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Mathematical models and numerical simulations of a thermally expandable microballoon for plastic foaming

机译:用于塑料发泡的热膨胀微气球的数学模型和数值模拟

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摘要

Thermally expandable microcapsules, often called microspheres or microballoons, are utilized in compression, injection molding and extrusion processes to foam different types of polymers. Microballoons consist of a polymer shell and a liquid hydrocarbon core. Hydrocarbons are used as a physical blowing agent. In this study, a mathematical model was developed to describe the expansion behavior of a microballoon in air and in a polymer matrix. The model was used to determine the key factors in improving the expandability of the balloon at designated temperatures. The viscoelastic properties of the polymer shell, evaporation of hydrocarbons in the balloon and diffusion behavior of the blowing agent through the polymer shell were taken into account in the model. The results of the developed model showed quite good agreement with the experimentally observed thermal expansion behavior of a microballoon. A sensitivity analysis of the expansion behavior with respect to the properties of the microballoon was also conducted to devise an optimal design strategy for high-expansion microballoons.
机译:通常被称为微球或微气球的热膨胀性微胶囊被用于压缩,注射成型和挤出过程中以使不同类型的聚合物发泡。微气球由聚合物壳和液态烃核组成。烃用作物理发泡剂。在这项研究中,建立了一个数学模型来描述微气球在空气和聚合物基质中的膨胀行为。该模型用于确定在指定温度下改善气球膨胀性的关键因素。在模型中考虑了聚合物壳的粘弹性,气囊中碳氢化合物的蒸发以及发泡剂通过聚合物壳的扩散行为。所开发模型的结果表明与实验观察到的微气球的热膨胀行为非常吻合。还针对微气球的性能对膨胀行为进行了敏感性分析,以设计出高膨胀微气球的最佳设计策略。

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