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用于可持续聚合物加工的紧凑型、节能混合螺杆的设计、建模与验证

Design, Modeling, and Validation of a Compact, Energy-Efficient Mixing Screw for Sustainable Polymer Processing.

作者信息

Kazmer David O, Kodra Stiven

机构信息

Department of Plastics Engineering, University of Massachusetts Lowell, Lowell, MA 01854, USA.

Department of Mechanical Engineering, University of Massachusetts Lowell, Lowell, MA 01854, USA.

出版信息

Polymers (Basel). 2025 Jan 16;17(2):215. doi: 10.3390/polym17020215.

Abstract

This study presents the design, modeling, and validation of a mixing screw for energy-efficient single-screw extrusion. The screw features a short length-to-diameter (L/D) ratio of 8:1 and incorporates double flights with variable pitch and counter-rotating mixing slots. These features promote enhanced plastication by breaking up the solid bed and improving thermal homogeneity through backflow mechanisms relieving a 3.75 compression ratio. Non-isothermal, non-Newtonian simulations modeled the thermal and flow behavior for high-impact polystyrene (HIPS) and recycled polypropylene (rPP) under various operating conditions. Experimental validation was conducted using a 20 mm pilot-scale extruder with screw speeds ranging from 10 to 40 RPM and barrel temperatures of 220 °C and 240 °C. Results showed a strong linear dependence of mass output on screw speed, with maximum mass throughputs of 0.58 kg/h for HIPS and 0.74 kg/h for rPP at 40 RPM. Specific energy consumption (SEC) was calculated as 0.264 kWh/kg for HIPS and 0.344 kWh/kg for rPP, corresponding to efficiencies of 31.5% and 56.5% relative to theoretical minimum energy requirements. Compared to traditional general-purpose and barrier screws with L/D ratios of 27:1, the mixing screw demonstrated improved energy efficiency and reduced residence time distributions. These findings suggest the potential of the mixing screw for compact extrusion systems, including 3D printing and other sustainable polymer and bioplastics processing applications.

摘要

本研究介绍了一种用于节能单螺杆挤出的混合螺杆的设计、建模和验证。该螺杆的长径比(L/D)为8:1,采用变螺距双螺纹和反向旋转混合槽。这些特性通过打散固体床促进了增强的塑化作用,并通过回流机制改善了热均匀性,缓解了3.75的压缩比。非等温、非牛顿模拟对高抗冲聚苯乙烯(HIPS)和再生聚丙烯(rPP)在各种操作条件下的热行为和流动行为进行了建模。使用一台20毫米中试规模的挤出机进行了实验验证,螺杆转速范围为10至40转/分钟,料筒温度为220°C和240°C。结果表明,质量产量与螺杆转速呈强烈线性关系,在40转/分钟时,HIPS的最大质量产量为0.58千克/小时,rPP的最大质量产量为0.74千克/小时。计算得出HIPS的比能耗(SEC)为0.264千瓦时/千克,rPP的比能耗为0.344千瓦时/千克,相对于理论最低能量需求,效率分别为31.5%和56.5%。与长径比为27:1的传统通用螺杆和屏障螺杆相比,混合螺杆显示出更高的能源效率和更窄的停留时间分布。这些发现表明,混合螺杆在紧凑型挤出系统中具有潜力,包括3D打印以及其他可持续聚合物和生物塑料加工应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2fb0/11768437/ccf4ada3f1e3/polymers-17-00215-g001.jpg

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