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多尺度建模用于研究可生物降解聚酯的不均匀强度。

Multiscale modelling for the heterogeneous strength of biodegradable polyesters.

机构信息

Department of Computer, School of Computer and Communication Engineering, University of Science and Technology Beijing (USTB), Beijing 100083, China; Beijing Key Laboratory of Knowledge Engineering for Materials Science, Beijing 100083, China.

Department of Computer, School of Computer and Communication Engineering, University of Science and Technology Beijing (USTB), Beijing 100083, China; Beijing Key Laboratory of Knowledge Engineering for Materials Science, Beijing 100083, China.

出版信息

J Mech Behav Biomed Mater. 2019 Feb;90:337-349. doi: 10.1016/j.jmbbm.2018.10.018. Epub 2018 Oct 19.

Abstract

A heterogeneous method of coupled multiscale strength model is presented in this paper for calculating the strength of medical polyesters such as polylactide (PLA), polyglycolide (PGA) and their copolymers during degradation by bulk erosion. The macroscopic device is discretized into an array of mesoscopic cells. A polymer chain is assumed to stay in one cell. With the polymer chain scission, it is found that the molecular weight, chain recrystallization induced by polymer chain scissions, and the cavities formation due to polymer cell collapse play different roles in the composition of mechanical strength of the polymer. Therefore, three types of strength phases were proposed to display the heterogeneous strength structures and to represent different strength contribution to polymers, which are amorphous phase, crystallinity phase and strength vacancy phase, respectively. The strength of the amorphous phase is related to the molecular weight; strength of the crystallinity phase is related to molecular weight and degree of crystallization; and the strength vacancy phase has negligible strength. The vacancy strength phase includes not only the cells with cavity status but also those with an amorphous status, but a molecular weight value below a threshold molecular weight. This heterogeneous strength model is coupled with micro chain scission, chain recrystallization and a macro oligomer diffusion equation to form a multiscale strength model which can simulate the strength phase evolution, cells status evolution, molecular weight, degree of crystallinity, weight loss and device strength during degradation. Different example cases are used to verify this model. The results demonstrate a good fit to experimental data.

摘要

本文提出了一种用于计算聚乳酸(PLA)、聚乙醇酸(PGA)及其共聚物等医用聚酯在整体侵蚀降解过程中强度的异质多尺度强度模型耦合法。将宏观器件离散化为一系列介观单元。假设聚合物链留在一个单元中。随着聚合物链的断裂,可以发现分子量、聚合物链断裂引起的链重结晶以及聚合物单元坍塌引起的空穴形成在聚合物机械强度的组成中起着不同的作用。因此,提出了三种类型的强度相来显示聚合物的异质强度结构,并分别代表不同的强度对聚合物的贡献,即无定形相、结晶度相和强度空位相。无定形相的强度与分子量有关;结晶度相的强度与分子量和结晶度有关;而强度空位相的强度可以忽略不计。空位强度相不仅包括具有空穴状态的单元,还包括具有无定形状态但分子量低于阈值的单元。这种异质强度模型与微链断裂、链重结晶和宏观低聚物扩散方程相结合,形成了一种多尺度强度模型,可以模拟降解过程中的强度相演化、单元状态演化、分子量、结晶度、失重和器件强度。使用不同的示例案例验证了该模型。结果表明,该模型与实验数据吻合良好。

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