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采用聚合氯化铝逐步浮选分离电子废物塑料,以实现对微塑料的源头控制。

Stepwise flotation separation of WEEE plastics by polymeric aluminum chloride towards source control of microplastics.

机构信息

College of Chemistry and Chemical Engineering, Central South University, Changsha, 410083 Hunan, PR China.

College of Chemistry and Chemical Engineering, Central South University, Changsha, 410083 Hunan, PR China.

出版信息

Waste Manag. 2022 Jul 15;149:1-10. doi: 10.1016/j.wasman.2022.05.029. Epub 2022 Jun 8.

Abstract

The mismanagement of waste electrical and electronic equipment (WEEE) resulted in numerous discarded plastics in the natural environment, and these waste plastics might experience aging, breaking, and migration, which becomes a crucial microplastic source. Sustainable management of WEEE plastics presents a considerable opportunity for resource recovery and microplastic pollution prevention. Flotation separation is a significant process of mechanical recycling, while most flotation methods can only deal with binary plastic mixtures. In this work, an advanced, stepwise, and sustainable flotation method was advocated to separate multi-plastics by polymeric aluminum chloride (PAC) modification. The abundant hydrophilic groups and environmental friendliness of PAC prompted us to further investigate the wetting effect. PAC had varied hydrophilization effects on acrylonitrile butadiene styrene (ABS) and polystyrene (PS) surfaces, but polyethylene terephthalate (PET) retained hydrophobicity. Treatment conditions, including PAC dosage, temperature, time, and pH were optimized. 100% of PET could be purified after primary separation, and the purities of ABS and PS could reach 100% and 97.4% after secondary separation, respectively. The strength of the interaction was determined by the different surface potentials and functional groups. In PAC solution, long-chain molecules or ions might interact with plastic surfaces electrostatically, and Al could bridge long-chain molecules and plastic surfaces, thereby strengthening the polymer hydrophilicity. We further improved the PAC treatment process, and the reuse of PAC reduced modifier usage to 84.4 g/ton waste plastics, which was cost-effective in industrial applications. A preliminary evaluation of the energy consumption and environmental impact indicated that PAC treatment was superior to other modification methods. This work is an initial attempt at the stepwise separation of waste plastic and shows promising prospects for recycling plastic waste.

摘要

废弃电气电子设备(WEEE)管理不善导致大量废弃塑料进入自然环境,这些废塑料可能会经历老化、破裂和迁移,成为重要的微塑料来源。对 WEEE 塑料进行可持续管理为资源回收和微塑料污染防治提供了巨大的机会。浮选分离是机械回收的重要过程,而大多数浮选方法只能处理二元塑料混合物。在这项工作中,我们提倡采用先进的、逐步的和可持续的浮选方法,通过聚合氯化铝(PAC)改性来分离多塑料。PAC 丰富的亲水性基团和环境友好性促使我们进一步研究其润湿效果。PAC 对丙烯腈丁二烯苯乙烯(ABS)和聚苯乙烯(PS)表面具有不同的亲水化效果,但对聚对苯二甲酸乙二醇酯(PET)仍保持疏水性。我们优化了处理条件,包括 PAC 用量、温度、时间和 pH 值。经过初步分离,PET 的纯度可达到 100%,经过二次分离,ABS 和 PS 的纯度可分别达到 100%和 97.4%。相互作用的强度取决于不同的表面电位和官能团。在 PAC 溶液中,长链分子或离子可能与塑料表面静电相互作用,Al 可以桥接长链分子和塑料表面,从而增强聚合物的亲水性。我们进一步改进了 PAC 处理工艺,PAC 的重复使用将改性剂用量减少至 84.4 g/吨废塑料,在工业应用中具有成本效益。对能量消耗和环境影响的初步评估表明,PAC 处理优于其他改性方法。这项工作是对废塑料分步分离的初步尝试,为回收塑料废物展示了广阔的前景。

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