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Reinforcing abilities of microfibers and nanofibrillated cellulose in poly(lactic acid) composites

机译:微纤维和纳米原纤化纤维素在聚乳酸复合材料中的增强能力

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The reinforcing abilities of cellulose microfibers and nanofibrillated cellulose (NFC) in poly(lactic acid) (PLA) were evaluated. NFC successfully prepared from regenerated cellulose fibers using high-speed blending for 60 min was introduced in a PLA matrix. The physical and mechanical properties of NFC-reinforced PLA composites were investigated in comparison with those of the composites with microfibers. NFC fibrils with diameters in the range of 100–500 nm were disintegrated from micron-sized regenerated fibers. A slight decrease in the degree of crystallinity and degradation temperature obtained for NFC after mechanical treatment was found compared with untreated microfibers. The introduction of NFC in the PLA effectively increased the tensile strength and Young’s modulus of the composites by 18% and 42%, respectively. The use of micron-sized fibers to reinforce PLA, on the other hand, showed a slight improvement in Young’s modulus (13%). The improvement in the mechanical properties of the composites reinforced with NFC was found because of the higher surface area of NFC and better interaction between the matrix and NFC fibrils. This allowed stress to transfer from the matrix to the reinforcement. NFC prepared using the high-speed blending could be an alternative to use as reinforcement in composites.
机译:评价了纤维素微纤维和纳米原纤化纤维素(NFC)在聚乳酸(PLA)中的增强能力。使用高速共混60分钟从再生纤维素纤维成功制备的NFC被引入到PLA基质中。与具有超细纤维的复合材料相比,研究了NFC增强的PLA复合材料的物理和机械性能。直径在100-500 nm范围内的NFC原纤维从微米级的再生纤维中分解。与未经处理的超细纤维相比,机械处理后的NFC结晶度和降解温度略有下降。在PLA中引入NFC可以有效地将复合材料的拉伸强度和杨氏模量分别提高18%和42%。另一方面,使用微米级纤维增强PLA的杨氏模量略有改善(13%)。发现由于NFC的较高表面积以及基质与NFC原纤维之间更好的相互作用,因此NFC增强的复合材料的机械性能有所改善。这允许应力从基体转移到钢筋。使用高速共混制备的NFC可以替代复合材料中的增强材料。

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