Zajemska Monika, Magdziarz Aneta, Iwaszko Józef, Skrzyniarz Magdalena, Poskart Anna
Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, 19 Armii Krajowej Ave., 42-200 Czestochowa, Poland.
AGH University of Science and Technology, 30 Mickiewicza Ave., 30-059 Krakow, Poland.
Fuel (Lond). 2022 Jul 15;320:123981. doi: 10.1016/j.fuel.2022.123981. Epub 2022 Mar 28.
The current COVID-19 pandemic situation and the associated restrictions have increased the amount of generated waste. It results from the necessity to wear personal protective equipment. Thus, the disposal of masks and gloves is a topical issue and requires immediate investigation. The main aims of this work are management and environmental studies of municipal solid wastes (MSW), which have been generated during the COVID-19 pandemic time. Effective waste management in relation to a circular economy is presented. A sample of refuse derived fuel (RDF) with a high content of plastics was used for the experimental and calculation studies. Pyrolysis was selected as the best thermal decomposition process for this kind of wastes. Proximate and ultimate analyses were performed for RDF and its products. Pyrolysis was carried out using a pilot-scale reactor with a continuous flow of 250 kg/h at 900 °C. Thermogravimetric analysis was applied during the pyrolysis investigation and showed that the main decomposition of RDF took place in the temperature range of 250-500 °C. The pyrolysis gas contained combustible compounds like CO (19.8%), H (13.2%), CH (18.9%) and CH (7.1%), giving a high calorific value - 24.4 MJ/m. The experimental results were implemented for numerical calculations. Chemkin-Pro software was applied to predict the chemical composition of the pyrolysis gas. The performed computer simulations demonstrated very good agreement with the results obtained during the experiments. They also indicated that there is a strong relationship between the chemical composition of the pyrolysis gas, the process temperature and residence time in the reactor.
当前的新冠疫情形势及相关限制措施增加了废弃物的产生量。这是由于佩戴个人防护装备的必要性导致的。因此,口罩和手套的处理成为一个热门问题,需要立即进行研究。这项工作的主要目的是对新冠疫情期间产生的城市固体废物(MSW)进行管理和环境研究。介绍了与循环经济相关的有效废物管理方法。使用了一种塑料含量高的垃圾衍生燃料(RDF)样本进行实验和计算研究。热解被选为处理这类废物的最佳热分解过程。对RDF及其产物进行了近似分析和元素分析。热解在一个中试规模的反应器中进行,连续进料流量为250千克/小时,温度为900°C。在热解研究过程中应用了热重分析,结果表明RDF的主要分解发生在250 - 500°C的温度范围内。热解气包含可燃化合物,如CO(19.8%)、H(13.2%)、CH(18.9%)和CH(7.1%),热值很高——24.4兆焦/立方米。实验结果用于数值计算。应用Chemkin - Pro软件预测热解气的化学成分。所进行的计算机模拟结果与实验结果非常吻合。模拟结果还表明,热解气的化学成分、过程温度和在反应器中的停留时间之间存在很强的关系。