Physical and Mechanical Properties of Agro-Waste Filled Recycled High Density Polyethylene Biocomposites

A. Ogah, O. E. Ezeani, Samuel Chukwuma Nwobi, I. Ikelle
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引用次数: 3

Abstract

Natural plant fiber/agricultural waste materials have potential in composites due to their eco-friendliness, low cost and sustainability. Plastic and agro-wastes dumping are threatening concerns that must be settled for the protection of the worldwide ecosystem. In this study, the physical and mechanical properties of rice husk flour (RHF), corncob flour (CCF), walnut shell flour (WSF) and wood flour (WF) agro-waste filled recycled high density polyethylene biocomposites were investigated. Results showed bulk densities of RHF 350 kg/m3, CCF 310 kg/m3, WSF 400 kg/m3 and WF 250 kg/m3. Results showed moisture content of RHF 7%, WSF 6.4%, CCF 6% and WF 8%. Particle size distribution of 60-100 mesh size of the fillers was 0.295 mm to˂0.125 mm. Results showed that WF composite showed higher flexural modulus of 3.0 GPa and impact strength of 60 J/m followed by RHF with flexural modulus of 2.75 GPa and WSF with impact strength of 54.4 J/m compared to the control sample of 1.75 GPa and 38 J/m. The flexural strength of WF composite was 27.4 MPa followed by RHF composite 25.4 GPa, CCF composite 20.1 GPa and WSF composite 18.1 GPa compared to the control sample of 30.5 GPa. The higher bulk densities of RHF, WSF and CCF resulted in fiber accumulation at some parts of the composite, thereby causing weak points and the resultant lower mechanical properties compared to WF composites with lower bulk density. The study has shown that agro-waste fillers could be used in composite production with good results compared to WF composites.
农业废弃物填充再生高密度聚乙烯生物复合材料的物理力学性能研究
天然植物纤维/农业废弃物材料具有生态友好、低成本和可持续性等特点,在复合材料领域具有很大的发展潜力。塑料和农业废弃物的倾倒是威胁问题,必须为保护全球生态系统而解决。研究了稻壳粉(RHF)、玉米芯粉(CCF)、核桃壳粉(WSF)和木粉(WF)等农业废弃物填充的再生高密度聚乙烯生物复合材料的物理力学性能。结果表明:RHF的容重为350 kg/m3, CCF为310 kg/m3, WSF为400 kg/m3, WF为250 kg/m3。结果表明:RHF含水率为7%,WSF为6.4%,CCF为6%,WF为8%。60-100目填料的粒径分布范围为0.295 mm ~ 0.125 mm。结果表明,WF复合材料的抗弯模量为3.0 GPa,冲击强度为60 J/m,其次是RHF,抗弯模量为2.75 GPa, WSF的冲击强度为54.4 J/m,而对照样品为1.75 GPa, 38 J/m。WF复合材料的抗弯强度为27.4 MPa,其次为RHF复合材料25.4 GPa, CCF复合材料20.1 GPa, WSF复合材料18.1 GPa,而对照样品为30.5 GPa。高体积密度的RHF、WSF和CCF导致纤维在复合材料的某些部位堆积,从而形成弱点,从而导致与体积密度较低的WF复合材料相比,力学性能较低。研究表明,与WF复合材料相比,农业废弃物填料可用于复合材料生产,效果良好。
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