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Prediction of extrudate swell in polymer melt extrusion using an Arbitrary Lagrangian Eulerian (ALE) based finite element method

机译:基于任意拉格朗日欧拉(ALE)有限元方法的聚合物熔体挤出中挤出物膨胀的预测

摘要

Accurate prediction of extrudate (die) swell in polymer melt extrusion is important as this helps in appropriate die design for profile extrusion applications. Extrudate swell prediction has shown significant difficulties due to two key reasons. The first is the appropriate representation of the constitutive behavior of the polymer melt. The second is regarding the simulation of the free surface, which requires special techniques in the traditionally used Eulerian framework. In this paper we propose a method for simulation of extrudate swell using an Arbitrary Lagrangian Eulerian (ALE) technique based finite element formulation. The ALE technique provides advantages of both Lagrangian and Eulerian frameworks by allowing the computational mesh to move in an arbitrary manner, independent of the material motion. In the present method, a fractional-step ALE technique is employed in which the Lagrangian phase of material motion and convection arising out of mesh motion are decoupled. In the first step, the relevant flow and constitutive equations are solved in Lagrangian framework. The simpler representation of polymer constitutive equations in a Lagrangian framework avoids the difficulties associated with convective terms thereby resulting in a robust numerical formulation besides allowing for natural evolution of the free surface with the flow. In the second step, mesh is moved in ALE mode and the associated convection of the variables due to relative motion of the mesh is performed using a Godunov type scheme. While the mesh is fixed in space in the die region, the nodal points of the mesh on the extrudate free surface are allowed to move normal to flow direction with special rules to facilitate the simulation of swell. A differential exponential Phan Thien Tanner (PTT) model is used to represent the constitutive behavior of the melt. Using this method we simulate extrudate swell in planar and axisymmetric extrusion with abrupt contraction ahead of the die exit. This geometry allows the extrudate to have significant memory for shorter die lengths and acts as a good test for swell predictions. We demonstrate that our predictions of extrudate swell match well with reported experimental and numerical simulations.
机译:准确预测聚合物熔体挤出过程中的挤出物(模头)膨胀非常重要,因为这有助于为型材挤出应用进行适当的模头设计。由于两个关键原因,挤出物膨胀预测显示出重大困难。首先是聚合物熔体本构行为的适当表示。第二个是关于自由表面的仿真,这需要在传统使用的欧拉框架中进行特殊的技术。在本文中,我们提出了一种基于任意拉格朗日欧拉(ALE)技术基于有限元公式的挤出物胀大模拟方法。 ALE技术通过允许计算网格独立于材料运动以任意方式移动,从而提供了拉格朗日框架和欧拉框架的优点。在本方法中,采用分数步ALE技术,其中物质运动和由网格运动引起的对流的拉格朗日相位解耦。第一步,在拉格朗日框架中求解相关的流量和本构方程。拉格朗日框架中聚合物本构方程的更简单表示避免了与对流项相关的困难,因此除了允许自由表面随流动自然演化外,还产生了健壮的数值公式。在第二步中,以ALE模式移动网格,并使用Godunov类型方案执行因网格的相对运动导致的变量对流关联。在将网格固定在模具区域的空间中的同时,允许挤出物自由表面上的网格的结点沿特殊的规则垂直于流向移动,以促进膨胀的模拟。差分指数Phan Thien Tanner(PTT)模型用于表示熔体的本构行为。使用这种方法,我们可以在模头出口前的突然收缩中模拟平面和轴对称挤出中的挤出物溶胀。这种几何形状可以使挤出物具有显着的记忆力,以缩短模具长度,并可以很好地预测膨胀率。我们证明了我们对挤出物膨胀的预测与报道的实验和数值模拟非常吻合。

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