首页> 外文期刊>Journal of polymer engineering >Influence of low-fracture-fiber mechanism on fiber/melt-flow behavior and tensile properties of ultra-long-glass-fiber-reinforced polypropylene composites injection molding
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Influence of low-fracture-fiber mechanism on fiber/melt-flow behavior and tensile properties of ultra-long-glass-fiber-reinforced polypropylene composites injection molding

机译:低骨折 - 纤维机制对超长玻璃 - 纤维增强聚丙烯复合材料注射成型纤维/熔喷性能和拉伸性能的影响

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摘要

In this study, an injection molding machine with a low-fracture-fiber mechanism was designed with three stages: a plasticizing stage, an injection stage, and a packing stage. The fiber-fracture behavior is observed under the screw (plasticizing stage) of low-compression/shear ratio for the ultra-long fiber during the molding process. The molding material employed in this study was 25-mm-ultra-long-glass-fiber-reinforced polypropylene (PP/U-LGF). In addition, a thickness of 3 mm and a width of 12 mm spiral-flow-mold were constructed for studying the melt flow length and flow-length ratio through an experiment. The experimental results showed that the use of an injection molding machine with a three-stage mechanism decreased the fiber length when the screw speed was increased. On average, each fiber was shortened by 50% (15 mm on average) from its original length of 25 mm. Longer glass fibers were more resistant to melt filling, and as the fiber length was reduced, the mixing between the melt and glass fibers was improved. Thus, the melt fluidity and fiber ratios were increased. In addition, the mixing/flow direction of the melt had an impact on the dispersion and arrangement of glass fibers, thus the tensile strength of PP/U-LGF increased.
机译:在该研究中,设计了具有低骨折 - 纤维机理的注塑机,具有三个阶段:塑化阶段,注射阶段和包装阶段。在模制过程中,在超长纤维的低压缩/剪切比的螺杆(塑化阶段)下观察到纤维断裂行为。本研究中使用的模塑材料是25mm-超长玻璃纤维增​​强聚丙烯(PP / U-LGF)。另外,构造了3mm的厚度和12mm螺旋形模具的宽度,用于通过实验研究熔体流动长度和流量长度。实验结果表明,当螺杆速度增加时,使用具有三级机构的注塑机的使用降低了纤维长度。平均而言,每个纤维从其原始长度为25 mm,每个纤维缩短50%(& 15 mm)。较长的玻璃纤维更耐熔融填充,随着纤维长度的减小,熔体和玻璃纤维之间的混合得到改善。因此,增加了熔融的流动性和纤维比。另外,熔体的混合/流动方向对玻璃纤维的分散和布置产生了影响,因此PP / U-LGF的拉伸强度增加。

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