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Modeling of time dependent localized flow shear stress and its impact on cellular growth within additive manufactured titanium implants

机译:时间相关的局部流动剪切应力的建模及其对增材制造的钛植入物内细胞生长的影响

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摘要

Bone augmentation implants are porous to allow cellular growth, bone formation and fixation. However, the design of the pores is currently based on simple empirical rules, such as minimum pore and interconnects sizes. We present a three-dimensional (3D) transient model of cellular growth based on the Navier>–Stokes equations that simulates the body fluid flow and stimulation of bone precursor cellular growth, attachment>, and proliferation as a function of local flow shear stress. The model's effectiveness is demonstrated for two additive manufactured (AM) titanium scaffold architectures. The results demonstrate that there is a complex interaction of flow rate and strut architecture, resulting in partially randomi>zed structures having a preferential impact on stimulating cell migration in 3D porous structures for higher flow rates. This novel result demonstrates the potential new insights that can be gained via the modeling tool developed, and how the model can be used to perform what-if simulations to design AM structures to specific functional requirements.
机译:骨增强植入物是多孔的,以允许细胞生长,骨形成和固定。然而,孔的设计当前基于简单的经验规则,例如最小的孔和互连尺寸。我们基于Navier > – Stokes方程提出了一个三维(3D)细胞生长瞬态模型,该模型模拟了体液流动和骨前体细胞生长,附着>,的刺激>和扩散作为局部流动切应力的函数。该模型对两种增材制造(AM)钛脚手架架构的有效性得到了证明。结果表明,流速与支撑结构之间存在复杂的相互作用,导致部分随机分布的结构对较高流速下3D多孔结构中的细胞迁移具有优先的影响。这项新颖的结果证明了通过开发的建模工具可以获得潜在的新见解,以及如何将模型用于执行假设分析以设计AM结构以满足特定功能要求。

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