粉煤灰纳米颗粒增强环氧树脂声学复合材料的研制与表征

K. Ukoba, S. Popoola, O. Israel, Patrick Ehi Imoisili, T. Jen
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引用次数: 1

摘要

噪音是不需要的声音;需要通过使用吸收材料来减少和控制。这是必要的,因为噪音对人类健康、知识传播和宁静造成的不利影响,由于工业化和联合活动的增加,噪音每天都在增加。天然和合成增强复合材料在噪声污染控制中的应用是一个新兴的研究领域。本研究旨在开发和表征粉煤灰纳米颗粒增强环氧树脂复合材料的声学应用。分别以5%、10%、15%、20%和25%的粉煤灰纳米颗粒为补强剂制备试样,并对试样的降噪系数(NRC)、孔隙率和力学性能(硬度、冲击、抗弯强度)进行了研究。对粉煤灰颗粒分别进行筛分分析和x射线荧光分析,得到了微球。微球是中空的球形和轻质的惰性填充材料。观察了孔隙度与吸声性能的相关性,发现孔隙度越大,NRC值越高,孔隙度越小,NRC值越低。聚合热、粉煤灰纳米颗粒结构和样品制备(混合)过程中的气泡影响孔隙率值,从而影响复合材料的NRC值。随着增强剂的加入(5%,10%,15%,20%和25%),机械性能也在稳步下降,这是由于增加的增强剂的高表面积和形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development and Characterization of Fly Ash Nanoparticles Reinforced Epoxy Resin Composite for Acoustic Applications
Noise is an unwanted sound; requires reduction and control through the use of absorptive materials. This is imperative due to the adverse effect noise poses to human health, knowledge dissemination, and tranquility which is increasing daily due to industrialization and heightened allied activities. The use of natural and synthetic reinforced composites in noise pollution control is an emerging area of research. This study aims to develop and characterize fly ash nanoparticles reinforced epoxy resin composite for acoustic applications. Samples were prepared with fly ash nanoparticles reinforcement at 5%, 10%, 15%, 20%, and 25% and investigation of noise reduction coefficient (NRC), porosity and mechanical properties (hardness, impact, flexural strength) of samples were done. Cenospheres were obtained when fly ash particles were characterized separately with the aid of sieve analysis and x-ray fluorescence analysis. The cenospheres are hollow spherical and lightweight, inertfiller material. Correlation between porosity of the samples and their sound absorption properties was observed and showed that as porosity increased, the NRC values increased and as the porosity decreased the NRC values decreased. It was also observed that heat of polymerization, fly ash nanoparticles structure and air bubbles during sample preparation (mixing) influenced the porosity values which in turn influenced the NRC values of the composite. There was also a steady decrease in mechanical properties, as reinforcements were added (5%, 10%, 15%, 20%, and 25%), this was attributed to the high surface areas and shape of reinforcement added.
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