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Magnesium Powder Injection Molding (MIM) of Orthopedic Implants for Biomedical Applications

机译:用于生物医学应用的骨科植入物的镁粉注射成型(MIM)

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摘要

Metal injection molding (MIM) has a high potential for the economic near-net-shape mass production of small-sized and complex-shaped parts. The motivation for launching Mg into the MIM processing chain for manufacturing biodegradable medical implants is related to its compatibility with human bone and its degradation in a non-toxic matter. It has been recognized that the load-bearing capacity of MIM Mg parts is superior to that of biodegradable polymeric components. However, the choice of appropriate polymeric binder components and alloying elements enabling defect-free injection molding and sintering is a major challenge for the use of MIM Mg parts. This study considered the full processing chain for MIM of Mg-Ca alloys to achieve ultimate tensile strength of up to 141 MPa with tensile yield strength of 73 MPa, elongation at fracture A(f) of 7% and a Young's modulus of 38 GPa. To achieve these mechanical properties, a thermal debinding study was performed to determine optimal furnace and atmosphere conditions, sintering temperature, heating rates, sintering time and pressure.
机译:金属注射成型(MIM)具有经济性,可用于小尺寸和复杂形状零件的近净形批量生产。将Mg引入MIM加工链以制造可生物降解的医用植入物的动机与Mg与人体骨骼的相容性以及其在无毒物质中的降解有关。已经认识到,MIM Mg零件的承载能力优于可生物降解的聚合物组件。然而,选择合适的聚合物粘合剂组分和合金元素以实现无缺陷的注塑成型和烧结是使用MIM Mg零件的主要挑战。这项研究考虑了Mg-Ca合金MIM的完整加工链,以实现最高141 MPa的极限拉伸强度,73 MPa的拉伸屈服强度,7%的断裂伸长率A(f)和38 GPa的杨氏模量。为了获得这些机械性能,进行了热脱脂研究,以确定最佳的炉子和气氛条件,烧结温度,加热速率,烧结时间和压力。

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