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Macro-Micro Simulation for Polymer Crystallization in Couette Flow

机译:Couette流中聚合物结晶的宏观-微观模拟

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摘要

Polymer crystallization in manufacturing is a process where quiescent crystallization and flow-induced crystallization coexists, and heat/mass transfer on a macroscopic level interacts with crystal morphology evolution on a microscopic level. Previous numerical studies on polymer crystallization are mostly concentrated at a single scale; they only calculate macroscale parameters, e.g., temperature and relative crystallinity, or they only predict microstructure details, e.g., crystal morphology and mean size of crystals. The multi-scale numerical works that overcome these disadvantages are unfortunately based on quiescent crystallization, in which flow effects are neglected. The objective of this work is to build up a macro-micro model and a macro-micro algorithm to consider both the thermal and flow effects on the crystallization. Our macro-micro model couples two parts: mass and heat transfer of polymeric flow at the macroscopic level, and nucleation and growth of spherulites and shish-kebabs at the microscopic level. Our macro-micro algorithm is a hybrid finite volume/Monte Carlo method, in which the finite volume method is used at the macroscopic level to calculate the flow and temperature fields, while the Monte Carlo method is used at the microscopic level to capture the development of spherulites and shish-kebabs. The macro-micro model and the macro-micro algorithm are applied to simulate polymer crystallization in Couette flow. The effects of shear rate, shear time, and wall temperature on the crystal morphology and crystallization kinetics are also discussed.
机译:制造业中的聚合物结晶是静态结晶和流动诱导结晶共存的过程,宏观上的热/质量传递与微观上的晶体形态演化相互作用。以前关于聚合物结晶的数值研究大多集中在单一规模上。它们仅计算宏观参数,例如温度和相对结晶度,或者仅预测微观结构细节,例如晶体形态和晶体平均尺寸。不幸的是,克服这些缺点的多尺度数值研究是基于静态结晶,其中忽略了流动效应。这项工作的目的是建立一个宏观-微观模型和宏观-微观算法来考虑热和流动对结晶的影响。我们的宏观微观模型包括两个部分:宏观层面的聚合物流的质量和热传递,以及微观层面的球晶和烤肉串的成核和生长。我们的宏微算法是有限体积/蒙特卡罗混合方法,其中在宏观水平上使用有限体积方法来计算流场和温度场,而在微观水平上使用蒙特卡洛方法来捕捉发展情况。小球和烤肉串。应用宏观-微观模型和宏观-微观算法模拟库埃特流中的聚合物结晶。还讨论了剪切速率,剪切时间和壁温对晶体形态和结晶动力学的影响。

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