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Structure-Property Relationships in Rubber-Modified Styrenic Polymers

机译:橡胶改性苯乙烯聚合物中的结构性质关系

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Styrenic polymers and copolymers are often impact modified with rubber particles. The efficiency of rubber toughening depends mainly on the size of the rubber particles and the degree of cross-linking. The deformation rate, the temperature, the orientation of the polymer molecules and the efficiency of rubber grafting also influence rubber toughening. It is thought that on impact, cavitation inside the rubber particles occurs which reduces the detrimental dilatational stress in the bulk polymer without forming cracks in the brittle matrix or at the rubber-matrix interface. Crazing and shearing are facilitated if the rubber particles can easily cavitate. This can be achieved by either avoiding too much cross-linking or by adding oil (silicone oil in the case of ABS) into the rubber particles, which acts as nuclei for void formation. An electron spectroscopic imaging method is described which allows visualizing the location of the oil. Already after cooling silicone oil modified ABS samples down to liquid nitrogen temperature rubber cavitation is observed. This cavitation is caused by the thermal stress developing due to the differences in thermal expansion coefficient between the rubber phase and the SAN-matrix and is facilitated by silicone oil. Voiding also leads to an increase of light scattering, which can be detected by an optical microscope using dark field illumination.
机译:苯乙烯聚合物和共聚物通常用橡胶颗粒改性冲击。橡胶增韧的效率主要取决于橡胶颗粒的尺寸和交联度。变形速率,温度,聚合物分子的取向及橡胶接枝的效率也影响了橡胶增韧。据认为,在撞击时,发生橡胶颗粒内的空化,这会降低散装聚合物中的有害扩张应力而不形成脆性基质中的裂缝或橡胶 - 基质界面。如果橡胶颗粒可以容易地空明,则促进裂缝和剪切。这可以通过避免太多交联或通过将油(硅油在ABS的情况下)添加到橡胶颗粒中来实现,这用作空隙形成的核。描述了一种电子光谱成像方法,其允许可视化油的位置。已经在冷却硅油改性的ABS样品下方被观察到液氮温度橡胶空化。由于橡胶相和SAN - 基质之间的热膨胀系数的差异,该空化是由热应力发育引起的,并且通过硅油促进。空隙还导致光散射的增加,这可以通过使用暗场照明的光学显微镜来检测。

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