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A numerical study of solidification and viscous dissipation effects on polymer melt flow in plane channels

机译:凝固和粘性耗散对平面通道内聚合物熔体流动影响的数值研究

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The combined effects of solidification and viscous dissipation on the hydrodynamic and thermal behavior of polymer melt flow during the injection process in a straight plane channel of constant cross section are numerically studied by considering the shear-rate and temperature-dependent viscosity and transient-phase change behavior. A numerical finite volume method, in conjunction with a modified form of the Cross constitutive equation to account for shear rate, temperature-dependent viscosity changes and a slightly modified form of the method proposed by Voller and Prakash to account for solidification of the liquid phase, is used and a validation with an analytical solution is presented for viscous heating effects. The hydrodynamic and solidified layers growth under the influence of a transient phase-change process and viscous dissipation, are analyzed for a commercial polymer melt flow, polypropylene (PP) for different parametric conditions namely, inflow velocity, polymer injection (inflow) temperature, the channel wall temperature, and the channel height. The results demonstrate that the proposed numerical formulations, including conjugate effects of viscous heating and transient-solidification on the present thermal transport process, can provide an accurate and realistic representation of polymer melt flow behavior during the injection molding process in plane channels with less simplifying assumptions.
机译:通过考虑剪切速率和温度相关的粘度以及过渡相的变化,数值研究了凝固和粘性耗散对注射过程中恒定横截面的直通道内聚合物熔体流动的流体力学和热行为的综合影响。行为。数值有限体积法,结合了Cross本构方程的修正形式以解决剪切速率,随温度变化的粘度变化,以及Voller和Prakash提出的方法的略微修正形式以解决液相的固化问题,使用,并给出了粘性加热效应的分析解决方案的验证。在瞬态相变过程和粘性耗散的影响下,对流体动力层和凝固层的生长进行了分析,分析了商用聚合物熔体流动,聚丙烯(PP)在不同参数条件下的情况,即流入速度,聚合物注入(流入)温度,通道壁温度和通道高度。结果表明,所提出的数值公式(包括粘性加热和瞬态凝固对当前热传递过程的共轭效应)可以在不简化的情况下,在平面通道中的注射成型过程中准确,真实地表示聚合物熔体的流动行为。 。

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