首页> 美国卫生研究院文献>Polymers >New Concept in Bioderived Composites: Biochar as Toughening Agent for Improving Performances and Durability of Agave-Based Epoxy Biocomposites
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New Concept in Bioderived Composites: Biochar as Toughening Agent for Improving Performances and Durability of Agave-Based Epoxy Biocomposites

机译:生物化复合材料中的新概念:Biochar作为增韧剂用于改善基于龙舌兰的环氧生物复合材料的性能和耐久性

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摘要

Biocomposites are increasingly used in the industry for the replacement of synthetic materials, thanks to their good mechanical properties, being lightweight, and having low cost. Unfortunately, in several potential fields of structural application their static strength and fatigue life are not high enough. For this reason, several chemical treatments on the fibers have been proposed in literature, although still without fully satisfactory results. To overcome this drawback, in this study we present a procedure based on the addition of a carbonaceous filler to a green epoxy matrix reinforced by Agave sisalana fibers. Among all carbon-based materials, biochar was selected for its environmental friendliness, along with its ability to improve the mechanical properties of polymers. Different percentages of biochar, 1, 2, and 4 wt %, were finely dispersed into the resin using a mixer and a sonicator, then a compression molding process coupled with an optimized thermomechanical cure process was used to produce a short fiber biocomposite with Vf = 35%. Systematic experimental tests have shown that the presence of biochar, in the amount 2 wt %, has significant effects on the matrix and fiber interphase, and leads to an increase of up to three orders of magnitude in the fatigue life, together with an appreciable improvement in static tensile strength.
机译:由于其良好的机械性能,轻质,成本低,生物复合材料越来越多地用于工业供工业中以更换合成材料。不幸的是,在几个结构应用领域,他们的静态力量和疲劳寿命不够高。因此,在文献中提出了对纤维的几种化学处理,尽管仍然没有完全令人满意的结果。为了克服这项缺点,在本研究中,我们介绍了一种基于通过龙舌兰氏纤维增强的绿环氧基质的添加碳质填料的过程。在所有碳基材料中,为其环境友好选择生物炭,以及其改善聚合物的机械性能的能力。使用混合器和超声波仪将不同百分比的生物炭,1,2和4wt%精细分散到树脂中,然后用优化的热机械固化过程耦合的压缩模塑方法用于产生具有VF =的短纤维生物复合材料35%。系统的实验试验表明,生物炭的存在量为2wt%,对基质和纤维相互作用具有显着影响,并导致疲劳寿命中最多增加三个数量级,以及可观的改进在静态拉伸强度。

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