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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Mechanics of thick-shell microcapsules made by microfluidics
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Mechanics of thick-shell microcapsules made by microfluidics

机译:微流控技术制备的厚壳微胶囊的力学

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Double emulsion templates made by microfluidics allow for the production of tailored and monodisperse microcapsules. However, their mechanical properties cannot be predicted by traditional analytical models because of their relatively thick shells. In this work, we produce thick-shelled microcapsules with varying sizes and shell thicknesses and mechanically characterize them in single-capsule compression tests using Weibull statistics. We simulate their compression with finite element modeling and find a good agreement with the experimental results under linear elastic conditions, which enables the prediction of elastic properties based on bulk material parameters. Analysis of the simulated stresses show that capsules with a thickness-to-radius ratio above 20% consistently fail at a constant maximum principal stress in accordance with the brittle nature of their bulk material, enabling the extrapolation of their failure loads as well. Combining this structure-property correlation with processing-structure relationships found in previous studies provides a general predictive framework for the assembly of monodisperse microcapsules with tunable mechanics for protection and/or controlled release of encapsulants. (C) 2014 Elsevier Ltd. All rights reserved.
机译:通过微流控技术制备的双乳状液模板可生产定制的单分散微胶囊。然而,由于它们的相对较厚的壳,它们的机械性能无法通过传统的分析模型进行预测。在这项工作中,我们生产了具有不同大小和壳厚度的厚壳微囊,并使用威布尔统计数据在单囊压缩试验中对其进行了机械表征。我们使用有限元模型模拟了它们的压缩,并在线性弹性条件下找到了与实验结果的良好一致性,从而可以根据大块材料参数预测弹性。对模拟应力的分析表明,厚度与半径之比大于20%的胶囊根据其散装材料的脆性,在恒定的最大主应力下始终会破裂,从而也可以推断其破坏载荷。将该结构特性相关性与先前研究中发现的加工结构关系结合起来,可为具有保护和/或控制释放密封剂的可调机制的单分散微胶囊组装提供一个通用的预测框架。 (C)2014 Elsevier Ltd.保留所有权利。

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