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首页> 外文期刊>Polymer Testing >Rheology control of HDPE/PP binary system forming a multilayer structure: Effects of MWD and shear rate
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Rheology control of HDPE/PP binary system forming a multilayer structure: Effects of MWD and shear rate

机译:HDPE / PP二元系统形成多层结构的流变学控制:MWD和剪切速率的影响

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摘要

"Encapsulation phenomena", which always caused the higher viscosity fluid sandwiched by the lower viscosity fluid, has been observed several decades ago, which was regarded as an important factor influencing stratified flow in co-extrusion. In this work, an innovative method for forming multilayer structure was illuminated, which attributed to the interesting "viscous encapsulation" phenomenon. By controlling of molecular factors and processing conditions, a stable stratified flow was obtained as a result of phase-segregation, trilayer and five-layer structure were formed in slit die extrudate interestingly. The influencing factors, such as molecular weight distribution, viscosity ratio, shear rate, length/diameter ratio (L/D) of capillary die were discussed in this paper. It was found that the narrow MWD HDPE/PP binary system could have a high A(p) (area percentage) leading to the formation of "core-shell" structure while wide MWD HDPE/PP binary system may lead to a special sandwich structure in capillary die extrudate within low shear rate region. Our work also illustrated two dominate parameters of preparing multilayer structure: viscosity ratio and shear rate. The high viscosity ratio ensured rapid radial movement during flow and a suitable shear rate provided enough time for molecular chains to separate and developed into a clear core-shell structure. A high value of A(p) could be achieved from shear rate of 45s(-1)-175s(-1), which could be a reasonable processing zone. A(p). It was found that the different resultant force applied on HDPE and PP granules during stratified flow has resulted in the formation of "core-shell" structure. The simulation results also showed a strong tendency for PP to flow along the wall under pressure flow while HDPE migrated to the opposite direction. The extrudates from capillary die and extrusion slit die were observed and compared with POM, The value of A(p) from extrusion slit die was 91% which was greater than it in capillary d
机译:“封装现象”总是导致夹在较低粘度流体的较高粘度流体的几十年前,这被认为是影响共挤出中分层流动的重要因素。在这项工作中,照亮了一种用于形成多层结构的创新方法,其归因于有趣的“粘性封装”现象。通过控制分子因子和加工条件,获得稳定的分层流,作为相偏析的结果,有趣地形成三层和五层结构。本文讨论了毛细管模具的影响因素,例如分子量分布,粘度比,剪切速率,长度/直径比(L / d)。发现窄MWD HDPE / PP二进制系统可以具有高A(P)(面积百分比),导致“核心壳”结构的形成,而宽MWD HDPE / PP二进制系统可能导致特殊的三明治结构在低剪切速率区域内的毛细管模挤出物。我们的工作还说明了两个准备多层结构的主导参数:粘度比和剪切速率。高粘度比在流动期间确保了快速的径向运动,并且适当的剪切速率提供足够的时间用于分子链以分离和发展成透明的核心壳结构。高值A(P)可以通过45°(-1)-175s(-1)的剪切速率来实现,这可能是合理的处理区。 a(p)。发现在分层流动期间施加在HDPE和PP颗粒上的不同的所得力导致形成“核心壳”结构。仿真结果还显示出PP沿着壁在压力流下沿着壁流动的强烈倾向,而HDPE迁移到相反方向。观察来自毛细管模和挤出切口模具的挤出物,与POM进行比较,挤出狭缝模具的值为91%,其大于毛细血管D.

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  • 来源
    《Polymer Testing》 |2019年第2019期|共12页
  • 作者单位

    Sichuan Univ State Key Lab Polymer Mat Engn Polymer Sci &

    Engn Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ State Key Lab Polymer Mat Engn Polymer Sci &

    Engn Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ State Key Lab Polymer Mat Engn Polymer Sci &

    Engn Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ State Key Lab Polymer Mat Engn Polymer Sci &

    Engn Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ State Key Lab Polymer Mat Engn Polymer Sci &

    Engn Chengdu 610065 Sichuan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
  • 关键词

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