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Hydrophobicity Tuning by the Fast Evolution of Mold Temperature during Injection Molding

机译:注射成型过程中模具温度的快速变化调节疏水性

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摘要

The surface topography of a molded part strongly affects its functional properties, such as hydrophobicity, cleaning capabilities, adhesion, biological defense and frictional resistance. In this paper, the possibility to tune and increase the hydrophobicity of a molded polymeric part was explored. An isotactic polypropylene was injection molded with fast cavity surface temperature evolutions, obtained adopting a specifically designed heating system layered below the cavity surface. The surface topology was characterized by atomic force microscopy (AFM) and, concerning of hydrophobicity, by measuring the water static contact angle. Results show that the hydrophobicity increases with both the temperature level and the time the cavity surface temperature was kept high. In particular, the contact angle of the molded sample was found to increase from 90°, with conventional molding conditions, up to 113° with 160 °C of cavity surface temperature kept for 18 s. This increase was found to be due to the presence of sub-micro and nano-structures characterized by high values of spatial frequencies which could be more accurately replicated by adopting high heating temperatures and times. The surface topography and the hydrophobicity resulted therefore tunable by selecting appropriate injection molding conditions.
机译:成型零件的表面形貌会极大地影响其功能特性,例如疏水性,清洁能力,附着力,生物防御力和耐摩擦性。在本文中,探索了调节和增加模塑聚合物部件疏水性的可能性。等规聚丙烯注射成型后,模腔表面温度快速变化,采用专门设计的加热系统在模腔表面下方分层获得。通过原子力显微镜(AFM)表征表面拓扑,并通过测量水的静态接触角来表征疏水性。结果表明,疏水性随温度水平和保持腔体表面温度升高的时间而增加。特别地,发现在常规模制条件下,模制样品的接触角从90°增加到160°C腔表面温度保持18 s时的113°。发现这种增加是由于存在亚微米和纳米结构,其特征在于高的空间频率值,可以通过采用较高的加热温度和时间来更精确地复制。因此,通过选择合适的注塑条件可以调节表面形貌和疏水性。

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