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Hydrostatically extruded glass fiber reinforced polyoxymethylene .2. Modeling the elastic properties

机译:静液压挤压玻璃纤维增​​强聚甲醛.2。建模弹性特性

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This paper describes an investigation into modeling the elastic properties of hydrostatically extruded short glass fiber reinforced polyoxymethylene (POM). The starting material for the extrusion was randomly arranged short glass fibers (25 wt%, average length 150 mu m) in an isotropic POM matrix. Extrusion was carried out through a reducing conical die at 15 degrees C below the melting point of the matrix phase (hence the composite was extruded in the solid state), such that after extrusion, preferential alignment along the extrusion direction was developed for both the fibers and for the crystalline fraction of the polymer matrix. The elastic properties of samples, made over a range of extrusion ratios, were measured using the ultrasonic immersion method, a technique that allows a complete set of elastic constants to be determined for a composite. Theoretical predictions for the elastic properties of the oriented extrudates were generated by combining a modification to the theory of Wilczynski to allow for the fibers' being surrounded by an oriented matrix phase, together with the aggregate model of Ward to model the effects of partial orientation of the fiber oriented matrix units.
机译:本文介绍了一种对静液压挤压短玻璃纤维增​​强聚甲醛(POM)的弹性特性建模的研究。挤出的起始材料是在各向同性的POM基质中随机排列的短玻璃纤维(25 wt%,平均长度150μm)。通过还原性圆锥模头在低于基质相熔点的15摄氏度下进行挤出(因此复合材料以固态方式挤出),因此在挤出后,两种纤维均沿挤出方向形成优先排列对于聚合物基质的结晶部分。使用超声波浸没法测量在一定的挤出比范围内制成的样品的弹性性能,该技术可确定复合材料的完整弹性常数。通过结合对Wilczynski理论的修改(允许纤维被取向的基体相包围)和Ward的聚集模型来模拟取向挤出物的弹性特性的理论预测,Ward的聚集模型可以模拟取向挤出物的弹性。纤维定向基质单元。

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