Computational Fluid Dynamic Analysis of customised 3D-printed bone scaffolds with different architectures.

Ourania Ntousi, Maria Roumpi, Panagiotis Siogkas, Despoina Deligianni, Dimitrios I Fotiadis
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Abstract

Through the recent years, tissue engineering has been proven as a solid substitute of autografts in the stimulation of bone tissue regeneration, through the development of three dimensional (3D) porous matrices, commonly known as scaffolds. In this work, we analysed two scaffold structures with 500μm pore size, by performing computational fluid dynamics simulations, to compare permeability, Wall Shear Stress (WSS), velocity and pressure distributions. Taking into account those parameters the geometry named as "PCL-50" was the best to anticipate showing a superior performance in supporting cell growth due to the improved flow characteristics in the scaffold.Clinical Relevance- Bone defects that require invasive surgical treatment with high risks in terms of success and effectiveness. Bone tissue engineering (BTE) in combination with the use of computational fluid dynamics (CFD) analysis tools aim to assist in designing optimal scaffolds that better promote bone growth and repair. The fluid dynamic characteristics of a porous scaffold plays a vital role in cell viability and cell growth, affecting the osteogenic performance of the scaffold.

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对不同结构的定制 3D 打印骨支架进行计算流体动力学分析。
近年来,通过开发三维(3D)多孔基质(俗称支架),组织工程已被证明是刺激骨组织再生的自体移植物的可靠替代品。在这项工作中,我们通过计算流体动力学模拟分析了两种孔径为 500 微米的支架结构,比较了渗透性、壁剪应力(WSS)、速度和压力分布。考虑到这些参数,被命名为 "PCL-50 "的几何形状是最佳选择,由于支架的流动特性得到改善,它在支持细胞生长方面表现出色。骨组织工程(BTE)与计算流体动力学(CFD)分析工具的结合使用旨在协助设计最佳支架,更好地促进骨生长和修复。多孔支架的流体动力学特性对细胞活力和细胞生长起着至关重要的作用,影响着支架的成骨性能。
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