School of Materials Science and Engineering, Tongji University, Shanghai 201804, PR China.
School of Materials Science and Engineering, Tongji University, Shanghai 201804, PR China; Key Laboratory of Advanced Civil Engineering Materials (Tongji University), Education of Ministry, Shanghai 201804, PR China.
Waste Manag. 2018 Apr;74:427-434. doi: 10.1016/j.wasman.2018.01.004. Epub 2018 Jan 6.
Nonmetallic particles recycled from waste print circuit boards (NPRPs) were modified by a hydrothermal treatment method and the catalysts, solvents, temperature and time were investigated, which affected the modification effect of NPRPs. The mild hydrothermal treatment method does not need high temperature, and would not cause secondary pollution. Further, the modified NPRPs were used as the raw materials for the epoxy resin and glass fibers/epoxy resin composites, which were prepared by pouring and hot-pressing method. The mechanical properties and morphology of the composites were discussed. The results showed that relative intensity of the hydroxyl bonds on the surface of NPRPs increased 58.9% after modification. The mechanical tests revealed that both flexural and impact properties of the composites can be significantly improved by adding the modified NPRPs. Particularly, the maximum increment of flexural strength, flexural modulus and impact strength of the epoxy matrix composites with 30% modified NPRPs is 40.1%, 80.0% and 79.0%, respectively. Hydrothermal treatment can modify surface of NPRPs successfully and modified NPRPs can not only improve the properties of the composites, but also reduce the production cost of the composites and environmental pollution. Thus, we develop a new way to recycle nonmetallic materials of waste print circuit boards and the highest level of waste material recycling with the raw materials-products-raw materials closed cycle can be realized through the hydrothermal modification and reuse of NPRPs.
从废印刷电路板 (NPRP) 中回收的非金属颗粒通过水热处理方法进行改性,研究了催化剂、溶剂、温度和时间对 NPRP 改性效果的影响。温和的水热处理方法不需要高温,也不会造成二次污染。进一步地,将改性后的 NPRP 用作环氧树脂和玻璃纤维/环氧树脂复合材料的原料,通过浇注和热压法制备。讨论了复合材料的力学性能和形态。结果表明,改性后 NPRP 表面羟基键的相对强度增加了 58.9%。力学测试表明,添加改性 NPRP 可显著提高复合材料的弯曲和冲击性能。特别是,添加 30%改性 NPRP 的环氧树脂基复合材料的弯曲强度、弯曲模量和冲击强度的最大增量分别为 40.1%、80.0%和 79.0%。水热处理可以成功地对 NPRP 的表面进行改性,改性后的 NPRP 不仅可以提高复合材料的性能,还可以降低复合材料的生产成本和环境污染。因此,我们开发了一种回收废印刷电路板中非金属材料的新方法,通过 NPRP 的水热改性和再利用,可以实现原材料-产品-原材料的闭路循环,达到最高水平的废物回收。