Investigation of the mechanical and thermal behaviour of CS/HDPE biocomposites based on processing techniques

Lucky Ogheneakpobo Ejeta
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Abstract

In an attempt to produce sustainable materials with improved performance suitable for use in the built environment, the effects of processing techniques on the mechanical and thermal properties of cotton stalk flour polymer composites were investigated. The results reveal that all the injection-molded samples exhibited higher tensile and flexural strength than the compression-molded sample. Also, the injection molded samples filled with 30 wt% and 40 wt% of cotton stalk flour have higher tensile and flexural modulus than the compression molded sample with the 50 wt% filler loading. The notched impact strength of all the injection-molded samples was found to be greater than that of the compression-molded sample. The thermal stability of the compression-molded sample- was seen to be higher than that of the injection-molded samples. The SEM analysis of the compression molded notched impact fractured samples shows a rapid growth of crack propagation owing to poor interfacial bonding. The study demonstrates that the injection molding technique is a better option for producing biocomposites from cotton stalk flour of particle size distribution 425 μm to <53 μm and recycled high-density polyethylene (HDPE) with improved mechanical performance intended for decking and flooring applications.

Abstract Image

基于加工技术的 CS/HDPE 生物复合材料机械和热性能研究
为了生产出性能更佳、适用于建筑环境的可持续材料,研究人员调查了加工技术对棉秆粉聚合物复合材料机械性能和热性能的影响。结果表明,所有注塑成型样品的拉伸强度和弯曲强度均高于压缩成型样品。此外,填充了 30% 和 40% 棉秆粉的注塑成型样品的拉伸和弯曲模量高于填充了 50% 棉秆粉的压缩成型样品。所有注塑成型样品的缺口冲击强度都高于压缩成型样品。压缩成型样品的热稳定性高于注射成型样品。对压缩成型缺口冲击断裂样品的扫描电子显微镜分析表明,由于界面结合力差,裂纹扩展速度很快。该研究表明,用粒径分布为 425 μm 至 53 μm 的棉花茎粉和再生高密度聚乙烯(HDPE)生产生物复合材料,注塑成型技术是一种更好的选择,可提高机械性能,适用于装饰板和地板应用。
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CiteScore
3.30
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