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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >An investigation on the properties of injection-molded pure iron potentially for biodegradable stent application
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An investigation on the properties of injection-molded pure iron potentially for biodegradable stent application

机译:潜在用于生物降解支架的注模纯铁性能的研究

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Metal injection molding (MIM) is a near-net-shape manufacturing process suitable for the production of small size and complex-shape components. As a cost-effective and flexible manufacturing method, it may have distinct advantages over other methods when it comes to the manufacturing of implantable medical devices. However, up till now, the potential for MIM to be employed in the commercial-scale manufacturing of implantable medical devices has been insufficiently exploited. In the present research, an attempt was made to produce porous pure iron, as a metallic degradable biomaterial potentially for stent application, via the MIM route. The effects of iron powder loading and sintering temperature on the porosity, microstructure, mechanical properties, surface properties and in vitro degradation behavior of MIM iron were investigated. The results obtained were compared to those of cast iron. It was found that the amount of porosity retained in the as-sintered specimens had a major effect on their surface and mechanical properties. MIM iron exhibited strengths between those of magnesium alloys and 316 L stainless steel and very high ductility-a specially required property of stent materials. Its degradation rates in Hank's solution were superior to the degradation rate of cast iron. Interestingly, the material made from the feedstock containing 66% of iron powder, above the critical powder loading, showed the highest elongation and a good in vitro degradation rate. In conclusion, MIM is a promising method to be developed as a new route to produce thin-wall tubes for biodegradable stents. (C) 2016 Elsevier B.V. All rights reserved.
机译:金属注射成型(MIM)是一种接近最终形状的制造工艺,适合于生产小尺寸和复杂形状的零件。作为一种经济高效且灵活的制造方法,在制造可植入医疗设备方面,它可能比其他方法具有明显的优势。然而,到目前为止,尚未充分利用MIM在可植入医疗设备的商业规模制造中的潜力。在本研究中,人们尝试通过MIM途径生产多孔纯铁,作为金属可降解生物材料,有可能用于支架应用。研究了铁粉负载量和烧结温度对MIM铁的孔隙率,组织,力学性能,表面性能和体外降解行为的影响。将获得的结果与铸铁的结果进行比较。发现烧结后样品中保留的孔隙量对其表面和机械性能有重大影响。 MIM铁的强度介于镁合金和316 L不锈钢之间,并且具有极高的延展性,这是支架材料特别需要的性能。它在汉克溶液中的降解速率优于铸铁的降解速率。有趣的是,由含66%铁粉的原料制成的材料,在高于临界粉量的情况下,显示出最高的伸长率和良好的体外降解率。总之,MIM是一种有前途的方法,可以作为生产可生物降解支架的薄壁管的新途径来开发。 (C)2016 Elsevier B.V.保留所有权利。

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