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Effect of Rapid Mold Heating on the Structure and Performance of Injection-Molded Polypropylene

机译:快速模具加热对注塑聚丙烯结构和性能的影响

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摘要

The tailoring by the process of the properties developed in the plastic objects is the more effective way to improve the sustainability of the plastic objects. The possibility to tailor to the final use the properties developed within the molded object requires further understanding of the relationship between the properties of the plastic objects and the process conduction. One of the main process parameters that allow adjusting the properties of molded objects is the mold temperature. In this work, a thin electrical heater was located below the cavity surface in order to obtain rapid and localized surface heating/cooling cycles during the injection molding process. An isotactic polypropylene was adopted for the molding tests, during which surface temperature was modulated in terms of values and heating times. The modulation of the cavity temperature was found able to control the distribution of relevant morphological characteristics, thus, properties along the sample thickness. In particular, lamellar thickness, crystallinity distribution, and orientation were analyzed by synchrotron X-ray experiments, and the morphology and elastic modulus were characterized by atomic force microscopy acquisitions carried out with a tool for the simultaneous nanomechanical characterization. The crystalline degree slightly increased with the cavity temperature, and this induced an increase in the elastic modulus when high temperatures were adopted for the cavity surface. The cavity temperature strongly influenced the orientation distribution that, on its turn, determined the highest values of the elastic modulus found in the shear layer. Furthermore, although the sample core, not experiencing a strong flow field, was not characterized by high levels of orientation, it might show high values of the elastic modulus if temperature and time during crystallization were sufficient. In particular, if the macromolecules spent adequate time at temperatures close to the crystallization temperature, they could achieve high levels of structuring and, thus, high values of elastic modulus.
机译:通过对塑料物体中形成的特性进行处理来进行剪裁是提高塑料物体可持续性的更有效方法。为了使最终用途适应模制物体内产生的性能,需要进一步了解塑料物体的性能与过程传导之间的关系。允许调节模制品性能的主要工艺参数之一是模具温度。在这项工作中,一个薄的电加热器位于型腔表面的下方,以便在注塑过程中获得快速而局部的表面加热/冷却循环。等规聚丙烯用于模制测试,在此期间根据值和加热时间调节表面温度。发现腔温度的调制能够控制相关形态特征的分布,从而控制沿着样品厚度的性质。尤其是,通过同步加速器X射线实验分析了层状厚度,结晶度分布和取向,并且通过使用同时进行纳米力学表征的工具进行的原子力显微镜采集对形态和弹性模量进行了表征。结晶度随模腔温度而略有增加,当在模腔表面采用高温时,这会引起弹性模量的增加。模腔温度强烈影响取向分布,进而决定了剪切层中的弹性模量的最大值。此外,尽管没有经历强流场的样品芯没有以高水平的取向为特征,但是如果结晶过程中的温度和时间足够的话,它可能显示出高的弹性模量值。特别地,如果大分子在接近结晶温度的温度下花费足够的时间,则它们可以实现高水平的结构化,从而获得高的弹性模量值。

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