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Simulative Evaluation Of The Optimization Potential Of Additively Manufactured Static Mixing Elements For Extrusion

机译:挤压加固静态混合元件的优化电位的模拟评价

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In plastics extrusion, the homogeneity of the melt is an essential pre-requisite for uniform product quality. Static mixing elements for the extrusion of plastics serve to homogenize the melt by splitting and recombining the flow of polymer melt, thus removing e.g. hot streaks in the melt. However, the geometric complexity of static mixers, which typically consist of crossed bars of metal joined together, makes both the design and the manufacture of specialized mixer geometries difficult. Against this background, both simulation of melt flow in static mixers and additive manufacturing of static mixers by means of Selective Laser Melting are investigated. In order to accurately model the flow through the multitude of small gaps between the bars, the open-source CFD software OpenFOAM is employed. While OpenFOAM already supports very high resolution meshes and parallel computing, the interaction between melt temperature and melt viscosity and the effect of viscous heating are added to the simulation model. By means of the new simulation model, thermal mixing occurring during flow of a highly viscous HPDE through a reference static mixer is evaluated numerically. Selective Laser Melting not only allows an economic production of small and very small lots, but also offers design freedoms that have not been available before. This allows the production of static mixer geometries that cannot be manufactured with conventional processes. A framework for the exploitation of this advantage is shown. As an example, the potential thermal benefits of tempering channels located within each bar of the static mixer are explored.
机译:在塑料挤出中,熔体的均匀性是均匀产品质量的必要性预先存在。用于挤出塑料的静态混合元件用于通过分离和重组聚合物熔体的流动来均化熔体,从而除去例如,例如去除。熔体中的热条纹。然而,静态混合器的几何复杂性通常由连接在一起的金属交叉条组成,使得专用混合器几何形状的设计和制造难以困难。在此背景下,研究了通过选择性激光熔化的静态混合器中的熔体流动和静态混合器的添加剂制造的模拟。为了准确地模拟流过磁场之间的众多小间隙的流量,采用开源CFD软件OpenFoam。虽然OpenFoam已经支持非常高分辨率的网格和并联计算,但熔融温度和熔体粘度之间的相互作用以及粘性加热的效果被添加到模拟模型中。借助于新的仿真模型,在数值上评估通过参考静态混合器的高粘性HPDE流动期间发生的热混合。选择性激光熔化不仅允许经济生产小而且非常小的批量,而且还提供了以前没有可用的设计自由。这允许生产不能用常规过程制造的静态混合器几何形状。示出了利用这种优势的框架。例如,探索位于静态混合器的每个条内的回火通道的潜在热益处。

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