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椰壳纤维增强聚烯烃共混物的注射成型:力学、粘弹性、热行为及三维显微镜研究

Injection Molding of Coir Coconut Fiber Reinforced Polyolefin Blends: Mechanical, Viscoelastic, Thermal Behavior and Three-Dimensional Microscopy Study.

作者信息

Hidalgo-Salazar Miguel A, Correa-Aguirre Juan P, García-Navarro Serafín, Roca-Blay Luis

机构信息

Research Group for Manufacturing Technologies GITEM, Universidad Autónoma de Occidente, Cali 760030, Colombia.

AIMPLAS, Gustave Eiffel 4 (València Parc Tecnològic), 46980 Paterna, Spain.

出版信息

Polymers (Basel). 2020 Jul 7;12(7):1507. doi: 10.3390/polym12071507.

Abstract

In this study, the properties of a polyolefin blend matrix (PP-HDPE) were evaluated and modified through the addition of raw coir coconut fibers-(CCF). PP-HDPE-CCF biocomposites were prepared using melt blending processes with CCF loadings up to 30% (/). CCF addition generates an increase of the tensile and flexural modulus up to 78% and 99% compared to PP-HDPE blend. This stiffening effect is caused by a decrease in the polymeric chain mobility due to CCF, the higher mechanical properties of the CCF compared to the polymeric matrix and could be an advantage for some biocomposites applications. Thermal characterizations show that CCF incorporation increases the PP-HDPE thermal stability up to 63 °C, slightly affecting the melting behavior of the PP and HDPE matrix. DMA analysis shows that CCF improves the PP-HDPE blend capacity to absorb higher external loads while exhibiting elastic behavior maintaining its characteristics at higher temperatures. Also, the three-dimensional microscopy study showed that CCF particles enhance the dimensional stability of the PP-HDPE matrix and decrease manufacturing defects as shrinkage in injected specimens. This research opens a feasible opportunity for considering PP-HDPE-CCF biocomposites as alternative materials for the design and manufacturing of sustainable products by injection molding.

摘要

在本研究中,通过添加天然椰壳纤维(CCF)对聚烯烃共混基体(PP-HDPE)的性能进行了评估和改性。采用熔融共混工艺制备了CCF含量高达30%(/)的PP-HDPE-CCF生物复合材料。与PP-HDPE共混物相比,添加CCF可使拉伸模量和弯曲模量分别提高78%和99%。这种增强效果是由于CCF导致聚合物链迁移率降低、CCF相对于聚合物基体具有更高的机械性能,这对于某些生物复合材料应用可能是一个优势。热表征表明,加入CCF可使PP-HDPE的热稳定性提高63℃,对PP和HDPE基体的熔融行为略有影响。动态热机械分析(DMA)表明,CCF提高了PP-HDPE共混物吸收更高外部载荷的能力,同时在较高温度下表现出弹性行为并保持其特性。此外,三维显微镜研究表明,CCF颗粒增强了PP-HDPE基体的尺寸稳定性,并减少了注塑试样中的收缩等制造缺陷。本研究为将PP-HDPE-CCF生物复合材料作为注塑成型可持续产品设计和制造的替代材料提供了一个可行的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e2d6/7408383/b5fbc55da2d1/polymers-12-01507-g001.jpg

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