用于替代骨萎缩的 Ti-Ha-CaCO3 生物复合假体的生物力学和物理性能选择

H. K. Ibrahim, M. Abolarin, A. S. Abdulrahman, O. Adedipe, U. G. Okoro
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引用次数: 0

摘要

传统的假体材料往往缺乏所需的特性,无法模拟天然骨的机械性能,从而导致并发症和假体寿命缩短。本研究旨在对适用于替代骨萎缩的生物复合假体进行生物力学和物理特性选择分析。这包括评估已开发的不同结构(致密、多孔和梯度)生物复合材料的机械性能,以确保与骨的机械性能相容。采用雷达图来比较和评估各种生物复合植入物的机械强度,并确定最适合用于承重骨替代的假体。该研究利用粉末冶金术、扫描电子显微镜(SEM)和 ImageJ 软件分别制作和表征生物复合材料的孔径分布。研究结果表明,梯度和多孔生物复合材料具有理想的机械性能,孔隙率分别为 20.67% 和 27.72%,孔径分别达到 134 和 256 μm,抗压强度分别为 174 和 149.29 MPa,压缩模量分别为 30.42 和 28.3 GPa。扫描电子显微镜分析与孔径分布和孔隙率测量相结合,为设计和制造性能更强的生物材料提供了宝贵的信息。通过选择分析,梯度生物复合材料被确定为承重骨替代物的最佳样品,因为它具有较高的抗压强度和较低的模量,符合既定的皮质骨机械性能。
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Biomechanical and physical properties selection of Ti-Ha-CaCO3 biocomposite prostheses for replacement of bone atrophy
Traditional prosthetic materials often lack the desired properties to mimic the mechanical behaviour of natural bone, leading to complications and reduced implant longevity. This study aims to conduct a biomechanical and physical properties selection analysis for biocomposite prostheses' suitable for replacing bone atrophy. This involves evaluating the mechanical properties of developed biocomposites with different structures (dense, porous and gradient) to ensure compatibility with the mechanical properties of bone. The radar chart was adopted to compare and evaluate the mechanical strength of various biocomposite implants and identify the most suitable prosthesis for load-bearing bone replacement. The study utilises powder metallurgy, scanning electron microscopy (SEM), and ImageJ software to produce and characterise the pore size distribution of the biocomposites, respectively. The findings of this study revealed the gradient and porous biocomposites exhibited desired mechanical properties with porosity of 20.67 and 27.72 % pore size up to 134 and 256 μm, compressive strength of 174 and 149.29 MPa and compressive modulus of 30.42 and 28.3 GPa respectively. The SEM analysis, coupled with pore size distribution and porosity percentage measurements, offers valuable information for designing and fabricating biomaterials with enhanced properties. The gradient biocomposite was identified to be the best sample for load-bearing bone replacements by the selection analysis because of its high compressive strength and low modulus, which is within the established cortical bone mechanical properties.
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来源期刊
Nigerian Journal of Technological Development
Nigerian Journal of Technological Development Engineering-Engineering (miscellaneous)
CiteScore
1.00
自引率
0.00%
发文量
40
审稿时长
24 weeks
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