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Optimization of High Temperature and Pressurized Steam Modified Wood Fibers for High-Density Polyethylene Matrix Composites Using the Orthogonal Design Method

机译:正交设计法优化高密度聚乙烯基复合材料高温高压蒸汽改性木纤维

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摘要

The orthogonal design method was used to determine the optimum conditions for modifying poplar fibers through a high temperature and pressurized steam treatment for the subsequent preparation of wood fiber/high-density polyethylene (HDPE) composites. The extreme difference, variance, and significance analyses were performed to reveal the effect of the modification parameters on the mechanical properties of the prepared composites, and they yielded consistent results. The main findings indicated that the modification temperature most strongly affected the mechanical properties of the prepared composites, followed by the steam pressure. A temperature of 170 °C, a steam pressure of 0.8 MPa, and a processing time of 20 min were determined as the optimum parameters for fiber modification. Compared to the composites prepared from untreated fibers, the tensile, flexural, and impact strength of the composites prepared from modified fibers increased by 20.17%, 18.5%, and 19.3%, respectively. The effect on the properties of the composites was also investigated by scanning electron microscopy and dynamic mechanical analysis. When the temperature, steam pressure, and processing time reached the highest values, the composites exhibited the best mechanical properties, which were also well in agreement with the results of the extreme difference, variance, and significance analyses. Moreover, the crystallinity and thermal stability of the fibers and the storage modulus of the prepared composites improved; however, the hollocellulose content and the pH of the wood fibers decreased.
机译:正交设计方法用于确定通过高温和加压蒸汽处理改性杨木纤维的最佳条件,以便随后制备木纤维/高密度聚乙烯(HDPE)复合材料。进行了极端差异,方差和显着性分析,以揭示改性参数对所制备复合材料的机械性能的影响,并产生了一致的结果。主要发现表明,改性温度对制备的复合材料的机械性能影响最大,其次是蒸汽压力。确定170°C的温度,0.8 MPa的蒸汽压和20分钟的处理时间作为纤维改性的最佳参数。与由未经处理的纤维制成的复合材料相比,由改性纤维制成的复合材料的拉伸强度,弯曲强度和冲击强度分别增加了20.17%,18.5%和19.3%。还通过扫描电子显微镜和动态力学分析研究了对复合材料性能的影响。当温度,蒸汽压力和处理时间达到最高值时,复合材料表现出最佳的机械性能,这与极差,方差和显着性分析的结果也非常吻合。而且,纤维的结晶度和热稳定性以及所制备的复合材料的储能模量得到改善。然而,纤维素的含量和木纤维的pH值降低了。

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