• Title of article

    Modelling of Carbon Dioxide Absorption into Aqueous Ammonia Solution in a Wetted Wall Column

  • Author/Authors

    Ghosh, Ujjal Kumar Curtin University CDT - School of Engineering Science - Department of Chemical Engineering, Malaysia , Hong, Chiu Choon Curtin University CDT - School of Engineering Science - Department of Chemical Engineering, Malaysia , Nandong, Jobrun Curtin University CDT - School of Engineering Science - Department of Chemical Engineering, Malaysia , Shen, Shufeng Hebei University of Science and Technology - School of Chemical and Pharmaceutical Engineering, China

  • From page
    89
  • To page
    104
  • Abstract
    In this paper, a mathematical model is developed based on mass and momentum balance for carbon dioxide absorption into aqueous ammonia solution. The model is simplified based on the assumption that the CO2 absorption into aqueous ammonia is a pseudo-first-order reaction. Laplace transform method is applied in order to solve the partial differential model equation. Finally, the CO2 molar flux is expressed as a function of partial pressure of CO2, concentration of aqueous ammonia, temperature and gas-liquid contact area. Variation of CO2 molar flux with partial pressure of CO2 and temperature is discussed and a comparison is performed with experimental data from literature. Variation of CO2 molar flux is also shown with gas-liquid contact area. The calculated flux from the model follows the same trend as that of the experimental data reported in literature and the accuracy is within the accepted limit. The mathematical model is very helpful to predict the CO2 molar flux as a function of partial pressure of CO2, concentration of aqueous ammonia, temperature and gas-liquid contact area.
  • Keywords
    Carbon dioxide capture , absorption , aqueous ammonia , modelling , wetted wall column
  • Journal title
    Pertanika Journal of Science and Technology ( JST)
  • Journal title
    Pertanika Journal of Science and Technology ( JST)
  • Record number

    2577241