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Study of the effect of condensation and evaporation of water on heat and mass transfer in CO2 absorption column

机译:水的冷凝和蒸发对CO2吸收塔传热传质的影响研究

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摘要

A rate-based combined heat and mass transfer model developed based on penetration theory is used to study the effect of water evaporation and condensation on the CO2 absorption process using six different cases with real pilot-scale plants flue gas conditions. The effect of water evaporation and condensation on the concentrations, temperature profiles and reaction rates are studied in detail. The model predicted reasonable profiles as one would expect for water condensation and evaporation. The degree of liquid temperature rise depends mainly on the gas water saturation level and the temperature difference between the gas and liquid. Temperature profiles are flat in the liquid, whereas the transferring components create steep concentration gradients close to the interface making the interface concentrations change rapidly with position in absorber. This is in line with the thermal and mass diffusivities. Concentration build-up or depletion of species takes place in the liquid phase close to the gas-liquid interface up to 10 μm distance from the interface. For the case with absorber bottom pinch conditions, it was found that the CO2 flux sign changes and desorption occurred when taking the evaporation and condensation effects into account, whereas, without these effects, only absorption was predicted. For most of the cases, absorption rate of CO2 was not affected significantly even though concentration gradients and temperature changes were found. However, for the extreme case of warm unsaturated exhaust from an NG fired plant, case C1, and for the near pinch situation, case C6, significant changes to the CO2 absorption rates were found.
机译:基于渗透理论开发的基于速率的传热传质组合模型用于研究水蒸发和冷凝对CO2吸收过程的影响,使用了六种不同的实际中试规模工厂烟气条件。详细研究了水蒸发和冷凝对浓度,温度曲线和反应速率的影响。该模型预测了合理的分布,正如人们期望的那样,水会冷凝和蒸发。液体温度升高的程度主要取决于气体水饱和度和气体与液体之间的温差。液体中的温度曲线平坦,而传输成分在界面附近产生陡峭的浓度梯度,使界面浓度随吸收器中位置的变化而迅速变化。这与热和质量扩散一致。物质的浓度增加或耗尽发生在靠近气液界面的液相中,距离界面最多10μm。对于吸收塔底部收缩的情况,发现当考虑到蒸发和冷凝作用时,CO2通量符号会发生变化并发生解吸,而没有这些影响,则只能预测吸收。在大多数情况下,即使发现浓度梯度和温度变化,CO2的吸收率也不会受到显着影响。但是,对于来自NG燃烧工厂的热不饱和废气的极端情况(案例C1),以及对于接近收缩的情况(案例C6),发现了CO2吸收率的显着变化。

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