Affiliation:
1. North China Electric Power University
2. TianWei New Energy Systems Engineering (Beijing) Co., Ltd.
Abstract
The problem of the oxy-fuel combustion flue gas condensation is the condensation of vapor in the presence of high concentration non-condensable gas. The vapor condensing at dew point temperature releases heat and diffuses on to the surface of the pipe through a non-condensable gas film. Thus it is treated as combined heat and mass transfer problem governed by mass, momentum and energy balance equations for the vaporgas mixture and diffusion equation for the vapor species. The flow of the falling condensate film is governed by the momentum and energy balance equations. The temperature at the gas-to-liquid interface, at which the condensation takes place, is estimated with the help of the heat balance and mass balance equations at the interface. The local values of the condensation Nusselt number, condensate Reynolds number, gasliquid interface temperature and pressure drop are estimated from the numerical results for different values of the system parameters at inlet, such as vapor component, temperature of vaporgas mixture, gas phase Reynolds number and total pressure. The thermodynamic calculations were made and analyzed using numerical calculation method under different conditions.
Publisher
Trans Tech Publications, Ltd.
Reference13 articles.
1. E.F. Carpenter, A.P. Colburn, The effect of vapor velocity on condensation inside tubes, in: Proceedings of the General Discussion on Heat Transfer, IMechE/ASME (1951) 20–26.
2. K. Lucas, B. Moser, Laminar film condensation of pure vapors in tubes[J]. Heat Mass Transfer 22 (1979) 431–435.
3. F. Dobran, R.S. Thorsen, Forced flow laminar film wise condensation of a pure saturated vapor in a vertical tube[J]. Heat Mass Transfer 23 (1980) 161–177.
4. V.M. Borishansky, D.I. Volkov, N.I. Ivashchenko, Effects of non-condensable gas content on heat transfer in steam condensation in a vertical tube, Heat Transfer Sov. Res. 9 (1977) 35–42.
5. T. Kageyama, P.F. Peterson, V.E. Schrock, Diffusion layer modeling for condensation in vertical tubes with non-condensable gases, Nucl. Eng. Des. 141 (1993) 289–302.