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首页> 外文期刊>Journal of Macromolecular Science. Physics >Prediction of spherulite size in rotationally molded polypropylene
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Prediction of spherulite size in rotationally molded polypropylene

机译:滚塑聚丙烯中球晶尺寸的预测

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Rotational molding is used to manufacture hollow plastic parts. It is characterized by relatively slow cooling rates, which leads to large spherulites and brittleness in rotomolded polypropylene parts. Using both theoretical and experimental methods, this article assesses the factors that control spherulite size so that the properties of rotationally molded polypropylene parts can be improved. The approach taken is to predict the average density of the nuclei of isothermally crystallized polypropylene as a function of the crystallization temperature, using data on the half-time of crystallization (determined by differential scanning calorimetry) and the spherulite growth rate (measured by optical microscopy). The prediction method is then extended to nonisothermal quiescent crystallization, such as occurs in rotational molding, by determining the temperature corresponding to half of the phase change and its relationship with the cooling rate. To establish the average true sample temperature on cooling, experimental data are corrected for the temperature calibration at a particular cooling rate, the thermal resistance of the sample, and the release of the heat of crystallization. The surface nuclei density of polypropylene specimens, as crystallized isothermally and nonisothermally in differential scanning calorimetry, and also as processed by rotational molding, was determined by optical microscopy and converted to volume density using the Voronoy relationship. A good agreement was found to exist between the experimental results and the predictions. [References: 27]
机译:滚塑用于制造中空塑料零件。它的特点是冷却速度相对较慢,这会导致滚塑聚丙烯零件中产生较大的球晶和脆性。本文使用理论方法和实验方法,评估了控制球晶尺寸的因素,从而改善了旋转模塑聚丙烯零件的性能。所采用的方法是使用关于结晶半衰期(由差示扫描量热法确定)和球晶生长速率(由光学显微镜测量)的数据来预测等温结晶聚丙烯的核平均密度与结晶温度的关系。 )。然后,通过确定与相变的一半相对应的温度及其与冷却速率的关系,将预测方法扩展到非等温静态结晶,例如在旋转成型中发生的结晶。为了确定冷却时的平均真实样品温度,针对特定冷却速率,样品的热阻以及结晶热的释放,对温度校正的实验数据进行校正。聚丙烯样品的表面核密度,在差示扫描量热法中等温和非等温结晶,以及通过旋转模塑加工,通过光学显微镜确定,并利用Voronoy关系转换为体积密度。实验结果与预测之间存在良好的一致性。 [参考:27]

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