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Change in the critical nucleation radius and its impact on cell stability during polymeric foaming processes

机译:聚合物发泡过程中临界成核半径的变化及其对泡孔稳定性的影响

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摘要

The critical radius of cell nucleation is a function of the thermodynamic state that is uniquely determined by the system temperature. system pressure, and the dissolved gas concentration in the polymer/gas solution. Because these state variables change continuously during the foaming process, the critical radius varies simultaneously despite the traditional concept that it is a fixed thermodynamic property for a given initial state. According to classical nucleation theory, the critical radius determines the fate of the bubbles. Therefore, the change in the critical radius during foaming has a strong impact on the stability of foamed cells, especially in the production of microcellular or nanocellular foams. In this study, the continuous change in the critical radius is theoretically demonstrated under atmospheric pressure while bubbles are generated and expanded by the decomposition of a chemical blowing agent. The experimental results observed from the visualization cell are used to support the theoretically derived concept. Sustainability of the nucleated bubbles is also discussed by comparing the bubble size to the critical radius.
机译:细胞成核的临界半径是由系统温度唯一确定的热力学状态的函数。系统压力以及聚合物/气体溶液中的溶解气体浓度。由于这些状态变量在发泡过程中会不断变化,因此临界半径会同时变化,尽管传统观念认为它是给定初始状态的固定热力学性质。根据经典的成核理论,临界半径决定了气泡的命运。因此,在发泡过程中临界半径的变化对发泡孔的稳定性有强烈影响,特别是在微孔或纳米孔泡沫的生产中。在这项研究中,理论上证明了在大气压力下临界半径的连续变化,同时气泡由于化学发泡剂的分解而产生和膨胀。从可视化单元中观察到的实验结果用于支持理论上得出的概念。通过比较气泡大小和临界半径,还讨论了有核气泡的可持续性。

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