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首页> 外文期刊>Acta biomaterialia >Predicting microstructure development during casting of drug-eluting coatings.
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Predicting microstructure development during casting of drug-eluting coatings.

机译:预测在药物洗脱涂层浇铸过程中的微观结构发展。

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摘要

We have devised a novel diffuse interface formulation to model the development of chemical and physical inhomogeneities, i.e. microstructure, during the process of casting drug-eluting coatings. These inhomogeneities, which depend on the coating constituents and manufacturing conditions, can have a profound affect on the rate and extent of drug release, and therefore the ability of coated medical devices to function successfully. By deriving the model equations in a time-dependent reference frame, we find that it is computationally viable to probe a wide, physically relevant range of material and process quantities. To illustrate the application of the model, we have evaluated the impact of manufacturing solvent, coating thickness and evaporation rate on microstructure development. Our results suggest that modifying these process conditions can have a strong and nearly discontinuous effect on coating microstructure, and therefore on drug release. Further, we demonstrate that the model can be applied to processes that involve the incremental application of the coating in layers or passes. This new model formulation, which can also be used to predict the kinetics of drug release, provides a tool to elucidate and quantify the relationships between process variables, microstructure and performance. Establishing these relationships can reduce empiricism in materials selection and process design, providing a facile and efficient means to tailor the underlying microstructure and achieve a desired drug-release behavior.
机译:我们已经设计了一种新颖的扩散界面配方,以在铸造药物洗脱涂层的过程中模拟化学和物理不均匀性(即微观结构)的发展。这些不均匀性取决于涂层的成分和制造条件,会对药物释放的速率和程度产生深远的影响,因此对涂层的医疗器械成功发挥作用的能力也会产生重大影响。通过在与时间相关的参考框架中推导模型方程,我们发现探查广泛的,与物理相关的材料和工艺数量范围在计算上是可行的。为了说明该模型的应用,我们评估了制造溶剂,涂层厚度和蒸发速率对微结构发展的影响。我们的结果表明,修改这些工艺条件可能会对涂层的微观结构产生强烈且几乎不连续的影响,从而对药物释放产生影响。此外,我们证明了该模型可以应用于涉及层或道次涂层增量涂覆的过程。这种新的模型公式还可以用来预测药物释放的动力学,它提供了一种工具来阐明和量化过程变量,微观结构和性能之间的关系。建立这些关系可以减少对材料选择和过程设计的经验,从而提供一种简便有效的方法来调整基础的微观结构并实现所需的药物释放行为。

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