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Modeling of pneumatic melt drawing of polypropylene super-thin fibers in the Laval nozzle

机译:拉瓦尔喷嘴中聚丙烯超细纤维的气动熔体拉伸建模

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摘要

Melt spinning of the fibers by supersonic air jet in the Laval nozzle is a novel, efficient and energy saving method of formation of super-thin fibers. In the process, polymer melt is extruded from a row of orifices and fast drawn by the pneumatic forces. In the modelling, air velocity, temperature and pressure distributions are computed from the k-! aerodynamic model. Computations of the polymer air-drawing dynamics are based on the mathematical model of melt spinning in a single-, thin-filament approximation and Phan-Thien/Tanner non-linear viscoelasticity of the polymer melt. Axial profiles of the polymer velocity, temperature, tensile stress and rheological extra-pressure are computed. Influence of the Laval nozzle geometry, initial air compression, an initial melt temperature, a polymer mass output and the diameter of the melt extrusion die is discussed. The role of the polymer molecular weight, melt viscosity and relaxation time is considered. Example computations show the influence of important processing and material parameters. In the supersonic process, a high negative internal extra-pressure is predicted in the polymer melt under high elongation rates which may lead to cavitation and longitudinal burst splitting of the filament into a high number of sub-filaments. A hypothetical number of sub-filaments at the splitting is estimated from an energetic criterion. The diameter of the sub-filaments may reach the range of nano-fibers. A substantial influence of the Laval nozzle geometry is also predicted.
机译:在拉瓦尔喷嘴中通过超音速气流对纤维进行熔体纺丝是形成超细纤维的一种新颖,高效且节能的方法。在此过程中,聚合物熔体从一排孔中挤出,并通过气动力快速拉出。在建模中,根据k-!计算空气速度,温度和压力分布。空气动力学模型。聚合物吸气动力学的计算基于熔体纺丝的数学模型,该模型以单丝,细丝近似以及聚合物熔体的Phan-Thien / Tanner非线性粘弹性表示。计算聚合物速度,温度,拉伸应力和流变超压的轴向分布。讨论了拉瓦尔喷嘴几何形状,初始空气压缩,初始熔体温度,聚合物质量输出和熔体挤出模头直径的影响。考虑了聚合物分子量,熔体粘度和松弛时间的作用。示例计算显示了重要加工和材料参数的影响。在超音速过程中,预计聚合物熔体在高伸长率下会产生高的负内部超压,这可能导致空化和将长丝纵向破裂成许多子丝。根据高能准则估算假想分裂时的子丝数目。子丝的直径可以达到纳米纤维的范围。还预测了拉伐喷嘴几何形状的重大影响。

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