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混合污染塑料废物的热解:评估聚合物组成、温度和停留时间的影响。

Pyrolysis of mixed contaminated plastic wastes: Assessing the influence of polymers composition, temperature and residence time.

作者信息

Sorino D, de Vizia P, Baldelli M, Bartolucci L, Cordiner S, Falsetti A, Lombardi F, Mulone V

机构信息

Tor Vergata University of Rome, Department of Civil Engineering and Computer Science Engineering, Rome, Italy.

Tor Vergata University of Rome, Department of Industrial Engineering, Rome, Italy.

出版信息

Waste Manag. 2025 Jun 15;201:114793. doi: 10.1016/j.wasman.2025.114793. Epub 2025 Apr 13.

Abstract

The European Union's recycling objectives of 50 % for packaging by 2025 and 55 % by 2030 are still far from the current recycling rate of 37.8 %. Thermochemical recycling via pyrolysis might improve recovery rates, especially for challenging post-consumer dirty and contaminated plastics. Many studies focus on the pyrolysis of virgin plastics and artificial mixtures of these plastics to simulate real-world mixed plastic waste scenarios. This study examines a sample of pre-sorting waste from an Italian composting plant to represent real plastic mixtures within the collection chain. This waste contains plastics, organics, paper, and others, with plastics making up 72.18 % of the sample, primarily identified as LDPE, PP, and HDPE. The plastics were tested individually and as a mixture, mirroring the concentrations observed within the original sample, in a bench-scale semi-batch reactor at varying temperatures (420 °C, 470 °C, and 520 °C) and residence times. The analysis indicated that temperature and residence time considerably influence product yields and composition, although temperature has a more dominant effect. Wax analysis showed paraffins and olefins as the primary components, with a peak carbon number distribution in the C-C range at elevated temperatures. Contaminant analysis of wax identified substantial levels of halogens and metals, posing challenges for downstream processes. Results from the mixture tests revealed that the product yields of individual polymers could be predicted as a linear combination of their behaviors, with an accuracy within a 10 % margin of error across the examined temperature range and lower residence times.

摘要

欧盟设定的到2025年包装回收率达到50%、到2030年达到55%的目标,与目前37.8%的回收率仍相差甚远。通过热解进行热化学回收可能会提高回收率,特别是对于具有挑战性的消费后脏污和受污染塑料。许多研究集中在原生塑料及其人工混合物的热解,以模拟现实世界中的混合塑料废物情景。本研究考察了意大利一家堆肥厂的预分选废物样本,以代表收集链中的真实塑料混合物。这种废物包含塑料、有机物、纸张等,其中塑料占样本的72.18%,主要鉴定为低密度聚乙烯(LDPE)、聚丙烯(PP)和高密度聚乙烯(HDPE)。这些塑料分别进行了测试,并作为混合物在小型半间歇式反应器中于不同温度(420℃、470℃和520℃)和停留时间下进行了测试,反映了原始样本中的浓度情况。分析表明,温度和停留时间对产物产率和组成有显著影响,尽管温度的影响更为显著。蜡分析表明,石蜡和烯烃是主要成分,在高温下碳数分布峰值在C-C范围内。蜡的污染物分析表明存在大量卤素和金属,给下游工艺带来挑战。混合物测试结果表明,各聚合物的产物产率可作为其行为的线性组合进行预测,在所考察的温度范围和较低停留时间内,预测精度在10%的误差范围内。

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