骨支架结构的计算优化综述:方法、挑战和观点。

IF 5 Q1 ENGINEERING, BIOMEDICAL
Ali H Foroughi, Caleb Valeri, Mir Jalil Razavi
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引用次数: 0

摘要

骨支架的设计与优化是骨组织工程成功应用的关键。本文综述了骨支架结构的计算优化方法,重点介绍了机械稳定性、生物相容性和可制造性之间的平衡。讨论了有限元法(FEM)、计算流体动力学(CFD)和各种优化算法在模拟和改进脚手架设计中的作用。多目标优化与拓扑优化的结合已成为开发满足BTE多方面要求的支架的重点。已经确定了诸如需要考虑制造限制以及将降解和骨再生模型纳入优化过程等挑战。该综述强调了先进的计算工具和增材制造技术在BTE领域的发展潜力,旨在改善患者骨组织再生的结果。研究了当前优化方法的可靠性,并建议采用非确定性方法和体内验证,以增强优化支架的实际应用。该综述最后呼吁进一步研究基于人工智能的方法来推进支架的设计和优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A review of computational optimization of bone scaffold architecture: methods, challenges, and perspectives.

The design and optimization of bone scaffolds are critical for the success of bone tissue engineering (BTE) applications. This review paper provides a comprehensive analysis of computational optimization methods for bone scaffold architecture, focusing on the balance between mechanical stability, biological compatibility, and manufacturability. Finite element method (FEM), computational fluid dynamics (CFD), and various optimization algorithms are discussed for their roles in simulating and refining scaffold designs. The integration of multiobjective optimization and topology optimization has been highlighted for developing scaffolds that meet the multifaceted requirements of BTE. Challenges such as the need for consideration of manufacturing constraints and the incorporation of degradation and bone regeneration models into the optimization process have been identified. The review underscores the potential of advanced computational tools and additive manufacturing techniques in evolving the field of BTE, aiming to improve patient outcomes in bone tissue regeneration. The reliability of current optimization methods is examined, with suggestions for incorporating non-deterministic approaches andin vivovalidations to enhance the practical application of optimized scaffolds. The review concludes with a call for further research into artificial intelligence-based methods to advance scaffold design and optimization.

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CiteScore
9.40
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