Chen Feng, Han Guangping, Li Qingde, Gao Xun, Cheng Wanli
Key Laboratory of Bio-based Material Science and Technology (Ministry of Education), Northeast Forestry University, Harbin 150040, China.
Liaoning Forestry Vocational-Technical College, Shenyang 110101, China.
Materials (Basel). 2017 Mar 13;10(3):286. doi: 10.3390/ma10030286.
The surfaces of poplar wood fibers were modified using high-temperature hot air (HTHA) treatment and silane coupling agent. The single factor test was then used to investigate the performances (e.g., the change of functional groups, polarity, cellulose crystallinity, and thermal stability) of modified poplar wood fibers (mPWF) through Fourier transform infrared spectrometry, X-ray diffraction and thermo-gravimetric analysis for the subsequent preparation of wood-plastic composites (WPCs). The effect of HTHA treatment conditions-such as temperature, inlet air velocity, and feed rate-on the performances of WPCs was also investigated by scanning electron microscopy and dynamic mechanical analysis. The main findings indicated that HTHA treatment could promote the hydration of mPWF and improve the mechanical properties of WPCs. Treatment temperature strongly affected the mechanical properties and moisture adsorption characteristics of the prepared composites. With the increase of treated temperature and feed rate, the number of hydroxyl groups, holocellulose content, and the pH of mPWF decreased. The degree of crystallinity and thermal stability and the storage modulus of the prepared composites of mPWF increased. However, dimensional stability and water absorption of WPCs significantly reduced. The best mechanical properties enhancement was observed with treatment temperature at 220 °C. This study demonstrated the feasibility for the application of an HTHA treatment in the WPC production industry.
采用高温热风(HTHA)处理和硅烷偶联剂对杨木纤维表面进行改性。然后通过傅里叶变换红外光谱、X射线衍射和热重分析,利用单因素试验研究改性杨木纤维(mPWF)的性能(如官能团变化、极性、纤维素结晶度和热稳定性),以便后续制备木塑复合材料(WPC)。还通过扫描电子显微镜和动态力学分析研究了HTHA处理条件(如温度、进气速度和进料速度)对WPC性能的影响。主要研究结果表明,HTHA处理可促进mPWF的水合作用并改善WPC的力学性能。处理温度对制备的复合材料的力学性能和吸湿特性有很大影响。随着处理温度和进料速度的增加,mPWF的羟基数量、综纤维素含量和pH值降低。mPWF制备的复合材料的结晶度、热稳定性和储能模量增加。然而,WPC的尺寸稳定性和吸水性显著降低。在220℃的处理温度下观察到最佳的力学性能增强效果。本研究证明了HTHA处理在WPC生产行业应用的可行性。