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Polysulfone foam with high expansion ratio prepared by supercritical carbon dioxide assisted molding foaming method

机译:具有高膨胀比的聚砜泡沫,通过超临界二氧化碳辅助模塑发泡方法制备

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摘要

Polysulfone (PSU) is considered as an important candidate for the fabrication of high-performance microcellular polymers, but the preparation of PSU foam with a high expansion ratio still remains a big challenge worldwide. In this study, high expansion ratio PSU foam was successfully prepared by a supercritical carbon dioxide (CO2) assisted molding foaming method. The foaming behavior of PSU under supercritical CO2 was systematically studied in various process conditions and different microcellular structures were created in PSU foams. The results showed that foaming temperature and CO2 concentration were the key factors to obtain microcellular foams with tailored microstructures. The cellular structure and expansion ratio of PSU foam obviously changed with different foaming temperatures. The expansion ratio and average cell size firstly increased and then decreased as foaming temperature increased. However, the cell density decreased and then remained stable as foaming temperature increased. The maximum expansion ratio of 11.0 was reached at the optimum foaming temperature of 200 degrees C. Cellular structure and morphologies of the foam changed obviously at CO2 concentrations below 5% and remained stable at CO2 concentrations above 5%. Finally, the prepared PSU foams exhibit excellent mechanical strength, good thermal conductivity, and superb heat retardancy, thus may have great potential application as a kind of substitute material in the electrical wire and cable industry, railway and steamer transportation, oil and gas platforms, military use and in other fields.
机译:聚砜(PSU)被认为是制备高性能微孔聚合物的重要候选者,但具有高膨胀比的PSU泡沫的制备仍然是全世界的重大挑战。在该研究中,通过超临界二氧化碳(CO2)辅助模塑发泡方法成功地制备了高膨胀比PSU泡沫。在各种工艺条件下系统地研究了超临界CO2下PSU的发泡行为,在PSU泡沫中产生了不同的微孔结构。结果表明,发泡温度和CO2浓度是获得具有量身定制微观结构的微孔泡沫的关键因素。 PSU泡沫的细胞结构和膨胀比随着不同的发泡温度明显改变。随着发泡温度的增加,膨胀比和平均电池尺寸的膨胀比和平均电池尺寸随后降低。然而,电池密度降低,然后随着发泡温度的增加而保持稳定。在200摄氏度的最佳发泡温度下达到11.0的最大膨胀率。泡沫的细胞结构和形态在CO 2浓度低于5%的CO 2浓度下变化,并且在5%以上的CO 2浓度下保持稳定。最后,制备的PSU泡沫表现出优异的机械强度,良好的导热性和过度的散热性,因此可能具有巨大的潜在应用作为电线和电缆行业,铁路和蒸锅运输,石油和天然气平台中的一种替代材料,军用使用和其他领域。

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  • 来源
    《RSC Advances》 |2018年第6期|共7页
  • 作者单位

    Sichuan Univ Polymer Res Inst State Key Lab Polymer Mat Engn Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ Polymer Res Inst State Key Lab Polymer Mat Engn Chengdu 610065 Sichuan Peoples R China;

    Sichuan Univ Polymer Res Inst State Key Lab Polymer Mat Engn Chengdu 610065 Sichuan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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