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A Simplified Model of Predicting SO2 Absorption by Single Atmospheric Raindrops with Chemical Dissociation and Internal Circulation

机译:化学解离和内循环预测单个大气雨滴吸收SO2的简化模型

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A simplified model of predicting chemical SO2 absorption by single freely falling raindrops with internal circulation in the atmosphere is developed in the present study. By multiplying a modification factor α into the model of interfacial velocity established from creeping flow, it is found that the relative error between the simplified model and the two-phase simulation method is less than 4%. Accordingly, the simplified model enables us to simulate the atmospheric SO2 absorption process with less computational effort and without losing accuracy. The simulated results indicate that the dissociation of H2SO3 governs the mass transfer process and the concentration of HSO3? is by far larger than those of SO32? and H2SO3. As a result, the chemical absorption takes a much longer period of time to achieve the uptake process. Specifically, for the raindrop radius in the range of 200–500 μm, the absorption time of chemical absorption is larger than that of physical absorption by the factors of 70–290. From the perspective of characteristic time, mass diffusion is the controlling mechanism for SO2 absorption. When chemical absorption is carried out, the absorption period is 28–33 folds of the characteristic time of mass diffusion, implying that the former is always larger than the latter by over an order of magnitude.
机译:在本研究中,开发了一种简化的模型,该模型通过大气中具有内部循环的单个自由下落的雨滴来预测化学SO2的吸收。通过将修正因子α乘以由蠕变流建立的界面速度模型,发现简化模型与两相模拟方法之间的相对误差小于4%。因此,简化的模型使我们能够以较少的计算工作量来模拟大气中的SO2吸收过程,而不会损失准确性。模拟结果表明,H2SO3的离解决定了传质过程和HSO3?的浓度。比SO32还要大吗?和硫酸。结果,化学吸收花费了更长的时间来实现吸收过程。具体而言,对于200-500μm范围内的雨滴半径,化学吸收的吸收时间比物理吸收的吸收时间长70-290倍。从特征时间的角度来看,质量扩散是SO 2吸收的控制机制。当进行化学吸收时,吸收时间是质量扩散特征时间的28-33倍,这意味着前者总是比后者大一个数量级。

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