Sapiai Napisah, Jumahat Aidah, Jawaid Mohammad, Abu Md Zin, Chalid Mochamad
Faculty of Mechanical Engineering, Universiti Teknologi MARA (UiTM), Shah Alam 40450, Malaysia.
Institute for Infrastructure Engineering Sustainable and Management (IIESM), Universiti Teknologi MARA, Shah Alam 40450, Malaysia.
Polymers (Basel). 2021 Sep 8;13(18):3032. doi: 10.3390/polym13183032.
The granite processing industry generates large amounts of bottom granite dust waste every day. After the drying and heating process of concrete mixture production, the granite dust is blown and collected in the filtering nozzle. This very fine particle granite dry fly dust, with a particle size maximum distribution of 500 μm, can easily be blown away by wind and cause serious environmental impacts. The use of this waste material would be an effective way to reduce such impacts. Therefore, this paper presents an experimental study on the potential of granite dust as a filler in enhancing the mechanical performance of a hybrid basalt/glass (WB/GCSM) composite. The unhole and open hole tensile (UHT and OHT) properties, low velocity impact (LVI) properties, quasi-static indentations (QSI) properties, flexural properties, interlaminar shear stress (ILSS) properties, and morphology of the developed WB/GCSM composites were evaluated. To meet the objective of this study, composite specimens were produced using 1.5-60 μm granite fly dust at three (3) different loadings (1, 3 and 5 wt%). This granite fly dust was incorporated into polyurethane resin using a mechanical stirring technique. The production of FRP laminates then completed using a hand lay-up and vacuum bagging technique. Four types of the WB/GCSM composites systems, i.e., [WB/GCSM], [WB/GCSM/1GD], [WB/GCSM/3GD] and [WB/GCSM/5GD] were fabricated and compared. The analysis results for the mechanical tests revealed that the incorporation of granite dust of up to 3 wt% had increased the UHT, OHT, LVI, QSI, flexural and ILSS properties of all WB/GCSM composites systems. Higher levels of damage tolerance in UHT and OHT tests, and increased ductility index in the LVI test were obtained when granite dust was added up to 5 wt%. However, a remarkable improvement in all mechanical properties was noticed for [WB/GCSM/1GD], which recorded the highest mechanical performance among all WB/GCSM composite systems.
花岗岩加工行业每天都会产生大量的花岗岩底尘废料。在混凝土混合料生产的干燥和加热过程之后,花岗岩粉尘被吹起并收集在过滤喷嘴中。这种粒径最大分布为500μm的极细颗粒花岗岩干飞尘很容易被风吹走,并造成严重的环境影响。使用这种废料将是减少此类影响的有效方法。因此,本文开展了一项实验研究,探讨花岗岩粉尘作为填料增强玄武岩/玻璃纤维混杂(WB/GCSM)复合材料力学性能的潜力。对所制备的WB/GCSM复合材料的无孔和开孔拉伸(UHT和OHT)性能、低速冲击(LVI)性能、准静态压痕(QSI)性能、弯曲性能、层间剪切应力(ILSS)性能及形态进行了评估。为实现本研究目标,使用粒径为1.5 - 60μm的花岗岩飞尘,以三种(3)不同含量(1、3和5 wt%)制备复合试件。采用机械搅拌技术将这种花岗岩飞尘掺入聚氨酯树脂中。然后使用手糊和真空袋压技术完成纤维增强塑料层压板的制作。制备并比较了四种类型 的WB/GCSM复合材料体系,即[WB/GCSM]、[WB/GCSM/1GD]、[WB/GCSM/3GD]和[WB/GCSM/5GD]。力学试验分析结果表明,掺入含量高达3 wt%的花岗岩粉尘提高了所有WB/GCSM复合材料体系的UHT、OHT、LVI、QSI、弯曲和ILSS性能。当花岗岩粉尘添加量高达5 wt%时,在UHT和OHT试验中获得了更高的损伤容限,在LVI试验中提高了延性指数。然而,[WB/GCSM/1GD]在所有力学性能方面均有显著改善,在所有WB/GCSM复合体系中表现出最高的力学性能。