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Vortical Fountain Flows in Plasticating Screws

机译:塑化螺杆中的涡流

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摘要

Variances in polymers processed by single-screw extrusion are investigated. While vortical flows are well known in the fluids community and fountain flows are well known to be caused by the frozen layers in injection molding, our empirical evidence and process modeling suggests the presence of vortical fountain flows in the melt channels of plasticating screws adjacent to a slower-moving solids bed. The empirical evidence includes screw freezing experiments with cross-sections of processed high-impact polystyrene (HIPS) blended with varying colorants. Non-isothermal, non-Newtonian process simulations indicate that the underlying causality is increased flow conductance in the melt pool caused by higher temperatures and shear rates in the recirculating melt pool. The results indicate the development of persistent, coiled sheet morphologies in both general purpose and barrier screw designs. The behavior differs significantly from prior melting and plastication models with the net effect of broader residence time distributions. The process models guide potential strategies for the remediation of the processing variances as well as potential opportunities to achieve improved dispersion as well as complex micro and nanostructures in polymer processing.
机译:研究了通过单螺杆挤出加工的聚合物的差异。虽然旋涡流在流体界是众所周知的,喷泉流是众所周知的由注射成型过程中的冻结层引起的,但我们的经验证据和过程模型表明,在与螺杆相邻的塑化螺杆的熔融通道中存在涡旋喷泉流。移动较慢的固体床。经验证据包括螺杆冷冻实验,其横截面为加工过的高抗冲聚苯乙烯(HIPS)和各种着色剂的混合物。非等温,非牛顿过程模拟表明,潜在的因果关系是由循环熔池中较高的温度和剪切速率引起的熔池中流导增加。结果表明,在通用和防护螺钉设计中,持续的,卷曲的板材形态都得到了发展。该行为与先前的熔融和塑化模型显着不同,其滞留时间分布更宽广。工艺模型指导了补救工艺差异的潜在策略,以及在聚合物加工中实现改善的分散性以及复杂的微米和纳米结构的潜在机会。

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