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首页> 外文期刊>Separation and Purification Technology >Mass transfer study and modeling of gas-liquid membrane contacting process by multistage cascade model for CO2 absorption
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Mass transfer study and modeling of gas-liquid membrane contacting process by multistage cascade model for CO2 absorption

机译:多级联吸收模型在气液膜接触过程中的传质研究与建模

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摘要

The objective of this work was to characterize the main mass transfer resistance for CO2 capture in the gas-liquid membrane contacting process by both physical and chemical absorption conditions. The characterization was performed based on the resistance-in-series model as well as the Wilson-plot method. In addition, a multistage cascade model, which is able to predict the time for the system to reach a steady-state condition, was developed to describe CO2 absorption in the membrane contacting process. The cascade model was numerically solved by using the MATLAB program. It was found that the main mass transfer resistance of the physical absorption (using pure water as an absorbent) and the chemical absorption (using 2 M NaOH as an absorbent) was in the liquid phase and in the membrane, respectively. The membrane mass transfer resistance in the case of physical absorption presented approximately 36% of the total resistances at a liquid velocity of 2.13 m/s. For the chemical absorption condition applied, the membrane mass transfer resistance occupied around 99% of the total resistance. The results of simulation by the cascade model agreed well with the experimental results when the overall mass transfer coefficient obtained form the experiment was employed. The model can potentially be used with various operating conditions including the liquid velocity, gas concentration, and reactive absorbent used.
机译:这项工作的目的是通过物理和化学吸收条件来表征气液膜接触过程中捕获CO2的主要传质阻力。根据串联电阻模型和Wilson-plot方法进行表征。此外,开发了一个多级级联模型,该模型能够预测系统达到稳态状态的时间,以描述膜接触过程中的CO2吸收。使用MATLAB程序对级联模型进行了数值求解。发现物理吸收(使用纯水作为吸收剂)和化学吸收(使用2M NaOH作为吸收剂)的主要传质阻力分别为液相和膜中。在2.13 m / s的液体速度下,物理吸收时的膜传质阻力约占总阻力的36%。对于所施加的化学吸收条件,膜传质阻力占总阻力的99%左右。当采用从实验中获得的总传质系数时,级联模型的模拟结果与实验结果吻合得很好。该模型可以潜在地用于各种操作条件,包括液速,气体浓度和所用的反应性吸收剂。

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