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纤维含量对纤维素华盛顿葵增强高密度聚乙烯生物复合材料热性能的影响。

Effect of Fiber Loading on Thermal Properties of Cellulosic Washingtonia Reinforced HDPE Biocomposites.

作者信息

Bahlouli Safieddine, Belaadi Ahmed, Makhlouf Azzedine, Alshahrani Hassan, Khan Mohammad K A, Jawaid Mohammed

机构信息

Abbes Laghrour University, Khenchela 40000, Algeria.

Department of Mechanical Engineering, Faculty of Technology, University 20 Août 1955-Skikda, El-Hadaiek Skikda 21000, Algeria.

出版信息

Polymers (Basel). 2023 Jun 30;15(13):2910. doi: 10.3390/polym15132910.

Abstract

In this research work, we aim to study the effect of the incorporation of vegetable fiber reinforcement on the thermo-mechanical and dynamic properties of a composite formed by a polymeric matrix reinforced with cellulosic fibers with the various Washingtonia fiber (WF) loadings (0%, 10%, 20%, and 30% by wt%) as reinforced material in high-density polyethylene (HDPE) Biocomposites to evaluate the optimum fiber loading of biocomposites. In addition, several characterization techniques (i.e., thermogravimetric analysis (TGA), differential scanning calorimetry (DSC), dynamic mechanical analysis (DMA), and thermal mechanical analysis (TMA)) were used to better understand the characteristics of the new composites prepared. With these techniques, we managed to verify the rigidity and thermal stability of the composites so elaborated, as well as the success of the polymer and the structural homogeneity of the obtained biocomposites. Hence, the biocomposite with the best ratio (HDPE/20WF) showed a loss modulus (E″) of 224 MPa, a storage modulus (E') of 2079 MPa, and a damping factor (Tanδ) of 0.270 to the glass transition (Tg) of 145 °C. In addition, thermomechanical analysis (TMA) of the biocomposite samples exhibited marginally higher Ts compared to the HDPE matrix. The best results were recorded with biocomposites with 20% WF, which showed better thermal properties. This composite material can be used as insulation in construction materials (buildings, false ceilings, walls, etc.).

摘要

在这项研究工作中,我们旨在研究掺入植物纤维增强材料对由纤维素纤维增强的聚合物基体与高密度聚乙烯(HDPE)生物复合材料中不同华盛顿棕榈纤维(WF)含量(0%、10%、20%和30%重量比)形成的复合材料的热机械和动态性能的影响,以评估生物复合材料的最佳纤维含量。此外,还使用了几种表征技术(即热重分析(TGA)、差示扫描量热法(DSC)、动态力学分析(DMA)和热机械分析(TMA))来更好地了解所制备的新型复合材料的特性。通过这些技术,我们成功验证了如此制备的复合材料的刚性和热稳定性,以及聚合物的成功和所得生物复合材料的结构均匀性。因此,比例最佳的生物复合材料(HDPE/20WF)在玻璃化转变温度(Tg)为145℃时,损耗模量(E″)为224MPa,储能模量(E')为2079MPa,阻尼因子(Tanδ)为0.270。此外,生物复合材料样品的热机械分析(TMA)显示其热变形温度(Ts)略高于HDPE基体。WF含量为20%的生物复合材料取得了最佳结果,表现出更好的热性能。这种复合材料可用于建筑材料(建筑物、假天花板、墙壁等)的隔热。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2023/10346918/fcbd29bf7cd3/polymers-15-02910-g001.jpg

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