接触器
电流(流体)
中空纤维膜
流量(数学)
水蒸气
氧气
纤维
膜
化学
材料科学
机械
化学工程
工艺工程
环境科学
热力学
工程类
物理
复合材料
有机化学
功率(物理)
生物化学
作者
Qiang Yang,Qianguo Lin,Cheng Tung Chong,Yuyang Zhang
摘要
Abstract Membrane contactor has emerged as a promising technology for flue gas carbon capture as it integrates the advantages of high capture efficiency of absorption technology and compact design of membrane technology. However, the integration performance could be affected by the presence of minor components such as water vapor and residual oxygen in real gas conditions, owing to vapor condensation and dynamic oxidation in gas‐liquid transfer interface. Therefore, it remains a need to develop a model that enables the prediction of CO 2 removal performance of membrane contactor under industrial real gas conditions. In the present study, a multicomponent model considering the impact of water vapor and oxygen on CO 2 removal in membrane contactors was developed. The model, based on mass transfer equilibrium, gas reaction kinetics, and diffusion coefficients, describes the transport and reaction dynamics of multicomponent gases within the gas, liquid, and membrane phases. Utilizing the finite element method (FEM) for solution, the model was demonstrated with a case study of CO 2 separation from a quaternary gas mixture by a hollow fiber membrane contactor (HFMC). The results highlight the importance of considering water vapor and oxygen in the design and evaluation of industrial membrane contactor systems, offering valuable insights for enhancing CO 2 separation efficiency in practical applications. © 2024 Society of Chemical Industry and John Wiley & Sons, Ltd.
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