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Development of an irradiation and kinetic model for UV processes in volatile organic compounds abatement applications

机译:挥发性有机化合物减排应用紫外线方法的辐照和动力学模型的发展

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Air pollution from volatile organic compounds (VOCs) is one of the most important environmental hazards. Advanced oxidation processes (AOPs) with UV systems have been showing high potential for the abatement of VOCs. This work is aimed at modeling UV reactors for scaling-up AOPs from lab-scale to full-scale. The proposed model has a novel approach coupling the UV fluence rate to the photo-kinetic mechanism, for a robust understanding of the phenomena involved. The results show that the 185 nm wavelength is deeply absorbed within few centimeters by oxygen, while the 254 nm wavelength is weakly absorbed by the ozone generated in the reactor. Based on the fluence rate calculations, the reactions of ozone generation and depletion were modeled. The ozone net concentration was compared to the experimental results, for model verification. The model accurately predicts the effect of the airflow rate and reactor diameter for the tested cases. The acetaldehyde oxidation reaction was modeled using a simplified kinetic mechanism, using the experimental data of VOC conversion for a further model verification. The suggested reactor models accurately predicted the effect of airflow rate, while exhibiting limitations for the effect of different reactor diameters. Therefore, a computational fluid dynamics (CFD) investigation is needed for an accurate modeling of the VOCs oxidation reaction, implementing the developed analytical expression for reducing the computational workload. By combining the developed model with a CFD simulator, it would be possible to simulate several reactors, also at full-scale, for predicting their performance and identifying optimal configurations.
机译:来自挥发性有机化合物(VOC)的空气污染是最重要的环境危害之一。具有UV系统的高级氧化方法(AOP)已经显示出高潜力的VOC。这项工作旨在建模UV反应堆,用于从Lab级到满量程来缩放AOP。该拟议模型具有一种新的方法,耦合UV流量率与照相机制,以稳健地了解所涉及的现象。结果表明,185nm波长在氧气下少厘米内深度吸收,而254nm波长被反应器中产生的臭氧弱吸收。基于流量计算,模拟了臭氧产生和耗尽的反应。将臭氧净浓度与实验结果进行比较,用于模型验证。该模型精确地预测了气流率和电抗器直径的效果。使用简化的动力学机制模拟乙醛氧化反应,使用VOC转换的实验数据进行进一步的模型验证。建议的反应器模型精确地预测了气流率的效果,同时表现出不同反应器直径效果的限制。因此,需要计算流体动力学(CFD)研究VOCS氧化反应的准确建模,实现显影的分析表达来降低计算工作量。通过将开发的模型与CFD模拟器组合,可以模拟多个反应堆,也以满量程,以预测其性能并识别最佳配置。

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