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Atomistic-mesoscale coupled mechanical analysis of polymeric nanofibers

机译:聚合物纳米纤维的原子-中尺度耦合力学分析

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摘要

Theoretical analysis of Poly-(l)-Lactic Acid (PLLA) nanofibers is a necessary step towards designing novel biomedical applications. This paper aims to analyze the mechanical properties of PLLA nanofibers so that optimal scaffolds in tissue engineering applications can be developed. We carry out analysis of PLLA nanofibers to estimate the mechanical properties from basic building blocks to the nanofibrous structures. A single PLLA nanofiber is made up of Shish–Kebab like fibrils intertwined together and can contain both amorphous and crystalline phases. The elastic modulus of the Lactic acid monomeric formation in the crystalline phase is derived using second-derivative of the strain energy using molecular dynamics simulation. The mechanical property of the Shish–Kebab fibril is derived by homogenization. The fiber modulus is then obtained using the Northolt and van der Hout’s continuous chain theory. One of the significant contributions in this paper is the use of modified continuous chain theory, where a combined multiscale approach is used in the estimation of the mechanical properties of PLLA nanofibers. The theoretical results correlate well with reported experimental data.
机译:聚(l)-乳酸(PLLA)纳米纤维的理论分析是设计新型生物医学应用的必要步骤。本文旨在分析PLLA纳米纤维的力学性能,以便在组织工程应用中开发出最佳的支架。我们进行PLLA纳米纤维的分析,以估算从基本构件到纳米纤维结构的机械性能。一根PLLA纳米纤维由像希什-基巴布(Shish-Kebab)一样的纤维缠绕在一起组成,可以包含非晶相和结晶相。使用分子动力学模拟,使用应变能的二阶导数,得出结晶相中乳酸单体形成的弹性模量。 Shish–Kebab原纤维的机械性能是通过均质化获得的。然后使用Northolt和van der Hout的连续链理论获得纤维模量。本文的重要贡献之一是使用了改进的连续链理论,该方法采用组合多尺度方法估算PLLA纳米纤维的机械性能。理论结果与报道的实验数据很好地相关。

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  • 来源
    《Journal of Materials Science 》 |2007年第21期| 8844-8852| 共9页
  • 作者单位

    Advanced Computational Mechanics Laboratory Department of Mechanical Engineering Texas AampampM University College Station TX 77843-3123 USA;

    Advanced Computational Mechanics Laboratory Department of Mechanical Engineering Texas AampampM University College Station TX 77843-3123 USA;

    Advanced Computational Mechanics Laboratory Department of Mechanical Engineering Texas AampampM University College Station TX 77843-3123 USA;

    Division of Bioengineering ampamp Department of Mechanical Engineering National University of Singapore 9 Engineering Drive 1 Singapore 117576 Singapore;

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