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All-Straw-Fiber Composites: Benzylated Straw as Matrix and Additional Straw Fiber Reinforced Composites

机译:全秸秆纤维复合材料:以苄基秸秆为基质和其他秸秆纤维增强复合材料

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摘要

With the aim to utilize the waste biomass of wheat straw, all-straw-fiber composites were elaborately manufactured though producing plastic benzylated wheat straw (BWS) as matrix and reinforced by additional straw fibers (ASF). The extent of benzylation for wheat straw was greatly improved with the aid of ball milling pretreatment for 4 h. BWS yielded higher weight percent gain (WPG) under the same reaction conditions with the benzylation of wood flour, lower glass transition temperature (T_g) as well as better flowability upon heating compared to benzylated mulberry branches (BMB) with comparable WPG. All-straw-fiber composites performed higher ASF loading capacity and better mechanical properties with optimum ASF content than BMB based composites and by benzylation decreased water absorption significantly. SEM provided evidence for strong adhesion in the interface between BWS and ASF. From the overall performance, the All-straw-fiber composites can be regarded as a potential alternative to wood plastic composites.
机译:为了利用小麦秸秆的废弃生物质,通过生产塑料苄基小麦秸秆(BWS)为基质并通过附加秸秆纤维(ASF)进行增强,精心制造了全麦草纤维复合材料。借助球磨预处理4小时,小麦秸秆的苄基化程度大大提高。与木粉的苄基化作用相比,BWS在相同的反应条件下与木粉的苄基化反应相比具有更高的增重百分比(WPG),较低的玻璃化转变温度(T_g)以及加热后的流动性更好,且具有可比的WPG。与基于BMB的复合材料相比,全秸秆纤维复合材料具有更高的ASF负载能力和更好的机械性能以及最佳的ASF含量,并且苄基化显着降低了吸水率。 SEM提供了BWS与ASF之间界面牢固粘附的证据。从整体性能来看,全草木纤维复合材料可被视为木塑复合材料的潜在替代品。

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