Thermal, Physical, and Electrical Characterization of Millettia Pinnata Leaf Powder, Alumina, Glass Sheet, Boron Nitride Reinforced Epoxybased Hybrid Composites: An Experimental Scrutiny

Md. Mathenulla Shariff, Niyaz Ahamed M.B., Gurbhej Singh, Arpitha G. R., Naman Jain, Akarsh Verma
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Abstract

The aim of this study was to fabricate epoxy resin-based hybrid composites reinforced with biodegradable Millettia pinnata leaf powder in conjunction with glass sheets, boron nitride, and alumina for the production of printed circuit boards. For this application, various thermal, physical, and electrical tests were conducted by the authors. The thermal test results showed that the alumina-based epoxy hybrid composite has more thermal stability than the neat epoxy. Moreover, upon adding BN/Alumina, the flame retarding properties of the epoxy hybrid composites improved. We also observed that with the increase in the content of BN and alumina, the thermal conductivity of the hybrid composite was enhanced. From the water absorption tests, the hybrid composite with 6g BN showed the least amount of water consumption. Particularly, adding BN and leaf powder from 2 to 6 g gave better results for the decrease in water absorption, as compared to adding alumina in the epoxy-based hybrid composite. Lastly, from the electric tests, we observed that with the increase in frequencies, the dielectric constant of the hybrid composite decreases. At a lower frequency range, the hybrid composite having 2g of BN and millettia pinnata leaf powder shows the lowest dielectric constant, whereas, at a higher frequency range, 2g of alumina and millettia pinnata leaf powder shows the lowest dielectric constant. We predict that the results reported in this investigation will aid in accelerating the engineering applications of epoxy resin-based hybrid composite materials and help patent the material compositions for specific purposes.
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黍叶粉、氧化铝、玻璃片、氮化硼增强环氧基混合复合材料的热、物理和电特性:实验观察
本研究的目的是用可生物降解的羽扇豆叶粉与玻璃片、氮化硼和氧化铝一起增强环氧树脂基混合复合材料,用于生产印刷电路板。热测试结果表明,氧化铝基环氧杂化复合材料比纯环氧具有更高的热稳定性。此外,添加 BN/氧化铝后,环氧杂化复合材料的阻燃性能得到改善。我们还观察到,随着 BN 和氧化铝含量的增加,杂化复合材料的热导率也得到了提高。从吸水性测试来看,含有 6 克 BN 的混合复合材料的耗水量最小。特别是,与在环氧基混合复合材料中添加氧化铝相比,添加 2 至 6 克 BN 和树叶粉末能更好地降低吸水性。在较低的频率范围内,含有 2g BN 和小米叶粉的混合复合材料显示出最低的介电常数,而在较高的频率范围内,含有 2g 氧化铝和小米叶粉的混合复合材料显示出最低的介电常数。
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来源期刊
Recent Patents on Mechanical Engineering
Recent Patents on Mechanical Engineering Engineering-Mechanical Engineering
CiteScore
0.80
自引率
0.00%
发文量
48
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