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Challenges in computational fluid dynamics applications for bone tissue engineering

Tiago Pires, John Dunlop, Paulo R. Fernandes, A. P. G. Castro

2022Proceedings of the Royal Society A Mathematical Physical and Engineering Sciences32 citationsDOIOpen Access PDF

Abstract

Bone injuries or defects that require invasive surgical treatment are a serious clinical issue, particularly when it comes to treatment success and effectiveness. Accordingly, bone tissue engineering (BTE) has been researching the use of computational fluid dynamics (CFD) analysis tools to assist in designing optimal scaffolds that better promote bone growth and repair. This paper aims to offer a comprehensive review of recent studies that use CFD analysis in BTE. The mechanical and fluidic properties of a given scaffold are coupled to each other via the scaffold architecture, meaning an optimization of one may negatively affect the other. For example, designs that improve scaffold permeability normally result in a decreased average wall shear stress. Linked with these findings, it appears there are very few studies in this area that state a specific application for their scaffolds and those that do are focused on in vitro bioreactor environments. Finally, this review also demonstrates a scarcity of studies that combine CFD with optimization methods to improve scaffold design. This highlights an important direction of research for the development of the next generation of BTE scaffolds.

Topics & Concepts

ScaffoldComputational fluid dynamicsComputer scienceTissue engineeringBiomedical engineeringBiochemical engineeringNanotechnologyMaterials scienceEngineeringAerospace engineeringBone Tissue Engineering MaterialsOrthopaedic implants and arthroplastyBone fractures and treatments
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