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首页> 外文期刊>Journal of the air & waste management association >Modeling of gas-phase photodegradation of chloroform and carbon tetrachloride
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Modeling of gas-phase photodegradation of chloroform and carbon tetrachloride

机译:氯仿和四氯化碳的气相光降解模拟

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The relationship between the irradiance in a photoreactor and the rate of photodegradation of organics is essential in the scaling-up of photoreactors to treat large volumes of air contaminated with organic pollutants. In this study, the analysis is adopted to compare results obtained from two different photoreactors. Initially, the applicability of two light models in calculating the irradiance in two photoreactors was evaluated. Thereafter, kinetic models of ultraviolet (UV) photooxidation of chloroform (CHCl3) and carbon tetrachloride (CCl4) from the archived literature were tested using experimental data under various operating conditions and different irradiances. Sensitivity analyses were conducted using different values of model parameters to determine the significance of each parameter on the photo degradation of the two chlorinated organics. For compounds that undergo photolysis as a primary mode of degradation, the rate of photodegradation at low initial concentrations can be predicted easily by the following equation: d[C]/dt = -2.303I(ave,lambda)epsilon(lambda)Phi(lambda) [C]. Although the photodegradation of chlorinated organic compounds in dry and humid air can be predicted well, it is difficult to predict the Cl-. sensitized oxidation occurring at high initial concentrations. A good agreement between the simulated and experimental data provides a sound basis for the design of large-scale reactors.
机译:光反应器的辐照度与有机物的光降解速率之间的关系对于放大光反应器以处理大量被有机污染物污染的空气至关重要。在这项研究中,采用分析来比较从两个不同的光反应器获得的结果。最初,评估了两种光模型在计算两个光反应器中的辐照度方面的适用性。此后,使用实验数据在各种操作条件和不同辐照下,测试了来自存档文献的紫外线(UV)光催化的氯仿(CHCl3)和四氯化碳(CCl4)动力学模型。使用不同的模型参数值进行敏感性分析,以确定每个参数对两种氯化有机物光降解的重要性。对于以光解为主要降解方式的化合物,可以通过以下公式轻松预测低初始浓度下的光降解速率:d [C] / dt = -2.303I(ave,λ)epsilon(λ)Phi( lambda)[C]。尽管可以很好地预测干燥和潮湿空气中氯化有机物的光降解,但很难预测Cl-。在高初始浓度下发生敏化氧化。模拟和实验数据之间的良好一致性为大型反应堆的设计提供了良好的基础。

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