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Mechanical Properties Biodegradation and Biocompatibility of Ultrafine Grained Magnesium Alloy WE43

机译:超细晶粒镁合金WE43的力学性能生物降解性和生物相容性

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摘要

In this work, the effect of an ultrafine-grained (UFG) structure obtained by multiaxial deformation (MAD) on the mechanical properties, fatigue strength, biodegradation, and biocompatibility in vivo of the magnesium alloy WE43 was studied. The grain refinement down to 0.93 ± 0.29 µm and the formation of Mg Nd phase particles with an average size of 0.34 ± 0.21 µm were shown to raise the ultimate tensile strength to 300 MPa. Besides, MAD improved the ductility of the alloy, boosting the total elongation from 9% to 17.2%. An additional positive effect of MAD was an increase in the fatigue strength of the alloy from 90 to 165 MPa. The formation of the UFG structure also reduced the biodegradation rate of the alloy under both in vitro and in vivo conditions. The relative mass loss after six weeks of experiment was 83% and 19% in vitro and 46% and 7% in vivo for the initial and the deformed alloy, respectively. Accumulation of hydrogen and the formation of necrotic masses were observed after implantation of alloy specimens in both conditions. Despite these detrimental phenomena, the desired replacement of the implant and the surrounding cavity with new connective tissue was observed in the areas of implantation.
机译:在这项工作中,研究了通过多轴变形(MAD)获得的超细晶粒(UFG)结构对镁合金WE43的力学性能,疲劳强度,生物降解性和体内生物相容性的影响。晶粒细化至0.93±0.29 µm,形成平均尺寸为0.34±0.21 µm的Mg Nd相颗粒,可将极限抗拉强度提高至300 MPa。此外,MAD改善了合金的延展性,使总伸长率从9%提高到17.2%。 MAD的另一个积极作用是使合金的疲劳强度从90 MPa增加到165 MPa。 UFG结构的形成还降低了合金在体外和体内条件下的生物降解速率。实验六周后,初始合金和变形合金的相对质量损失在体外分别为83%和19%,在体内分别为46%和7%。在两种条件下植入合金样品后,均观察到氢气的积累和坏死物质的形成。尽管存在这些有害现象,但是在植入区域中观察到了用新的结缔组织对植入物和周围腔体的期望替换。

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