壁面滑移条件下RPVC双螺杆挤压三维流场模拟

Jinnan Chen, Y. Cao
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引用次数: 0

摘要

利用POLYFLOW软件中的演化技术,计算了双螺杆挤出机计量段不同壁面滑移条件下刚性聚氯乙烯的三维等温流场。螺旋壁处的剪切应力与流动熔体的滑移速度之间的关系符合纳维耶线性定律。计算表明,部分滑移工况与全滑移工况在速度、压力、剪切速率、黏度等方面的差异很小。然后,本文只给出了全滑移和无滑移条件下的结果。结果表明:当滑移系数小于临界值时,双螺杆挤出机熔化段进出口压差和容积流量恒定,对应于全滑移状态;当滑移系数超过临界值时,随着滑移系数的增大,压差增大,速度和压力梯度增大。从而降低了产品的残余应力。因此,提高挤出壁滑移率有利于聚合物挤出的稳定性和产品质量。采用颗粒跟踪分析方法,对双螺杆挤出机在全滑移和无滑移条件下的分散和分布混合进行了研究。结果表明:无滑移条件下挤出机的分散混合性能优于全滑移条件,而有滑移条件下的分布混合性能优于无滑移条件。壁面的滑移有利于热敏性材料的挤压。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of 3D flow field of RPVC in twin-screw extrusion under wall slip conditions
Three-dimensional isothermal flow fields of rigid polyvinyl chloride are calculated under different wall slip conditions in the metering section of the twin-screw extruder by using the evolution technique in POLYFLOW. The relationship between the shear stress at the screw wall and the slip velocity of the flowing melt obeys Navier's linear law. Calculations show that the differences in velocity, pressure, shear rate, and viscosity between partial-slip condition and full-slip condition are so small. Then, only the results of full-slip and no-slip conditions were presented in the paper. The results show, when the slip coefficient is smaller than the critical value, the pressure difference between the entrance and exit of the melting section of the twin-screw extruder and the volumetric flow rate are constant, corresponding to the full slip condition. When the slip coefficient exceeds the critical value, with the slip coefficient increasing, the pressure difference and the gradients of velocity and pressure increase. The residual stress of the product is thus reduced. Therefore, increasing wall slip is good for the stability of polymer extrusion and the product quality. By using the particle tracking analysis method, the dispersive and the distributive mixing of the twin-screw extruder under full slip and no slip conditions are also studied. Results show that the dispersive mixing performance of the extruder is better under no-slip conditions than under full-slip conditions, but the distributive mixing performance is better under slip conditions than no-slip conditions. The slip at the wall is good for the extrusion of heat-sensitive materials.
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