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Injection Molded Novel Biocomposites from Polypropylene and Sustainable Biocarbon

机译:聚丙烯和可持续生物炭制成的新型注塑生物复合材料

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摘要

Achieving sustainability in composite materials for high-performance applications is a key issue in modern processing technologies. In this work, the structure-property relationships of injection molded polypropylene (PP)/biocarbon composites were investigated with a focus on the thermal properties and specific emphasis on the coefficient of linear thermal expansion (CLTE). Biocomposites were produced using 30 wt.% biocarbon in a PP matrix, and two different sources of biocarbon produced at ~650 and 900 °C were used. The overall results were compared with 30 wt.% glass- and talc-filled PP composites. Due to the lamellar morphology of the talc developed during the extrusion-injection molding processing, talc-filled composites showed an increase in the CLTE in the normal direction (ND), and a reduction in the flow direction (FD) with respect to the neat polymer. Glass fiber composites also showed an improvement in the CLTE with respect to the neat polymer. However, the biocarbon-based composites showed the best properties in the ND, with improved values in biocarbon produced at higher temperature. The FD values for both biocarbon composites were improved with respect to the matrix, while biocarbon created at lower temperature showed slightly lower expansion values. A comprehensive explanation of these overall phenomena is supported by a series of morphological, thermal, mechanical and rheological tests.
机译:实现高性能应用复合材料的可持续性是现代加工技术中的关键问题。在这项工作中,研究了注塑聚丙烯(PP)/生物碳复合材料的结构-性能关系,重点是热性能,特别是线性热膨胀系数(CLTE)。在PP基质中使用30 wt。%的生物碳生产生物复合材料,并使用在〜650和900°C下产生的两种不同的生物碳来源。将总结果与30重量%玻璃和滑石填充的PP复合材料进行比较。由于在挤出注塑成型过程中形成的滑石的层状形态,填充滑石的复合材料在法向(ND)上的CLTE值增加,相对于纯净的流向(FD)的值减少。聚合物。与纯聚合物相比,玻璃纤维复合材料的CLTE也有所改善。但是,基于生物碳的复合材料在ND中表现出最好的性能,在较高温度下产生的生物碳具有更高的价值。相对于基质,两种生物碳复合材料的FD值均得到改善,而在较低温度下产生的生物碳则显示出稍低的膨胀值。一系列的形态学,热学,机械学和流变学测试为这些整体现象提供了全面的解释。

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