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首页> 外文期刊>Journal of Applied Polymer Science >Processing and characterization of bio-based poly (hydroxyalkanoate)/poly(amide) blends: Improved flexibility and impact resistance of PHA-based plastics
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Processing and characterization of bio-based poly (hydroxyalkanoate)/poly(amide) blends: Improved flexibility and impact resistance of PHA-based plastics

机译:生物基聚(羟基链烷酸酯)/聚(酰胺)共混物的加工和表征:改进的PHA基塑料的柔韧性和抗冲击性

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摘要

One of the most significant limitations to widespread industrial implementation of emerging bioplastics such as poly(lactic acid) and poly(hydroxyalkanoate) (PHA) is that they do not match the flexibility and impact resistance of petroleum-based plastics like poly(propylene) or high-density poly(ethylene). The basic goal of this research is to identify alternative, affordable, sustainable, biodegradable materials that can replace petroleum-based polymers in a wide range of industrial applications, with an emphasis on providing a solution for increasing the flexibility of PHA to a level that makes it a superior material for bioplastic nursery-crop containers. A series of bio-based PHA/poly(amide) (PA) blends with different concentrations were mechanically melt processed using a twin-screw extruder and evaluated for physical characteristics. The effects of blending on viscoelastic properties were investigated using small-amplitude oscillatory shear flow experiments to model the physical character as a function of blend composition and angular frequency. The mechanical, thermal, and morphological properties of the blends were investigated using dynamic mechanical analysis, differential scanning calorimetry, thermogravimetric analysis, scanning electron microscopy, and tensile tests. The complex viscosity of the blends increased significantly with increasing concentration of PHA and reached a maximum value for 80 wt % PHA blend. In addition, the tensile strength of the blends increased markedly as the content of PHA increased. For blends containing PA at >50 wt %, samples failed only after a very large elongation (up to 465%) without significant decrease in tensile strength. The particle size significantly increased and the blends became more brittle with increasing concentration of PHA. In addition, the concentration of the PA had a substantial effect on the glass relaxation temperature of the resulting blends. Our results demonstrate that the thermomechanical and rheological properties of PHA/PA blends can be tailored for specific applications, and that blends of PHA/PA can fulfill the mechanical properties required for flexible, impact-resistant bio-based nursery-crop containers. (c) 2015 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2015, 132, 42209.
机译:新兴生物塑料(例如聚(乳酸)和聚(羟基链烷酸酯)(PHA))的广泛工业应用的最大限制之一是,它们与石油基塑料(例如,聚丙烯)或高密度聚乙烯。这项研究的基本目标是确定可替代的,负担得起的,可持续的,可生物降解的材料,这些材料可以在广泛的工业应用中替代石油基聚合物,重点在于提供一种解决方案,以将PHA的灵活性提高到它是生物塑料苗圃作物容器的优质材料。使用双螺杆挤出机对一系列具有不同浓度的生物基PHA /聚酰胺(PA)共混物进行机械熔融加工,并评估其物理特性。使用小振幅振荡剪切流实验研究了共混对粘弹性的影响,以模拟物理特性随共混物组成和角频率的变化。使用动态力学分析,差示扫描量热法,热重分析,扫描电子显微镜和拉伸试验研究了共混物的机械,热和形态性能。共混物的复数粘度随着PHA浓度的增加而显着增加,并达到80wt%PHA共混物的最大值。另外,随着PHA含量的增加,共混物的拉伸强度显着增加。对于包含> 50 wt%的PA的共混物,只有在非常大的伸长率(最高465%)之后,样品才会失效,而拉伸强度不会显着降低。随着PHA浓度的增加,粒径显着增加,共混物变得更脆。另外,PA的浓度对所得共混物的玻璃弛豫温度具有显着影响。我们的结果表明,PHA / PA共混物的热机械和流变性能可以针对特定应用进行定制,并且PHA / PA共混物可以满足柔性,耐冲击的生物基苗圃作物容器所需的机械性能。 (c)2015 Wiley Periodicals,Inc. J. Appl。 Polym。科学2015,132,42209。

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