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Rheology of poly (lactic acid)-based systems

机译:聚(乳酸)基体系的流变学

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Being commercialized in 1992, poly (lactic acid) (PLA) has been considered for biomedical applications and as a reliable substitute for a wide range of commodity and engineering applications where noncompostable petroleum-based polymers are currently being used. However, PLA suffers from series of drawbacks and it would not be applicable unless these shortcomings resolve somewhat. Besides the PLA's brittleness and low toughness which originate from its higher glass transition temperature, the major shortcomings which negatively influence the other features of PLA are its low melt strength and slow crystallization kinetics. These weaknesses limit the processability, formability and foamability of PLA, and hence, the manufacturing of PLA based products. In this context, the improvement of rheological and viscoelastic properties of PLA is of a great importance as it enhances the melt strength. To control the PLA's rheological and viscoelastic properties, various attempts such as varying the D-lactide content in PLA molecules, increasing the PLA's molecular weight, the use of chain extender and branching, controlling the PLA's crystallization, compounding with micro-/nano-sized fillers and blending with other polymers have been considered. This article critically reviews these studies that have been conducted so far on rheological investigations of various PLA-based systems.
机译:聚(乳酸)(PLA)于1992年商业化,已被考虑用于生物医学应用,并作为目前使用不可堆肥石油基聚合物的各种商品和工程应用的可靠替代品。然而,PLA存在一系列缺点,除非这些缺点得到一定解决,否则它不适用。除了PLA的脆性和低韧性(源于其较高的玻璃化转变温度)外,对PLA的其他特性产生负面影响的主要缺点是其低熔体强度和缓慢的结晶动力学。这些弱点限制了PLA的可加工性、成型性和发泡性,从而限制了PLA基产品的制造。在这种情况下,PLA流变性和粘弹性性能的改善具有重要意义,因为它可以提高熔体强度。为了控制PLA的流变性和粘弹性,人们考虑了各种尝试,例如改变PLA分子中的D-丙交酯含量,增加PLA的分子量,使用扩链剂和支化,控制PLA的结晶,与微/纳米级填料复合以及与其他聚合物共混。本文批判性地回顾了迄今为止对各种基于PLA的系统的流变学研究。

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