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A study on the stability of the stress response of nonequilibrium ultrahigh molecular weight polyethylene melts during oscillatory shear flow

机译:振动剪切流动期间非预测超高分子量聚乙烯熔体应力响应稳定性研究

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摘要

Dynamic shear flow and especially large-amplitude oscillatory shear have been a subject of interest to investigate limitations of theoretical approximations working under the assumption of simple shear. These studies have helped in understanding the kinematics involved in phenomena such as stick-slip and shear banding, among others. The nonequilibrium polymer melt, which transforms with time into the equilibrium state, provides a unique opportunity to investigate the influence of the thermodynamic melt state on the validity of simple shear approximations. Here, we show that during oscillatory deformation, the nonlinear rheological response of ultrahigh molecular weight polyethylene melts, having number-average molecular weight greater than one million g/mol, is strongly dependent on the entangled state of the same polymer. At sufficiently large strain amplitude, the stress response of the material departs from a periodic sinusoidal signal, with maximum stress decaying with consecutive cycles of deformation. A nonequilibrium polymer melt shows a faster decay in stress on consecutive application of oscillatory strain cycles, compared to its equilibrium state. These conclusions are supported by direct observation of the solid-liquid interface using a rheo-microscope device, where slippage appears to be the cause for the stress decay. (C) 2017 The Society of Rheology.
机译:动态剪切流量,特别是大幅度振荡剪切是侦查在假设简单剪切下工作的理论近似的限制的主题。这些研究有助于了解参与现象的运动学,如粘滑和剪切绷带等。用时间转化为平衡状态的非QuibiBribim熔体提供了一种独特的机会,可以研究热力学熔体状态对简单剪切近似的有效性的影响。这里,我们表明,在振荡变形期间,超高分子量聚乙烯熔体的非线性流变响应,具有大于100百万克/摩尔的数均分子量,具有强烈取决于相同聚合物的缠结状态。在足够大的应变幅度下,材料的应力响应从周期性正弦信号偏离,具有最大应力衰减,连续变形循环。与其平衡状态相比,非凝结聚合物熔体表明,在连续应用振荡应变循环的应力下衰减。通过使用Rheo显微镜装置直接观察固体液体界面的直接观察来支持这些结论,其中滑动似乎是应力衰减的原因。 (c)2017年流变学会。

著录项

  • 来源
    《Journal of Rheology》 |2017年第3期|共11页
  • 作者单位

    Loughborough Univ Technol Dept Mat Loughborough LE11 3TU Leics England;

    Maastricht Univ Fac Humanities &

    Sci Aachen Maastricht Inst Biobased Mat Brightlands Chemelot Campus NL-6167 RD Geleen Netherlands;

    Loughborough Univ Technol Dept Mat Loughborough LE11 3TU Leics England;

    Loughborough Univ Technol Dept Mat Loughborough LE11 3TU Leics England;

    Loughborough Univ Technol Dept Mat Loughborough LE11 3TU Leics England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流变学;
  • 关键词

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