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基于聚苯乙烯的外墙外保温复合系统的回收利用——机械与化学联合回收的应用

Recycling of polystyrene-based external thermal insulation composite systems - Application of combined mechanical and chemical recycling.

作者信息

Netsch Niklas, Simons Martin, Feil Alexander, Leibold Hans, Richter Frank, Slama Julia, Yogish Savina Padumane, Greiff Kathrin, Stapf Dieter

机构信息

Karlsruhe Institute of Technology (KIT), Institute for Technical Chemistry, Hermann-von-Helmholtz-Platz 1, Eggenstein-Leopoldshafen 76344, Germany.

RWTH Aachen University, Department of Anthropogenic Material Cycles, Wuellnerstrasse 2, Aachen 52062, Germany.

出版信息

Waste Manag. 2022 Aug 1;150:141-150. doi: 10.1016/j.wasman.2022.07.001. Epub 2022 Jul 11.

Abstract

The material recycling of complex waste streams such as external thermal insulation composite systems (ETICS) is challenging, which is why their recycling in the sense of a circular economy is currently hardly established. Therefore, the combined mechanical and thermochemical recycling of ETICS based on expanded polystyrene (EPS) is investigated experimentally and by simulating full process chains in order to evaluate circular economy opportunities. Model ETICS as example for building and construction waste is pretreated mechanically, followed by either pyrolysis and / or gasification steps, and full mass and energy balances are derived. By the combined recycling, inorganic compounds can be separated to a large extent allowing a pre-concentrate generation. The plastic-rich pre-concentrate is converted into either pyrolysis oil with a high styrene monomer content of 51 wt% or to synthesis gas in the subsequent thermochemical conversions. The holistic approach enables a high carbon recycling rate between 53 and 68 wt%. In addition, the investigation reveals technology limitations and opportunities to be further developed and optimized.

摘要

诸如外墙外保温复合系统(ETICS)等复杂废物流的材料回收具有挑战性,这就是为什么目前几乎没有建立起它们在循环经济意义上的回收利用。因此,基于发泡聚苯乙烯(EPS)对ETICS进行机械和热化学联合回收,通过实验以及模拟完整的工艺链来评估循环经济机会。以建筑和建筑垃圾为例的模型ETICS先进行机械预处理,然后进行热解和/或气化步骤,并得出完整的质量和能量平衡。通过联合回收,可以在很大程度上分离无机化合物,从而生成预浓缩物。富含塑料的预浓缩物在随后的热化学转化中被转化为苯乙烯单体含量高达51 wt%的热解油或合成气。这种整体方法实现了53%至68 wt%的高碳回收率。此外,该研究揭示了技术限制以及有待进一步开发和优化的机会。

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