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Mechanical and Thermal Properties of All-Wood Biocomposites through Controllable Dissolution of Cellulose with Ionic Liquid

机译:全木生物复合材料的机械和热性能通过可控制纤维素与离子液体的可控制溶解

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摘要

All-wood biocomposites were prepared with an efficient method. The ionic liquid of 1-butyl-3-methylimidazolium chloride (BMIMCl) was used to impregnate manchurian ash (MA) before hot-pressing, and the all-wood biocomposites were prepared by controllable dissolving and regenerating the cellulose in MA. The Fourier transform infrared analysis suggested that all the components of MA remained unchanged during the preparation. X-ray diffraction, thermogravimetric and scanning electron microscope analysis were carried out to study the process parameters of hot-pressing pressure and time on the crystallinity, thermal properties and microstructure of the all-wood biocomposites. The tensile strength of the prepared all-wood biocomposites reached its highest at 212.6 MPa and was increased by 239% compared with that of the original MA sample. The thermogravimetric analysis indicated that as the thermo-stability of the all-wood biocomposites increased, the mass of the residual carbon increased from 19.7% to 22.7% under a hot-pressing pressure of 10 MPa. This work provides a simple and promising pathway for the industrial application of high-performance and environmentally friendly all-wood biocomposites.
机译:用有效的方法制备全木生物复合材料。使用1-丁基-3-甲基咪唑氯化物(BMIMCL)的离子液体在热压之前浸渍满族灰(MA),通过可控制的溶解和再生MA中的纤维素来制备全木生物复合材料。傅里叶变换红外分析表明,在制备期间,马的所有组分保持不变。进行了X射线衍射,热重度和扫描电子显微镜分析,以研究热压压力和时间的过程参数,在全木生物复合材料的结晶度,热性能和微观结构上。制备的全木生物复合材料的拉伸强度达到212.6MPa的最高,而原始MA样品比较增加239%。热重分析表明,随着全木生物复合材料的热稳定性增加,残留碳的质量在10MPa的热压压力下从19.7%增加到22.7%。这项工作为高性能和环保的全木生物复合材料提供了一种简单且有前途的途径。

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