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Micro-Ultrasonic Viscosity Model Based on Ultrasonic-Assisted Vibration Micro-Injection for High-Flow Length Ratio Parts

机译:基于超声辅助振动微注射的大流量长径比零件微超声粘度模型

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摘要

A micro-ultrasonic (MU) viscosity model based on ultrasonic-assisted vibration micro-injection for high- flow length ratio polymer parts was established. This model considered the effects of ultrasonic energy and the characteristic microdimension. Ultrasonic energy parameters (such as the ultrasonic amplitude, frequency, and ultrasound velocity), the characteristic microdimension, and the molecular chain length (MCL) were introduced into the MU viscosity model. An ultrasonic micro-injection experimental platform was built on an injection molding machine. Polypropylene (PP) filling experiments were carried out using microgrooves with different flow length ratios (depth-to-width ratios of 3:1, 5:1, and 10:1). The validity and accuracy of the MU viscosity model were examined through a filling experiment with polypropylene (PP) microgroove injection molding and by a flow pressure difference experiment with polystyrene (PS). The results showed that the MU viscosity model was in better agreement with the experimental results compared to other models. The maximum error of the MU model was 4.9%. Ultrasound-assisted vibration had great effects on the filling capacity for microgrooves with high flow length ratios (depth-to-width ratios greater than 5:1). The filling capacity increased as the ultrasonic amplitude increased.
机译:建立了基于超声辅助振动显微注射技术的高流动长径比聚合物零件的微超声(MU)粘度模型。该模型考虑了超声能量和特征尺寸的影响。将超声能量参数(例如超声振幅,频率和超声速度),特征尺寸和分子链长度(MCL)引入到MU粘度模型中。在注塑机上建立了超声波微注射实验平台。聚丙烯(PP)填充实验是使用具有不同流长比(深宽比为3:1、5:1和10:1)的微沟槽进行的。 MU粘度模型的有效性和准确性通过聚丙烯(PP)微沟槽注射成型的填充实验和聚苯乙烯(PS)的流动压差实验进行了检验。结果表明,与其他模型相比,MU粘度模型与实验结果更加吻合。 MU模型的最大误差为4.9%。超声振动对高流长比(深宽比大于5:1)的微沟槽的填充能力有很大影响。填充量随着超声振幅的增加而增加。

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