亚麻纤维和棉纤维复合材料层合修复套的实验、理论和数值分析

Q2 Materials Science
Jawad K. Oleiwi , Qahtan A. Hamad , Noor K. Faheed
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引用次数: 0

摘要

为了提高天然纤维复合材料的强度和适用性,人们做了大量的工作来提高其力学性能。本研究旨在通过实验、理论和数值研究利用真空装袋技术,探讨天然纤维在人工膝下假体制造中的应用。通过拉伸试验对不同层序的层压组进行了评价。采用有限元方法计算安全系数的离散度、等效冯-米塞斯应力和总变形,理论部分估计泊松比、体积分数、破坏指数和理论安全系数。研究发现,纤维的数量和类型会影响机械性能,此外,结合天然和人工增强材料可以创造高性能的生物复合材料。有限元分析结果与理论和实验结果相吻合,层合9具有最高的弹性模量(5.6 GPa)和抗拉强度(423 MPa)。这项工作揭示了混合纤维增强复合材料的特性,这些特性到目前为止还没有被破坏,并表明插座可以用可持续的、低风险的材料组装,而不会牺牲复合材料的强度。研究发现,将人工合成材料与天然增强材料相结合,可以制备出性能更好的生物复合材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental, Theoretical, and Numerical Analysis of Laminated Composite Prosthetic Socket Reinforced with Flax and Cotton Fibers

A lot of work has been done to enhance the mechanical properties of natural fiber composites to increase their strength and applicability. This research aims to investigate the utilization of natural fibers for below-knee prosthesis socket manufacture using the vacuum bagging technique experimentally, theoretically, and numerically. Lamination groups of different layering arrangements were evaluated by tensile tests. The finite element methodology (FEM) was utilized by noting the dispersion of safety factors, equivalent Von-Mises stress, and total deformation, while the theoretical part estimated Poisson's ratio, volume fraction, failure index, and theoretical safety factor. The study found that the number and type of fibers affected mechanical properties, in addition, that combining natural and artificial reinforcements permits the creation of high-performance bio-composites. FEM results coincided with both the theoretical and experimental results, with lamination 9 having the highest modulus of elasticity (5.6 GPa) and tensile strength (423 MPa). This work uncovered the properties of the proposed hybrid fiber-reinforced composites that haven't been exasperated up to the present and showed that sockets can be assembled from sustainable, low-risk materials without sacrificing the composite materials' strength. The study found that bio-composites with better performance could be created by combining synthetic with natural reinforcements.

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来源期刊
Biotribology
Biotribology Materials Science-Surfaces, Coatings and Films
CiteScore
4.20
自引率
0.00%
发文量
17
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