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首页> 外文期刊>Rheologica Acta: An International Journal of Rheology >Melt strengthening of poly (lactic acid) through reactive extrusion with epoxy-functionalized chains
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Melt strengthening of poly (lactic acid) through reactive extrusion with epoxy-functionalized chains

机译:通过环氧官能化链的反应挤出熔融增强聚乳酸

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Poly (lactic acid) is an industrially mature, bio-sourced and biodegradable polymer. However, current applications of this eco-friendly material are limited as a result of its brittleness and its poorly melt properties. One of the keys to extend its processing window is to melt strengthen the native material. This paper considers the chain extension as a valuable solution for reaching such an objective. An additive based on epoxy-functionalized PLA was employed during reactive extrusion. The reaction times as a function of chain extender ratios were determined by monitoring the melt pressure during recirculating micro-extrusions. Once residence times were optimized, reactive extrusion experiments were performed on a twin screw extruder. Size exclusion chromatography provided information about the molecular weight distributions (MWD) of the modified PLAs and revealed the creation of a high molecular weight shoulder. The rheological experiments highlighted the enhancement of the melt properties brought about by the chain extension. Shear rheology revealed some enlarged and bimodal relaxation time spectra for the extended materials which are in accordance with the MWD analysis. Such a modification directly amplified the shear sensitivity of modified PLAs. Regarding the rheological temperature sensitivity, it was found to be decreased when the chain extender content is raised as shown from the Arrhenius viscosity fit. The reduction of the polar interactions from neat to highly chain-extended PLAs is here proposed to explain this surprising result. Chain extension was also found to impact on the elongational melt properties where strain hardening occurred for modified PLAs. Investigation of the chain extension architecture was made from the rheological data and revealed a long-chain branched topology for the modified PLAs.
机译:聚乳酸是一种工业上成熟的,生物来源的且可生物降解的聚合物。然而,由于其脆性和较差的熔融性能,这种环保材料的当前应用受到限制。扩展其加工范围的关键之一是融化强化天然材料。本文将链扩展视为实现此目标的有价值的解决方案。在反应挤出过程中使用了基于环氧官能化PLA的添加剂。反应时间作为扩链剂比率的函数,是通过监测再循环微挤出过程中的熔体压力来确定的。一旦优化停留时间,就在双螺杆挤出机上进行反应挤出实验。尺寸排阻色谱提供了有关改性PLA分子量分布(MWD)的信息,并揭示了高分子量肩峰的形成。流变学实验突出了由扩链带来的熔体性质的增强。剪切流变学揭示了扩展材料的一些扩展和双峰弛豫时间谱,这与MWD分析一致。这样的修饰直接放大了修饰的PLA的剪切敏感性。关于流变温度敏感性,发现如Arrhenius粘度拟合所示,当增加扩链剂含量时,其降低。本文提出将极性相互作用从纯净PLA扩展为高度扩链PLA的方法来解释这一令人惊讶的结果。还发现扩链对改性PLA发生应变硬化的延伸熔体性能有影响。根据流变数据对扩链结构进行了研究,结果发现了改性PLA的长链分支拓扑。

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