首页> 外文期刊>Journal of Materials Engineering and Performance >Investigation of Mechanical and Viscoelastic Properties of Flax- and Ramie-Reinforced Green Composites for Orthopedic Implants
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Investigation of Mechanical and Viscoelastic Properties of Flax- and Ramie-Reinforced Green Composites for Orthopedic Implants

机译:亚麻和苎麻增强绿色复合材料对矫形植入物的机械和粘弹性性能研究

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摘要

The aim of this research study is to develop promising bio-composite material reinforced with natural fiber for the application in bone grafting and orthopedic implants. In this research work, investigation on the mechanical properties of the fabricated bio-composite from flax and ramie fiber with three different weight fractions (10, 20, and 30%) and bio-epoxy resin matrix has been carried out with the help of compression hand layup method. Hybrid composite material from 15% flax and 15% ramie showed better tensile strength (102 MPa), flexural strength (138 MPa) and compressive strength (130 MPa) as well as better respective modulus (5.63, 12.41, and 8.87 GPa). The established properties are comparable to the human femur and tibia bone and therefore can be used in orthopedic implant application. The dynamic mechanical analysis (DMA) is determined to characterize the viscoelastic properties of bio-composite material and found that hybrid composites at 30% weight fraction of fibers have given best results with maximum storage 9.03 GPa, loss modulus 1.45 GPa, and maximum glass transition temperature (T-g) of 110 degrees C, respectively. The scanning electron microscope (SEM) is used to characterize the microstructure bonding behavior between fiber and matrix at the fracture surfaces.
机译:该研究的目的是开发有前途的生物复合材料加强了天然纤维,用于骨嫁接和整形外植入中的应用。在该研究工作中,在压缩的帮助下,已经进行了亚麻和苎麻纤维从亚麻和苎麻纤维的制造生物复合材料的力学性能的研究已经在压缩的帮助下进行手铺板方法。来自15%亚麻的杂化复合材料和15%苎麻显示出更好的拉伸强度(102MPa),弯曲强度(138MPa)和压缩强度(130MPa)以及更好的相应模量(5.63,12.41和8.87GPa)。建立的性质与人股骨和胫骨骨骼相当,因此可用于矫形植入物应用。测定动态机械分析(DMA)以表征生物复合材料的粘弹性,并发现30%重量纤维的杂化复合材料具有最大储存9.03GPa,损耗模量1.45GPa和最大玻璃过渡的最佳效果。 110℃的温度(Tg)。扫描电子显微镜(SEM)用于表征骨折表面的纤维和基质之间的微观结构粘合行为。

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