Kufel Anna, Kuciel Stanisław
Faculty of Mechanical Engineering, Cracow University of Technology, ul. Warszawska 24, 31-155 Cracow, Poland.
Materials (Basel). 2019 Aug 11;12(16):2557. doi: 10.3390/ma12162557.
The main aim of this study was to investigate the effect of basalt fiber (BF) reinforcement in wood-plastic composites (WPCs). Basalt/wood hybrid composites based on polypropylene (PP) were prepared with different percentages of the reinforcement (the total fiber content was 10 wt%, 15 wt%, and 20 wt%). The BCS17-6.4-KV16 chopped basalt fibers with nominal diameter of 17 μm, cutting length of 6.4 mm, and wood fibers-Lignocel C 120 with the particle size of 70-150 µm-were used as a reinforcement. Composites were produced by the injection molding method. The density of the produced composites and their processing properties such as Vicat softening point and shrinkage were determined. In addition, the thermal expansion behavior of filled plastic composites was investigated. Mechanical tests were subsequently performed to evaluate the tensile, flexural, and impact properties at various temperatures (i.e., at -24 °C, 23 °C, and 80 °C) and after soaking in water. Scanning electron microscopy images were acquired to assess the effects of reinforcement and homogenization of mixtures and to determine the characteristics of the microstructure. The results showed that the hybridization process improved the tensile and flexural properties of reinforced wood composites. Moreover, the incorporation of high-strength basalt fibers into the composite led to increased stiffness. Even a small addition of 10 wt% total fibers led to a significant decrease in shrinkage and coefficient of thermal expansion.
本研究的主要目的是研究玄武岩纤维(BF)增强木塑复合材料(WPC)的效果。制备了基于聚丙烯(PP)的玄武岩/木材混杂复合材料,其中增强材料的百分比不同(总纤维含量为10 wt%、15 wt%和20 wt%)。使用标称直径为17μm、切割长度为6.4mm的BCS17 - 6.4 - KV16短切玄武岩纤维以及粒径为70 - 150μm的木纤维-Lignocel C 120作为增强材料。通过注塑成型法生产复合材料。测定了所制备复合材料的密度及其加工性能,如维卡软化点和收缩率。此外,还研究了填充塑料复合材料的热膨胀行为。随后进行力学测试,以评估在不同温度(即-24°C、23°C和80°C)以及在水中浸泡后的拉伸、弯曲和冲击性能。获取扫描电子显微镜图像,以评估增强材料和混合物均匀化的效果,并确定微观结构的特征。结果表明,混杂过程改善了增强木复合材料的拉伸和弯曲性能。此外,将高强度玄武岩纤维加入复合材料中导致刚度增加。即使总纤维含量仅少量添加10 wt%也会导致收缩率和热膨胀系数显著降低。