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Development of Validated Numerical Model for Study of Mechanical Properties and Permeability of Carbon Nanotube-Bioactive Glass Scaffolds

机译:验证数值模型研究的发展的力学性能和渗透的碳Nanotube-Bioactive玻璃支架

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摘要

This study aims to predict mechanical properties of scaffolds made of bioactive glass-carbon nanotube (CNT) composite through finite element analysis (FEA) and their permeability using computational fluid dynamics (CFD) simulations. We start with constructing a three-dimensional model for the complete scaffold using cleaned/denoised images obtained from microcomputed tomography. To save computational effort, a representative volume element (RVE) is carved out from this model such that geometric properties like porosity and tortuosity are preserved. FEA requires material properties for which we have assumed that the CNTs are uniformly dispersed and hence, the composite behaves as a homogeneous isotropic material whose mechanical properties are experimentally obtained from a standard specimen. FEA has been performed on converged mesh for the RVE to obtain the compressive strength of the scaffolds. These computationally obtained compressive strengths compared well with those obtained experimentally, justifying our use of a homogeneous isotropic material model. We repeat the comparison for another geometry fabricated using additive manufacturing and find similarities in computational and experimental results. Hence, the compressive strength of bioactive glass-CNT composite scaffolds can be nondestructively predicted from our bulk identified mechanical properties irrespective of the geometry. For the CFD analysis, fluid flow is simulated in the porous region of the RVE and the estimated permeability of the scaffold is found to be satisfactory for nutrient and oxygen supply. Our study suggests that computational tools can help gain insights into the efficient design of scaffolds by obtaining the geometry having the right balance between strength and permeability for optimum performance.
机译:本研究旨在预测力学性能支架的生物活性glass-carbon做的纳米管复合通过有限元(问)分析(FEA)及其渗透性使用计算流体力学(CFD)模拟。我们开始构建一个三维的模型完成支架使用清洗/得到去噪图像microcomputed断层。努力,一个代表性体积单元(RVE)从这个模型,几何孔隙度和弯曲度等属性保存了下来。我们认为碳纳米管均匀吗分散,因此,复合行为均质各向同性材料的机械属性是通过实验获得标准的标本。RVE得到聚合网支架的抗压强度。计算获得的抗压强度与实验所得结果相比,证明我们使用均匀各向同性材料模型。另一个几何图形组合使用添加剂制造业和找到相似之处计算和实验结果。生物活性glass-CNT的抗压强度复合支架可以无损从我们的批量识别机械预测几何图形的性质无关。CFD分析,流体流动模拟的RVE的多孔区域和估计脚手架的渗透性是发现满意的营养和氧气供应。研究表明,计算工具可以帮助获得洞察的有效设计支架通过获取几何的对强度和渗透率之间的平衡最优性能。

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