosion products covered on the large anode surface could reduce the galvanic corrosion tendency.
为进一步提高可降解镁(Mg)合金的力学性能和耐腐蚀性,在惰性气体保护下于真空中熔炼Mg-4Zn-0.5Sr-xAg合金(x = 0.2 wt.%、0.5 wt.%、1.0 wt.%和2.0 wt.%)。测试了Ag含量对Mg-4Zn-0.5Sr组织和力学性能的影响。结果表明,Mg-4Zn-0.5Sr-0.5Ag的综合性能最佳。Mg-4Zn-0.5Sr-0.5Ag合金的晶粒尺寸最小,即83.28μm。Mg-4Zn-0.5Sr-0.5Ag合金的平均抗拉强度(σ)、屈服强度(σ)、伸长率(ε)和硬度分别为168.00 MPa、88.00 MPa、12.20%和59.90 HV。为进一步改善铸造Mg-4Zn-0.5Sr-0.5Ag合金的性能,进行了挤压处理。挤压变形后,合金的晶粒尺寸显著细化至9μm;同时,形成了细小的第二相并均匀分布在基体中。然后,由于细晶强化和弥散强化作用,合金的力学性能显著提高。挤压态Mg-4Zn-0.5Sr-0.5Ag合金的σ、σ、ε和硬度值分别为236.00 MPa、212.00 MPa、18.97%和65.42 HV。在添加Ag元素和挤压处理的协同作用下,合金的晶粒尺寸显著细化,合金中的粗大第二相细化并分散在基体中,这有利于在第二相与Mg基体之间形成小阴极-大阳极特征的电偶。在全浸过程中,覆盖在大阳极表面的腐蚀产物可降低电偶腐蚀倾向。