首页> 外文期刊>Journal of Polymers and the Environment >Mechanical, Dynamic Mechanical and Thermal Properties of Banana Fiber/Recycled High Density Polyethylene Biocomposites Filled with Flyash Cenospheres
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Mechanical, Dynamic Mechanical and Thermal Properties of Banana Fiber/Recycled High Density Polyethylene Biocomposites Filled with Flyash Cenospheres

机译:填充有粉煤灰空心泡沫的香蕉纤维/再生高密度聚乙烯生物复合材料的机械,动态机械和热性能

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摘要

This study presents the preparation of Natural fiber-reinforced biocomposites based on Recycled High Density Polyethylene (RHDPE)/Banana Fiber (BF)/Fly ash Cenospheres (FACS) and aims to increase the economic value of these waste materials. Maleic anhydride grafted HDPE (MA-g-HDPE) was used as a compatibilizer to increase the dispersion of fibers into the polymer matrix as well as to increase the compatibility between the matrix and fillers. Variation in mechanical, thermal and dynamic mechanical properties with the addition of FACS in RHDPE/BF composites was investigated. It was observed that 7.5 wt% FACS, 30 wt% BF and 3 wt% MA-g-HDPE within RHDPE matrix resulted in an increase in tensile strength to 17%, tensile modulus to 188%, flexural strength to 38%, flexural modulus to 159% and hardness to 37% as compared with the RHDPE matrix. Significant enhancement in the thermal stability of the RHDPE/BF biocomposites was also observed in presence of FACS under thermogravimetric analysis. The morphology of the prepared biocomposites has been examined by using scanning electron microscopy. Dynamic mechanical analysis tests revealed an increase in storage and loss modulus of the biocomposite system. The use of such recycled material, agricultural and industrial wastes increased the properties of the final product suggesting their use to be a good alternative in the production of polymeric composites.
机译:这项研究提出了基于再生高密度聚乙烯(RHDPE)/香蕉纤维(BF)/粉煤灰空心球(FACS)的天然纤维增强生物复合材料的制备,旨在提高这些废料的经济价值。顺丁烯二酸酐接枝的HDPE(MA-g-HDPE)被用作增容剂,以增加纤维在聚合物基质中的分散性,并增加基质与填料之间的相容性。研究了在RHDPE / BF复合材料中添加FACS后机械,热和动态力学性能的变化。观察到,在RHDPE基体中7.5重量%的FACS,30重量%的BF和3重量%的MA-g-HDPE导致拉伸强度增加到17%,拉伸模量增加到188%,弯曲强度增加到38%,弯曲模量与RHDPE基体相比,硬度为159%,硬度为37%。在热重分析下,在FACS存在下,还观察到RHDPE / BF生物复合材料的热稳定性显着提高。通过使用扫描电子显微镜检查了所制备的生物复合材料的形态。动态力学分析测试表明,该生物复合系统的存储和损耗模量有所增加。使用这种回收材料,农业和工业废料提高了最终产品的性能,这表明它们在聚合物复合材料的生产中是很好的选择。

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