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An Investigation on the Polymer Composite Medical Device - External Fixator

机译:高分子复合医疗器械外固定架的研究

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Primary impetus for the development of composite materials for medical usage came from orthopedic implant application. In case of metal alloys stiffness mismatch causes stress shielding in applications such as bone plates, total hip replacement, and total knee replacement. Moreover, the metal alloys and ceramics are radio opaque, and in some cases they result in undesirable artifacts in X-ray radiography. In the case of polymer composite materials the radio transparency can be adjusted by adding contrast medium to the polymer. More over the polymer composite materials are fully compatible with the modern diagnostic methods such as computed tomography (CT) and magnetic resonance imaging (MRI) as they are non-magnetic. The current study reports the development of a radiolucent fiber reinforced polymer composite material for a biomedical device. Ilizarov external fixator. Material fabrication and characterization are described. Quantitative X-ray radio-graphic analysis was carried out to choose the best from the probable materials. The Finite Element Method (FEM) was employed to determine the worst possible in service loading condition, and the ring dimensions wwere modinfied accordingly. Half rign prototypes were produced using two types of composite materials: knitted aramid fiber fabric reinforced epoxy and random short carbon (RSC) fiber aramid fibver fabric reinforced epoxy and random short carbon (RSC) fiber reinforced epoxy. The in-plane compressive strength and axial stiffness of thecomplete frame were measured according to ASTM specifications. The performance was evaluated and compared to an existing system is simulated in-service conditions.
机译:医用复合材料开发的主要动力来自骨科植入物的应用。如果是金属合金,刚度不匹配会在诸如骨板,全髋关节置换和全膝关节置换等应用中引起应力屏蔽。此外,金属合金和陶瓷是不透射线的,在某些情况下,它们会在X射线射线照相术中产生不良的伪影。在聚合物复合材料的情况下,可以通过向聚合物中添加造影剂来调节射线的透明度。此外,由于聚合物复合材料是非磁性的,因此它们与诸如计算机断层扫描(CT)和磁共振成像(MRI)等现代诊断方法完全兼容。当前的研究报道了用于生物医学装置的射线可透纤维增强聚合物复合材料的开发。 Ilizarov外固定器。描述了材料的制造和表征。进行了定量X射线射线照相分析以从可能的材料中选择最佳。使用有限元方法(FEM)来确定在使用载荷条件下可能出现的最坏情况,并相应地修改了环的尺寸。使用两种类型的复合材料生产半成品原型:针织芳纶纤维织物增强环氧树脂和无规短碳(RSC)纤维芳纶纤维织物增强环氧树脂和无规短碳(RSC)纤维增强环氧树脂。根据ASTM规范测量完整框架的面内抗压强度和轴向刚度。对性能进行了评估,并与模拟使用条件的现有系统进行了比较。

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