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Large-amplitude oscillatory shear flow loops for long-chain branching from general rigid bead-rod theory

机译:一般刚性珠棒理论的长链支化大振幅振动剪切流量回路

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摘要

General rigid bead-rod theory [O. Hassager, "Kinetic theory and rheology of bead-rod models for macromolecular solutions. II. Linear unsteady flow properties," J. Chem. Phys. 60, 4001-4008 (1974)] explains polymer viscoelasticity from macromolecular orientation. By means of this theory, we relate the complex viscosity of polymeric liquids to the architecture of axisymmetric branched macromolecules. In this work, we explore how adding long-chain branching to polymers affects the shapes of large-amplitude oscillatory shear (LAOS) flow loops. By loops, we mean plots of the alternant part of the shear stress response vs the cosinusoidal shear rate. We choose LAOS for its ability to amplify subtle differences in small-amplitude oscillatory shear flow at a high Weissenberg number. When non-dimensionalized with the product of the zero-shear viscosity and the shear rate amplitude, the loop shapes depend on the sole dimensionless architectural parameter, the macromolecular lopsidedness of the long-chain branched macromolecule. In this work, in this way, we compare and contrast the loop shapes of macromolecular chains that are straight with those branched. Specifically, we explore symmetric branch multiplicity, branch functionality, branch length, branch position, branch distribution, and multiple branch asymmetry. We find that adding branching collapses and distorts the loops. We then find that so long as branch length, branch position, and branch distribution are held constant and so long as the branching is symmetric about the center of mass, the peak shear stress increases with branch multiplicity. We also find that branch functionality hardly affects the loops. The structural details explored in this paper have yet to be explored in the laboratory.
机译:一般刚性胎珠理论[O. Hassager,“大分子溶液珠棒模型动力学理论与流变学。II。线性非稳态流动性,”J.Chem。物理。 60,4001-4008(1974)]解释了来自大分子取向的聚合物粘弹性。通过这种理论,我们将聚合物液体的复杂粘度与轴对称支链大分子的结构相关联。在这项工作中,我们探索如何向聚合物添加长链分支影响大幅度振荡剪切(老挝)流环的形状。通过循环,我们的意思是剪切应力响应的交替部分的曲线与烯烃剪切速率。我们选择老挝的能力在高温伯伯格号码下放大小幅度振荡剪切流的微妙差异。当与零剪切粘度的乘积和剪切速度幅度的乘积不尺寸时,环形形状取决于唯一的无量纲架构参数,长链支链大分子的大分子缺口。在这项工作中,通过这种方式,我们比较并对比直链的大分子链的环形形状与分支的那些。具体地,我们探索对称分支多重性,分支功能,分支长度,分支位置,分支分布和多分支不对称。我们发现添加分支折叠并扭曲循环。然后,我们发现,只要分支长度,分支位置和分支分布保持恒定,只要分支对称对称肿块,峰值剪切应力随分支多个增加而增加。我们还发现分支功能几乎不会影响循环。本文探索的结构细节尚未在实验室探索。

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  • 来源
    《Physics of fluids》 |2020年第5期|共18页
  • 作者单位

    Polymers Res Grp Chem Engn Dept Kingston ON K7L 3N6 Canada;

    Polymers Res Grp Chem Engn Dept Kingston ON K7L 3N6 Canada;

    Polymers Res Grp Chem Engn Dept Kingston ON K7L 3N6 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
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