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首页> 外文期刊>Journal of Micromechanics and Microengineering >Study on rheological behavior of polymer melt flowing through micro-channels considering the wall-slip effect
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Study on rheological behavior of polymer melt flowing through micro-channels considering the wall-slip effect

机译:考虑壁滑效应的聚合物熔体流经微通道的流变行为研究

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摘要

Micro molding is attracting more attention nowadays and determination of the theological behavior of the polymer melt within micro structured geometry is considered to be very important for the accurate simulation modeling of micro molding. The lack of commercial equipment is one of the main hurdles in the investigation of micro melt theology. In this study, the melt viscosity measurement system for PS (polystyrene) melt flowing through a micro-channel was established using a micro-channel mold operated at a mold temperature as high as the melt temperature. From measured pressure drop and volumetric flow rate both the capillary flow model and the slit flow model were used for the calculation of viscosity utilizing Rabinowitsch and Walters corrections. It was found that the measured viscosity values in the test ranges are significantly lower (decreased by a factor of about 1.4-4.1) than those obtained from the traditional capillary rheometer at a melt temperature of 200 degrees C using both the capillary flow model and the slit flow model. As the micro-channel size decreases, the reduction in the viscosity value increases when compared with data obtained from the traditional capillary rheometer. The ratio of slip velocity relative to mean velocity was also found to increase with decreasing size of micro-channels. It seems that wall slip plays a dominant role when melt flows through micro-channels and would result in a greater percentage in apparent viscosity reduction when the size of the micro-channel decreases. In addition, the wall-slip effect becomes more significant as the melt temperature increases. In the present study we emphasize that the rheological behavior of the melt in the microscopic scale is different from that of the macroscopic scale and that current simulation packages are not suitable for micro molding simulation without considering this difference.
机译:如今,微成型正引起越来越多的关注,在微结构化几何形状内确定聚合物熔体的流变行为被认为对于微成型的精确仿真建模非常重要。缺乏商业设备是研究微熔体神学的主要障碍之一。在这项研究中,使用在模具温度与熔融温度一样高的模具下运行的微通道模具,建立了流经微通道的PS(聚苯乙烯)熔体的熔融粘度测量系统。根据测得的压降和体积流量,毛细管流动模型和狭缝流动模型均用于通过Rabinowitsch和Walters校正进行粘度计算。结果发现,在测试温度范围内测得的粘度值比传统的毛细管流变仪在200℃的熔体温度下同时使用毛细管流动模型和毛细管流变仪测得的粘度值要低得多(降低了约1.4-4.1倍)。裂隙流模型。随着微通道尺寸的减小,与从传统毛细管流变仪获得的数据相比,粘度值的减小增加。还发现滑移速度相对于平均速度的比率随着微通道尺寸的减小而增加。看来,当熔体流过微通道时,壁滑起着主要作用,当微通道的尺寸减小时,壁滑将导致更大的表观粘度降低百分比。另外,随着熔融温度的升高,壁滑效应变得更加明显。在本研究中,我们强调,熔体在微观尺度上的流变行为不同于宏观尺度,并且在不考虑这种差异的情况下,当前的模拟软件包不适合用于微成型模拟。

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