环氧树脂增强复合材料热力学性能的实验研究

D. A. Ekpechi, O. Obiukwu, E. Nwankwo, V. C. Okpalaku-Nath
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引用次数: 0

摘要

持续的全球变暖和气候变化的威胁已经追溯到城市固体废物(MSW),合成和火焰副产品废物,它们是臭氧层碳沉积的主要原因,这促使研究人员将废物转化为有用的材料。以椰壳纤维城市生活垃圾(MSW)、碳化硅(SiC)、氧化铝(Al2O3)和环氧树脂为原料,通过手工铺层和压缩成型工艺制备了5种不同配比的复合材料样品[E、S1、S2、S3和S4]。用合适的仪器对发育好的试样进行力学、热、吸水试验。从得到的结果来看,用椰子壳纤维增强聚合物材料(环氧树脂)的试件S1,展示了天然废纤维对提高聚合物材料热强度和机械强度的影响。样品S1的拉伸、硬度和导热强度分别为50.45MPa、32.33和0.25W/mK,与仅含高分子材料的样品E的值相比,结果令人满意。虽然E试样的冲击强度最高(15.2 J/m2),吸水率也最高,但主要是由于没有增强纤维。在试样中掺入天然合成纤维对试样的热强度和机械强度产生了巨大的影响,如试样S2 - S4的导热系数为0.45W/mK,硬度值为44.52,抗拉强度为140.44Mpa。该试验已经证明了在固体系统上的一些应用,该系统将椰子壳城市垃圾恒定地转化为创造财富的商品,从而促进了本地含量在材料生产中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Study of the Thermal and Mechanical Properties of Epoxy-Reinforced Composites
The menace from the lingering global warming and climate change, has been traced toward municipal solid waste (MSW), synthetic, and flame byproduct wastes as one leading cause of the carbon deposits at the ozone layer, which has spiked researchers toward converting wastes into useful material. Five samples [E, S1, S2, S3, and S4] of composite material on the different percentage of composition was developed using coconut shell fiber municipal solid waste (MSW), silicon carbide (SiC), aluminum oxide (Al2O3), and epoxy, developed by hand-layup and compression molding manufacturing process. The developed specimens were subjected to mechanical, thermal, and water absorption tests using suitable apparatus. From the result obtained, specimen S1 which polymer material (epoxy) was reinforced with coconut shell fiber, showcased the impact of natural waste fiber on improving the polymer material’s thermal and mechanical strength. 50.45MPa, 32.33, and 0.25W/mK values of tensile, hardness, and thermal conductivity strength respectively, were observed on the resulting test on sample S1, which is satisfactory compared to the value results from sample E, having only polymer material. Although sample E possesses the highest impact strength (15.2 J/m2) and water absorption values, due to the absence reinforce fiber. Natural synthetic fibers incorporation in the specimens had a huge impact on thermal and mechanical strength, such as seen from specimen S2 - S4 having a thermal conductivity of 0.45W/mK, hardness value of 44.52, and tensile strength of 140.44Mpa. The test has proven some application on solid systems, which invariable convert coconut shell municipal waste materials to wealth-creating commodities, thereby promoting the application of local content in material production.
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