Polymeric field synergy principle: Revealing the intrinsic mechanism of screw channel optimization to enhance thermal management and process efficiency

Wei Pan, Shizheng Huang, Jiawei Zhu, Xiankui Zeng, Weimin Yang, Ranran Jian
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Abstract

The process efficiency and energy efficiency of extrusion equipment emerge as pivotal challenges constraining the development of the polymer extrusion industry. This article presents a new principle of polymeric field synergy to guide the solution to the low mixing efficiency and energy utilization efficiency of traditional extrusion equipment. Finite element analysis was conducted on four novel unconventional screw configurations and compared with the traditional single-thread screw. Results revealed that more complicated melt flow patterns generated in the modified novel screw configurations enhanced the stretching deformation or helical flow. The stretching or helical flows to varying degrees during the melt extrusion process thereby improved the mixing and heat transport efficiency. Among them, helical flow induced by the Maddock element exhibited the most significant impact on stretching flow and ductile deformation in the flow field. Simultaneously, the helical flow caused radial motion of the internal material, significantly promoting the synergy between the velocity field, velocity gradient field, and temperature gradient field. This enhanced radial heat and mass transport efficiency within the screw channel, subsequently improving the overall operational efficiency of the equipment. The results of the finite element analysis have substantiated the scientific validity of the polymeric field synergy principle.
聚合场协同原理:揭示螺旋通道优化的内在机制,提高热管理和工艺效率
挤出设备的工艺效率和能源效率成为制约聚合物挤出行业发展的关键挑战。本文提出了一种新的聚合物场协同原理,用以指导解决传统挤出设备混合效率和能源利用效率低的问题。文章对四种新型非常规螺杆配置进行了有限元分析,并与传统的单螺杆进行了比较。结果表明,改良后的新型螺杆配置产生了更复杂的熔体流动模式,增强了拉伸变形或螺旋流动。在熔体挤出过程中,不同程度的拉伸或螺旋流动提高了混合和热传输效率。其中,马多克元件诱导的螺旋流对流场中的拉伸流和韧性变形影响最大。同时,螺旋流引起了内部材料的径向运动,极大地促进了速度场、速度梯度场和温度梯度场之间的协同作用。这提高了螺旋通道内的径向热量和质量传输效率,从而提高了设备的整体运行效率。有限元分析的结果证实了聚合物场协同原理的科学性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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