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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Development of polylactide bead foams with double crystal melting peaks
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Development of polylactide bead foams with double crystal melting peaks

机译:具有双晶熔融峰的聚丙交酯珠泡沫的开发

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In this study, we report the development of polylactide (PLA) bead foams with a double crystal melting peak structure. PLA bead foams with 3- to 30-fold expansion ratios and average cell sizes ranged from 350 nm to 15 mu m were prepared. We found that the PLA's foam structure was significantly affected by the amount of perfected crystals (that is, crystals with a high melting temperature) generated during CO2 saturation. The structure was also affected by crystals with a low melting temperature that formed during foaming and cooling. Various CO2 pressures further influenced the crystallization kinetics of the crystals with a high melting temperature during the saturation. At various pressures, different crystallization kinetics also significantly affected the PLA foam's cell morphology and its uniformity. At a high saturation pressure, the increased content of dissolved CO2 in the PLA promoted the cell nucleation rate through the increased degree of thermodynamic instability. On the other hand, at high pressures, small-sized perfect crystals were induced as high-melting peak crystals. Thus, the heterogeneous cell nucleation around these crystals was further improved, which also caused the generation of a more uniform foam structure. Moreover, this study introduces this bead foam technology as an innovative new way to produce nanocellular foam products. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在这项研究中,我们报告了具有双晶体熔融峰结构的聚丙交酯(PLA)珠状泡沫的发展。制备了具有3至30倍膨胀率,平均泡孔尺寸为350 nm至15μm的PLA珠粒泡沫。我们发现,PLA的泡沫结构受CO2饱和过程中生成的完美晶体(即具有高熔化温度的晶体)的数量的影响很大。该结构还受到在发泡和冷却过程中形成的低熔点晶体的影响。在饱和期间,各种CO 2压力进一步影响具有高熔融温度的晶体的结晶动力学。在各种压力下,不同的结晶动力学也显着影响了PLA泡沫的泡孔形态及其均匀性。在高饱和压力下,PLA中溶解的CO2含量的增加通过热力学不稳定性的增加而促进了细胞成核速率。另一方面,在高压下,小尺寸的完美晶体被诱导为高熔点峰晶体。因此,这些晶体周围的异质细胞形核得到进一步改善,这也导致产生更均匀的泡沫结构。此外,本研究介绍了这种珠状泡沫技术,将其作为生产纳米孔泡沫产品的创新方法。 (C)2015 Elsevier Ltd.保留所有权利。

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