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Investigation of Thermal and Thermomechanical Properties of Biodegradable PLA/PBSA Composites Processed via Supercritical Fluid-Assisted Foam Injection Molding

机译:超临界流体辅助泡沫注射成型法制备可生物降解的PLA / PBSA复合材料的热和热力学性能的研究

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摘要

Bio-based polymer foams have been gaining immense attention in recent years due to their positive contribution towards reducing the global carbon footprint, lightweighting, and enhancing sustainability. Currently, polylactic acid (PLA) remains the most abundant commercially consumed biopolymer, but suffers from major drawbacks such as slow crystallization rate and poor melt processability. However, blending of PLA with a secondary polymer would enhance the crystallization rate and the thermal properties based on their compatibility. This study investigates the physical and compatibilized blends of PLA/poly (butylene succinate-co-adipate) (PBSA) processed via supercritical fluid-assisted (ScF) injection molding technology using nitrogen (N2) as a facile physical blowing agent. Furthermore, this study aims at understanding the effect of blending and ScF foaming of PLA/PBSA on crystallinity, melting, and viscoelastic behavior. Results show that compatibilization, upon addition of triphenyl phosphite (TPP), led to an increase in molecular weight and a shift in melting temperature. Additionally, the glass transition temperature (Tg) obtained from the tanδ curve was observed to be in agreement with the Tg value predicted by the Gordon–Taylor equation, further confirming the compatibility of PLA and PBSA. The compatibilization of ScF-foamed PLA–PBSA was found to have an increased crystallinity and storage modulus compared to their physically foamed counterparts.
机译:近年来,由于生物基聚合物泡沫在减少全球碳足迹,减轻重量和增强可持续性方面做出了积极贡献,因此备受关注。当前,聚乳酸(PLA)仍然是商业上消费最丰富的生物聚合物,但是具有主要缺点,例如缓慢的结晶速度和差的熔融加工性。但是,将PLA与次要聚合物共混会提高结晶速率和热相容性(基于它们的相容性)。这项研究调查了通过使用氮气(N2)作为简便的物理发泡剂的超临界流体辅助(ScF)注射成型技术加工的PLA /聚丁二酸丁二酸共丁二酸酯(PBSA)的物理和相容混合物。此外,本研究旨在了解PLA / PBSA的共混和ScF发泡对结晶度,熔融和粘弹性行为的影响。结果表明,添加亚磷酸三苯酯(TPP)后,增容作用导致分子量增加和熔融温度变化。此外,观察到从tanδ曲线获得的玻璃化转变温度(Tg)与Gordon-Taylor方程预测的Tg值一致,进一步证实了PLA和PBSA的相容性。发现与用SfF发泡的PLA–PBSA相比,其物理发泡的相容性具有更高的结晶度和储能模量。

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