Guo Lei, Wang Fu, Chai Hailin, Liu Gongxu, Jian Xingao, Zhao Jinyang, Liu Kexin, Liu Haichao, Liu Tiewei, Zhang Xiangping, Wang Yongshuai, Liu Fumin
College of Electromechanical Engineering, Qingdao University of Science & Technology, Qingdao 266061, China.
National Engineering Laboratory of Advanced Tire Equipment and Key Materials, Qingdao University of Science & Technology, Qingdao 266061, China.
Polymers (Basel). 2024 Jun 9;16(12):1633. doi: 10.3390/polym16121633.
Recycling flexible polyurethane foam (F-PUF) scraps is difficult due to the material's high cross-linking structure. In this work, a wedge-block-reinforced extruder with a considerable enhanced shear extrusion and stretching area between the rotating screw and the stationary wedge blocks was utilized to recycle F-PUF scraps into powder containing surface-active hydroxyl groups. The powder was then utilized for the quantitative replacement of polyol in the foaming process. Characterizations showed that the continuous shear extrusion and stretching during the extrusion process reduced the volume mean diameter (VMD) of the F-PUF powder obtained by extruding it three times at room temperature to reach 54 μm. The -OH number (OHN) of the powder prepared by extruding it three times reached 19.51 mgKOH/g due to the mechanochemical effect of the powdering method. The F-PUF containing recycled powder used to quantitively replace 10 wt.% polyol was similar in microstructure and chemical structure to the original F-PUF, with a compression set of 2%, indentation load deflection of 21.3 lbf, resilience of 43.4%, air permeability of 815.7 L/m·s, tensile strength of 73.0 Kpa, and tear strength of 2.3 N/cm, indicating that the recycling method has potential for industrial applications.
由于柔性聚氨酯泡沫(F-PUF)废料具有高度交联结构,因此回收利用较为困难。在这项工作中,使用了一种楔形块增强挤出机,该挤出机在旋转螺杆和固定楔形块之间具有显著增强的剪切挤出和拉伸区域,用于将F-PUF废料回收成含有表面活性羟基的粉末。然后将该粉末用于在发泡过程中定量替代多元醇。表征结果表明,挤出过程中的连续剪切挤出和拉伸将在室温下挤出三次得到的F-PUF粉末的体积平均直径(VMD)降低至54μm。由于粉末化方法的机械化学作用,挤出三次制备的粉末的羟值(OHN)达到19.51mgKOH/g。用于定量替代10 wt.%多元醇的含有回收粉末的F-PUF在微观结构和化学结构上与原始F-PUF相似,压缩永久变形为2%,压痕负荷挠度为21.3 lbf,回弹性为43.4%,透气率为815.7 L/m·s,拉伸强度为73.0 Kpa,撕裂强度为2.3 N/cm,表明该回收方法具有工业应用潜力。