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首页> 外文期刊>Macromolecular theory and simulations >Rheological characterization of computationally synthesized reactor populations of hyperbranched macromolecules: Bivariate seniority-priority distribution of ldPE
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Rheological characterization of computationally synthesized reactor populations of hyperbranched macromolecules: Bivariate seniority-priority distribution of ldPE

机译:超支化大分子计算合成反应堆的流变学表征:ldPE的双变量优先级-优先级分布

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摘要

Hyperbranched molecules like low-density polyethylene (ldPE) adopt a huge variety of molecular architectures. Previous work has shown that it is possible to computationally synthesize these architectures and to characterize them according to radius of gyration. Here, a method is presented and applied on ldPE to characterize populations using theological quantities in terms of comb-shaped and Cayley tree structures. Interbranch segments are assigned seniority and priority values that quantify their behavior in relaxation and elastic deformation processes. New general-purpose algorithms have been developed to derive the full bivariate seniority/priority distribution using a representation from the graph theory of branched architectures. This paper describes the computation of bivariate chain length/degree of branching distributions (CLD/DBD) using a Galerkin finite element method for two scission mechanisms: linear and topological scission. The DBD is calculated using pseudo-distributions. Random scission is treated with fragment length and branch point redistribution functions as obtained from scission statistics of branched molecules, preferentially yielding short and long fragments. Reactor populations of ldPE architectures are then obtained using computational synthesis. The seniority and priority distributions calculated indeed prove to be an adequate characterization method. They show good comparison, although not a complete overlap, with size characterization using a variant of the radius of gyration. It was possible to calculate a full bivariate seniority/priority fraction distribution, but due to the limited sample size its surface was not smooth. Subsequent work has shown the consequences for the prediction of rheological properties.
机译:超支化分子,例如低密度聚乙烯(ldPE),采用了多种分子结构。先前的工作表明,可以通过计算合成这些体系结构,并根据回转半径来表征它们。在这里,提出了一种方法,并在ldPE上应用了该方法,以根据梳状和Cayley树形结构的神学量来表征种群。为分支间段分配了优先级和优先级值,以量化其在松弛和弹性变形过程中的行为。已经开发出新的通用算法,以使用来自分支体系结构图论的表示来得出完整的双变量资历/优先级分布。本文介绍了使用Galerkin有限元方法对两种断裂机理(线性断裂和拓扑断裂)的双变量链长/分支分布度(CLD / DBD)的计算。使用伪分布来计算DBD。随机切割用片段长度和分支点重新分布功能处理,该功能是从分支分子的切割统计中获得的,优先产生短片段和长片段。然后使用计算综合获得ldPE体系结构的反应堆。事实证明,计算出的资历和优先级分布是一种适当的表征方法。它们显示了很好的比较,尽管不是完全重叠,但使用了回转半径的变体来进行尺寸表征。可以计算完整的二元资历/优先级分数分布,但由于样本量有限,其表面不光滑。随后的工作表明了流变性能预测的后果。

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