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Numerical prediction of extrudate swell of branched polymer melts

机译:支化聚合物熔体挤出胀大的数值预测

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This paper is concerned with the numerical prediction of the extrudate swell behaviour of branched polymer melts in a planar configuration. The multi-mode extended pom-pom (XPP) model is used to describe the polymer dynamics. A second-order operator-integration-factor splitting scheme is used for the temporal discretisation of the problem, whilst a spectral element scheme is used in space. The free surface is evolved in a Lagrangian manner using the third-order conditionally stable Adams-Bashforth method. A thorough mesh convergence study is performed with respect to the temporal and spatial discretisation parameters. The influence of the nature of the discrete relaxation spectrum on the swelling ratio and as an indicator of polydispersity is investigated. The predictions of numerical simulations are also compared with a selection of experimental results from the literature. The parameters in the XPP model are determined from rheological data. Good agreement is obtained for branched low-density polyethylenes. The ability to model a melt with a high molecular weight tail using a discrete relaxation spectrum for which the largest relaxation time is isolated from the others is also investigated.
机译:本文涉及分支构型聚合物熔体在平面构型下挤出物溶胀行为的数值预测。多模扩展绒球(XPP)模型用于描述聚合物动力学。二阶算子积分因子分裂方案用于问题的时间离散化,而频谱元素方案用于空间。使用三阶条件稳定的Adams-Bashforth方法以拉格朗日方式演化自由表面。关于时间和空间离散化参数进行了彻底的网格收敛研究。研究了离散弛豫谱的性质对溶胀率的影响,并作为多分散性的指标。还将数值模拟的预测结果与文献中选择的实验结果进行比较。 XPP模型中的参数由流变数据确定。支化低密度聚乙烯获得了良好的一致性。还研究了使用离散弛豫谱(具有最大的弛豫时间与其他弛豫时间隔离)对具有高分子量尾部熔体进行建模的能力。

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