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大麻增强注塑成型乙丙共聚物中的纤维取向与浓度

Fiber Orientation and Concentration in an Injection-Molded Ethylene-Propylene Copolymer Reinforced by Hemp.

作者信息

Dupuis Antoine, Pesce Jean-Jacques, Ferreira Paulo, Régnier Gilles

机构信息

PIMM, Arts et Métiers Institute of Technology, CNRS, Cnam, HESAM Université, 151 Boulevard de l'Hôpital, 75013 Paris, France.

Faurecia Interior Systems, 8 Rue Emile Zola, 60110 Méru, France.

出版信息

Polymers (Basel). 2020 Nov 24;12(12):2771. doi: 10.3390/polym12122771.

Abstract

This paper characterizes and analyzes the microstructures of injection-molded polypropylene parts reinforced with 20 wt% of hemp fibers in order to understand the process induced variations in thermomechanical properties. In-thickness fiber orientation and fiber content were determined by X-ray tomography along the flow. The fiber content along the flow path was also determined by direct fiber content measurements after matrix dissolution, showing an increase of 2%/100 mm for a 2.2 mm-thick plate due to fiber migration during the filling stage. A typical shell/core structure for fiber orientation in injection molding was observed, but with a very clear transition between the layer solidified under high shear rates and the core in which the fiber content was reduced by more than 50%. The orientation of hemp fibers is lower than the one of glass fibers, especially in thickness direction. However, the overall fiber orientation in the injection direction induces significant anisotropic thermomechanical properties, which cannot be explained by simple micromechanical models that consider isotropic mechanical properties for hemp fibers. These phenomena must be taken into account in process simulation codes for injection molding to better predict thermomechanical properties as well as part shrinkage and warpage to design molds.

摘要

本文对含20 wt%大麻纤维增强的注塑聚丙烯部件的微观结构进行了表征和分析,以了解加工过程中热机械性能的变化。通过沿流动方向的X射线断层扫描确定了厚度方向的纤维取向和纤维含量。在基体溶解后,通过直接测量纤维含量也确定了沿流动路径的纤维含量,结果表明,对于2.2毫米厚的板材,由于在填充阶段纤维迁移,纤维含量每100毫米增加2%。观察到注塑成型中纤维取向的典型壳/核结构,但在高剪切速率下固化的层与纤维含量减少超过50%的芯之间有非常明显的过渡。大麻纤维的取向低于玻璃纤维,尤其是在厚度方向。然而,注射方向上的整体纤维取向会导致显著的各向异性热机械性能,这无法用考虑大麻纤维各向同性力学性能的简单微观力学模型来解释。在注塑成型的过程模拟代码中必须考虑这些现象,以便更好地预测热机械性能以及部件收缩和翘曲,从而设计模具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/34ff/7760281/af52ef9b6a5b/polymers-12-02771-g001.jpg

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