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Evolution of the microstructure and mechanical properties of Mg-matrix in situ composites during spark plasma sintering

机译:火花等离子体烧结过程中Mg基体原位复合材料微观结构和力学性能的演变

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摘要

Biomedical Mg-matrix in situ composites were fabricated from Mg and ZnO powder via ball mixing and spark plasma sintering. XRD analysis indicated that in situ reactions occurred during sintering process producing MgO, Zn and Mg-Zn intermetallic compounds. The formation of in situ products strongly contributed to the enhancement of the strength and the ductility of the fabricated composites compared with pure Mg. Specifically, the highest strength at 380MPa was observed in the Mg-20 wt-% ZnO composite, and the highest failure strain at 12.9% was achieved in the Mg-5 wt-% composite compared with the 156 MPa strength and the 10.2% failure strain of pure Mg. In addition, the strengths of as-produced composites are as double as that of cortical bones. With these superior mechanical properties, the fabricated composites are considered as very potential candidate for biomedical load-bearing applications.
机译:通过球形混合和火花等离子体烧结,由Mg和ZnO粉末制成生物医学Mg基体原位复合材料。 XRD分析表明,在烧结过程中发生了原位反应,生成了MgO,Zn和Mg-Zn金属间化合物。与纯Mg相比,原位产物的形成极大地增强了复合材料的强度和延展性。具体而言,在Mg-20 wt%的ZnO复合材料中观察到了380MPa的最高强度,与156 MPa强度和10.2%的破坏相比,在Mg-5 wt%的复合物中达到了12.9%的最高破坏应变。纯镁菌株。此外,复合材料的强度是皮质骨的强度的两倍。凭借这些优异的机械性能,制成的复合材料被认为是生物医学承重应用中非常有潜力的候选材料。

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