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首页> 外文期刊>Journal of Applied Polymer Science >Mechanisms of plastic deformation in biodegradable polylactide/poly(1,4- cis-isoprene) blends
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Mechanisms of plastic deformation in biodegradable polylactide/poly(1,4- cis-isoprene) blends

机译:可生物降解的聚丙交酯/聚(1,4-顺式异戊二烯)共混物中塑性变形的机理

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摘要

Polylactide (PLA), a main representative of biodegradable and made from renewable resources polymers, is surprisingly brittle at ambient temperature. In this article it is investigated how to increase its toughness by a strategy called "rubber toughening" using poly(1,4-cis-isoprene), a major component of natural rubber, which is immiscible with PLA, could be well dispersed in PLA matrix and is biodegradable. Immiscible blends of PLA with poly(1,4-cis-isoprene) were prepared by melt blending and their properties were studied and optimized. Incorporation of as low as 5 wt % of rubber increased the strain at break of compression molded film during uniaxial drawing, and also improved its tensile impact strength by 80%. The complex mechanism of plastic deformation in the blends leading to improvement of ductility and toughness was revealed. The rubbery particles initiated crazing at the early stages of deformation, as evidenced by transmission and scanning electron microscopy and also by small angle X-ray scattering. Crazing was immediately followed by cavitation inside rubber particles, which further promoted shear yielding of PLA. The sequence of those mechanisms was proven by microscopic investigation. All three elementary mechanisms acting in the sequence indicated are responsible for surprisingly efficient toughening of PLA by a major component of natural rubber.
机译:聚乳酸(PLA)是可生物降解的主要代表,它由可再生资源聚合物制成,在环境温度下具有惊人的脆性。在本文中,我们研究了如何使用聚(1,4-顺式异戊二烯)这种称为“橡胶增韧”的策略来增加其韧性,该聚(1,4-顺式异戊二烯)是天然橡胶的主要成分,与PLA不能混溶,可以很好地分散在PLA中基质,可生物降解。通过熔融共混制备了PLA与聚(1,4-顺式异戊二烯)的不混溶共混物,并对其性能进行了研究和优化。低至5重量%的橡胶的加入增加了单轴拉伸期间压缩模制膜的断裂应变,并且还将其拉伸冲击强度提高了80%。揭示了共混物中塑性变形的复杂机制,导致延展性和韧性得到改善。橡胶颗粒在变形的早期就开始出现裂纹,这可以通过透射和扫描电子显微镜以及小角度X射线散射来证明。出现裂纹后立即在橡胶颗粒内部进行空化,这进一步提高了PLA的剪切屈服强度。这些机制的顺序已通过显微镜研究证明。按照指示的顺序起作用的所有三个基本机理都对天然橡胶的主要成分产生令人惊讶的有效PLA增韧负责。

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