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Cohesive-Driven Particle Circulation in the Solids Conveying Zone of a Single-Screw Extruder

机译:单螺杆挤出机固体输送区的内聚驱动颗粒循环

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Aspects of heat transfer within the solids conveying zone of a single-screw extruder were studied by using a specially constructed drum testing apparatus. Experiments were conducted with linear low-density polyethylene, polystyrene (PS), and polypropylene (PP) samples by examining their transient temperature profile while the heated drum was stationary or moving. In accordance with classic solids conveying theory, the granular beds of PP and PS remained as plugs while the drum rotated. In such cases, the dominant modes of heat transfer for these systems are conduction through the contact area of a particle and conduction through the interstitial gas. An exception to this behavior was found with PE, in which the bed temperature increased more rapidly while the drum rotated. Visual observations of the bed showed that the particles circulated in the presence of shear and that this complex flow pattern increased in velocity as the drum temperature approached the onset temperature for melting the PE material. With strong correlation between the rate of circulation and the temperature rise in the bed, the movement of particles was assumed to act in a convective heat transfer mode bringing about more uniform heating of the polymer. The circulation phenomenon was attributed to dominant adhesive forces at the particle-drun interface overcoming the cohesive strength of the bulk.
机译:通过使用特殊构造的滚筒测试设备,研究了单螺杆挤出机的固体输送区内的传热问题。使用线性低密度聚乙烯,聚苯乙烯(PS)和聚丙烯(PP)样品进行了实验,方法是检查加热鼓静止或移动时的瞬态温度曲线。根据经典的固体输送理论,在转鼓旋转时,PP和PS的颗粒床仍然是堵塞物。在这种情况下,这些系统的主要传热模式是通过颗粒接触区域的传导和通过间隙气体的传导。 PE出现了这种情况的一个例外,即鼓旋转时床温升高得更快。床的视觉观察表明,颗粒在剪切力的作用下循环,并且当鼓温度接近用于熔化PE材料的起始温度时,这种复杂的流动模式的速度增加。由于循环速率与床内温度升高之间具有很强的相关性,因此假定颗粒的移动以对流传热模式起作用,从而使聚合物的加热更为均匀。循环现象归因于颗粒-酒渣界面处的主要粘附力克服了整体的内聚强度。

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