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Fabrication of Porous Mg-Ca-Zn Alloy by High Energy Milling for Bone Implants

机译:用高能铣削骨植入物的多孔Mg-Ca-Zn合金制备

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Biodegradable porous magnesium-based alloys are essential in hard tissue engineering, such as mechanical support during healing process, and disappear after completion of the healing process, avoiding the secondary surgery. The present study aims to fabricate Mg-Ca-Zn degradable metallic foam implant for domestically made bone replacement. The foam was introduced through the variation of TiH_2 addition as blowing agent that will create a large volume fraction of gas-filled pores during heating. A High-Energy-Milling (HEM) was performed by a horizontal rotating cylinder ball mill with a rotation speed of 130 rpm for 48 h, with the ratio of metallic powders: balls are 3:7 followed by a compacting process. Some samples were subjected to preheating at 450 °C for 2 h before sintering process to observe its effect on pore formation of the green compact, followed by sintering at the temperature of 550 and 650 °C for 3 h. Samples sintered at 650 °C showed profuse micro-cracks, due to uncontrollable release of H_2 gas in the liquid film creating pore rupture and MgO formation that detected from XRD analysis, that impedes the sintering process. While sintering at a lower temperature showed a dependence on preheating process. The preheated samples containing MgO suffered from micro-cracking, except for sample with 3 wt% of TiH_2, where TiH_2 can act as oxygen scavenger that hinders the formation of MgO. In contrast, all samples without preheating remained intact without obvious micro-cracks. Those samples have a comparable hardness value to that of the bone. The pores in the materials measured according to Archimedes procedure behave as gypsum. Thus concerning mechanical properties, the samples can be regarded as bone implants.
机译:可生物降解的多孔镁基合金在愈合过程中的硬组织工程中是必不可少的,例如在愈合过程完成后消失,避免继发手术。本研究旨在制造Mg-Ca-Zn可降解金属泡沫植入物,用于国内制造的骨骼更换。通过TiH_2的变化引入泡沫作为发泡剂,其在加热期间将产生大量的气体填充孔。通过水平旋转缸球磨机进行高能铣削(下摆),旋转速度为130rpm的旋转速度为48小时,金属粉末的比例:球是3:7,然后进行压实过程。在烧结过程之前,将一些样品进行在450℃下预热2小时,观察其对绿色孔的孔形成的影响,然后在550和650℃的温度下烧结3小时。在650℃下烧结的样品显示出丰富的微裂纹,由于在液体膜中不可控制的H_2气体释放,产生从XRD分析检测的孔隙破裂和MgO形成,从而阻止烧结过程。在较低温度下烧结显示对预热过程的依赖性。含有MgO的预热样品除了具有3wt%TiH_2的样品外,其中TiH_2可以充当氧气清除剂,阻碍了MgO的形成。相反,没有预热的所有样品都保持完好,没有明显的微裂纹。这些样品对骨骼的具有相当的硬度值。根据Archimedes程序测量的材料中的孔表现为石膏。因此,关于机械性能,样品可以被视为骨植入物。

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