开发基于稻壳和聚苯乙烯的可持续复合材料

V. Doko, Edem Chabi, Paul Damien Amadji, Hamed Tidjani Tabe Gbian, Bilali Binjo, Emmanuel Olodo
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摘要

结合稻壳和发泡聚苯乙烯来制造可持续复合材料是一个在科学文献中尚未得到充分探讨的方向。在此背景下,本研究重点关注利用这些材料开发复合材料的可行性和物理特性。研究方法包括稻壳的机械研磨过程、聚苯乙烯在有机溶剂中的溶解以形成粘合剂,以及通过冷压实制造复合材料。对制成的复合材料进行了物理性质分析,特别是密度、压实和空气储存后的质量损失以及浸泡后的膨胀。与粗粒复合材料(MG1 为 8.43%,MG2 为 7.34%)相比,细粒复合材料的质量损失更高(MF1 为 13.17%,MF2 为 12.48%)。这种差异是由于细颗粒的比表面积更大,有利于挥发性化合物的蒸发。浸泡后的膨胀也受颗粒度的影响,MG2 的最大膨胀率为 15.53%,而 MF2 仅为 0.72%。这些观察结果凸显了稻壳粒度和粘合剂用量在决定复合材料性能方面的关键作用。这项工作凸显了这些复合材料作为一种生态和实用的废物利用解决方案的潜力,同时也为未来的研究,特别是有关其机械性能的研究铺平了道路。
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Development of a Sustainable Composite Material Based on Rice Husk and Polystyrene
The combination of rice husk and expanded polystyrene for the fabrication of sustainable composites is a direction that is not well-explored in scientific literature. In this context, this research focuses on the feasibility and physical properties of composites developed from these materials. The methodology encompasses a mechanical grinding process of rice husks, dissolution of polystyrene in an organic solvent to form a binder, and the fabrication of composites through cold compaction. The fabricated composites were analyzed for their physical properties, particularly density, mass loss after compaction and air storage, and their swelling upon immersion. Fine-grained composites record a higher mass loss (13.17% for MF1 and 12.48% for MF2) compared to coarse-grained ones (8.43% for MG1 and 7.34% for MG2). This difference is attributed to a larger specific surface area of the fine particles, facilitating the evaporation of volatile compounds. Swelling after immersion is also influenced by granularity, with a maximum swelling of 15.53% for MG2 versus only 0.72% for MF2. These observations highlight the key role of the rice husk particle size and binder dosage in determining the properties of the composites. This work highlights the potential of these composites as both an ecological and practical solution for waste valorization while paving the way for future investigations, notably regarding their mechanical properties.
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