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Flow-enhancing layers in the vacuum infusion process

机译:真空灌注过程中的流动增强层

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The current trend towards increased used of vacuum infusion molding for large surface-area parts has increased the interest in an advanced modeling of the process. Because the driving pressure is limited to 1 atmosphere, it is essential to evaluate possible ways to accelerate the impregnation. One way of doing this is to use layers of higher permeability within the reinforcing stack,i.e. flow-enhancing layers. We present an experimental investigation of the flow front shape when using such layers. The through-thickness flow front was observed by making a number of color marks on the glass-mats forming the reinforcing stack, which became visible when the resin reached their position. The in-plane flow front was derived from observations of the uppermost layer. It turned out that existing analytical models agree very well with the experiments if effective permeability data is used, that is, permeability obtained from vacuum infusions. However, the fill-time was nearly twice as long as predicted from permeability data obtained in a stiff tool. This rather large discrepancy be due to certain features of a flexible mold half and is therefore a topic for further research. The lead-lag to final thickness ratio is dependent on the position of the flow front and ranges from 5 to 10 for the cases tested. Interestingly the lead-lag has a maximum close to the inlet.
机译:当前增加对大表面积零件使用真空灌注成型的趋势,增加了对该工艺高级建模的兴趣。由于驱动压力限制为1个大气压,因此必须评估加速浸渍的可能方法。一种这样做的方法是在加强叠层内使用较高渗透率的层,即流量增强层。我们提出了使用此类层时流前形状的实验研究。通过在形成加强叠层的玻璃垫上留下许多色标来观察贯穿厚度的流动前沿,这些色标在树脂到达其位置时可见。平面内流动锋面是从最上层的观察得出的。事实证明,如果使用有效的渗透率数据,即从真空注入获得的渗透率,则现有的分析模型与实验非常吻合。但是,填充时间几乎是从刚性工具中获得的渗透率数据预测的两倍。这种相当大的差异是由于柔性半模的某些特征所致,因此是进一步研究的主题。超前滞后与最终厚度之比取决于流动前沿的位置,在测试情况下范围为5到10。有趣的是,超前滞后在入口附近具有最大值。

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