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The Microcellular Structure of Injection Molded Thick-Walled Parts as Observed by In-Line Monitoring

机译:通过在线监测观察的注塑厚壁零件的微孔结构

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摘要

The aim of the study was to detect the influence of nitrogen pressure on the rheological properties and structure of PA66 GF30 thick-walled parts, produced by means of microcellular injection molding (MIM), using the MuCell® technology. The process was monitored in-line with pressure and temperature sensors assembled in the original injection mold. The measured data was subsequently used to evaluate rheological properties inside an 8.4 mm depth mold cavity. The analysis of the microcellular structure was related to the monitored in-line pressure and temperature changes during the injection process cycle. A four-times reduction of the maximum filling pressure in the mold cavity for MIM was found. At the same time, the holding pressure was taken over by expanding cells. The gradient effect of the cells distribution and the fiber arrangement in the flow direction were observed. A slight influence of nitrogen pressure on the cells size was found. Cells with a diameter lower than 20 µm dominate in the analyzed cases. An effect of reduction of the average cells size in the function of distance to the gate was observed. The creation of structure gradient and changes of cells dimensions were evaluated by SEM images and confirmed with the micro CT analysis.
机译:该研究的目的是检测氮气压力对PA66 GF30厚壁部件的流变性能和结构的影响,采用MuCell®技术生产的微孔注射成型(MIM)产生。在线与原始注塑模具组装的压力和温度传感器在线监测该过程。随后使用测量的数据来评估8.4mm深度模腔内的流变性质。微孔结构的分析与喷射过程循环期间监测的在线压力和温度变化有关。发现了MIM的模腔中的最大灌浆压力的四倍。同时,通过膨胀细胞接管保持压力。观察到细胞分布和流动方向上的纤维布置的梯度效应。发现氮压力对细胞大小的略微影响。直径低于20μm的细胞在分析的情况下占主导地位。观察到在与浇口距离的距离中的平均电池尺寸的减少的影响。通过SEM图像评估结构梯度和细胞尺寸变化的创建,并通过MICRO CT分析证实。

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