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Influence of transcrystalline layer on finite element mesoscale modeling of polyamide 6 based single polymer laminate composites

机译:跨晶层对聚酰胺6基单聚合物层压复合材料有限元介观模型的影响

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This study presents a novel approach for finite element modeling of the elastic behavior of a plain-woven reinforced single polymer laminate composites (WSPC) based on polyamide 6 (PA6). These composites are produced via compression molding of PA6 woven textile structures that are powder-coated by anionic PA6 microparticles. Morphological and structural analysis complemented by electron microscopy, image processing and X-ray diffraction suggest the presence of transcrystalline layer (TCL) at the matrix-reinforcement interface. Having in mid this experimental fact, a novel procedure is developed for finite level discretization of TCL in the representative volume element (RVE) during tensile straining. The procedure correlates the material properties with the overall load applied, thus adequately modelling the tensile behavior of the WSPC based on the constituent materials. The stress field along the elements of the RVE model is studied while the tensile loads were applied in two principal directions. A good agreement between the real mechanical behavior and that calculated based on the model was demonstrated.
机译:这项研究为基于聚酰胺6(PA6)的平织增强单聚合物层压复合材料(WSPC)的弹性行为提供了一种有限元建模的新颖方法。这些复合材料是通过对PA6机织织物结构进行压缩成型而生产的,该结构通过阴离子PA6微粒进行了粉末涂层。借助电子显微镜,图像处理和X射线衍射进行的形态和结构分析表明,在基体-增强界面处存在跨晶层(TCL)。在这一实验事实的中期,开发了一种新方法,用于在拉伸应变过程中对TCL在代表体积元素(RVE)中进行有限水平离散化。该过程将材料特性与所施加的总载荷相关联,从而根据组成材料对WSPC的拉伸行为进行了充分的建模。研究了沿两个主要方向施加拉伸载荷时沿RVE模型元素的应力场。实际力学行为与基于模型计算的力学行为之间显示出良好的一致性。

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