首页> 外文期刊>Journal of Materials Engineering and Performance >The Effects of Hydroxyapatite Addition on the Properties of the Mechanically Alloyed and Sintered Mg-RE-Zr Alloy
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The Effects of Hydroxyapatite Addition on the Properties of the Mechanically Alloyed and Sintered Mg-RE-Zr Alloy

机译:羟基磷灰石添加量对机械合金化烧结Mg-RE-Zr合金性能的影响

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摘要

This paper discusses the influence of the chemical composition on the microstructure, mechanical and corrosion properties of mechanically alloyed and sintered (Mg-4Y-5.5Dy-0.5Zr)-x wt.% HA composites. Mechanical alloying for 25 h of the Mg-4Y-5.5Dy-0.5Zr composition, followed by sintering under argon at 550 A degrees C for 2 h, led to the formation of a bulk alloy with an ultrafine grained microstructure. With the increase of the hydroxyapatite content in the (Mg-4Y-5.5Dy-0.5Zr)-x wt.% HA composite, a reduction of the grain sizes of the bulk material was noticeable. In the case of the bulk (Mg-4Y-5.5Dy-0.5Zr)-10 wt.% HA composite, the grain sizes of approx. 60 nm have been recorded by atomic force microscopy. The final microstructure of the synthesized composites strongly influenced the mechanical and corrosion properties. The Mg-4Y-5.5Dy-0.5Zr alloy was characterized by higher average values of Young's modulus (36.6 GPa). In the case of the (Mg-4Y-5.5Dy-0.5Zr)-5 wt.% HA scaffolds with the porosity of 48%, the Young's modulus was equal to 7.1 GPa. The (Mg-4Y-5.5Dy-0.5Zr)-10 wt.% HA composite was more corrosion resistant (I (c) = 5.849 x 10(-5) A cm(-2), E (c) = -1.565 V versus SCE) than Mg-4Y-5.5Dy-0.5Zr alloy (I (c) = 4.838 x 10(-4) A cm(-2), E (c) = -1.555 V versus SCE). The influence of hydrofluoric acid treatment on the corrosion behavior of the (Mg-4Y-5.5Dy-0.5Zr)-5 wt.% HA composite was also investigated. The electrochemical test showed that the corrosion resistance of fluoride-treated specimens was higher, compared with the untreated samples in the Ringer's solution. In conclusion, fluoride-treated (Mg-4Y-5.5Dy-0.5Zr)-HA composites are biodegradable materials with adjustable mechanical and corrosive properties.
机译:本文讨论了化学成分对机械合金化和烧结(Mg-4Y-5.5Dy-0.5Zr)-x wt。%HA复合材料的微观结构,力学性能和腐蚀性能的影响。机械合金化25 h的Mg-4Y-5.5Dy-0.5Zr成分,然后在550 A的氩气下烧结2 h,导致形成了具有超细晶粒组织的块状合金。随着(Mg-4Y-5.5Dy-0.5Zr)-x wt。%HA复合材料中羟基磷灰石含量的增加,块状材料的晶粒尺寸明显减小。对于块状(Mg-4Y-5.5Dy-0.5Zr)-10 wt。%HA复合材料,其晶粒尺寸约为通过原子力显微镜记录了60nm。合成复合材料的最终微观结构极大地影响了机械性能和腐蚀性能。 Mg-4Y-5.5Dy-0.5Zr合金的特征在于较高的杨氏模量平均值(36.6 GPa)。在(Mg-4Y-5.5Dy-0.5Zr)-5 wt。%HA支架的孔隙率为48%的情况下,杨氏模量等于7.1 GPa。 (Mg-4Y-5.5Dy-0.5Zr)-10 wt。%HA复合材料更耐腐蚀(I(c)= 5.849 x 10(-5)A cm(-2),E(c)= -1.565与Mg-4Y-5.5Dy-0.5Zr合金相比(V(SCE))(I(c)= 4.838 x 10(-4)A cm(-2),E(c)= -1.555 V(SCE))。还研究了氢氟酸处理对(Mg-4Y-5.5Dy-0.5Zr)-5 wt%HA复合材料腐蚀行为的影响。电化学测试表明,与在林格氏液中未处理的样品相比,经氟化物处理的样品的耐腐蚀性更高。总之,氟化物处理的(Mg-4Y-5.5Dy-0.5Zr)-HA复合材料是可生物降解的材料,具有可调节的机械和腐蚀性。

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