화학공학소재연구정보센터
International Journal of Heat and Mass Transfer, Vol.51, No.17-18, 4300-4314, 2008
Extensive study on laminar free film condensation from vapor-gas mixture
The dimensionless velocity component method was successfully applied in a depth investigation of laminar free film condensation from a vapor-gas mixture, and the complete similarity transformation of its system of governing partial differential equations was conducted. The set of dimension less variables of the transformed mathematical model greatly facilitates the analysis and calculation of the velocity, temperature and concentration fields, and heat and mass transfer of the film condensation from the vapor-gas mixture. Meanwhile, three difficult points of analysis related to the reliable analysis and calculation of heat and mass transfer for the film condensation from the vapor-gas mixture were overcome. They include: (i) correct determination of the interfacial vapor condensate saturated temperature; (ii) reliable treatment of the concentration-dependent densities of vapor-gas mixture, and (iii) rigorously satisfying the whole set of physical matching conditions at the liquid-vapor interface. Furthermore, the critical bulk vapor mass fraction for condensation was proposed, and evaluated for the film condensation from the water vapor-air mixture, and the useful methods iii treatment of temperature-dependent physical properties of liquids and gases were applied. With these elements iii place, the reliable results on analysis and calculation of heat and mass transfer of the film condensation front the vapor-gas mixture were achieved. The laminar free film condensation of water vapor iii the presence of air was taken as an example for the numerical calculation. It was confirmed that the presence of the non-condensable gas is it decisive factor in decreasing the heat and mass transfer of the film condensation. It was demonstrated that an increase of the bulk gas mass fraction has the following impacts: an expedited decline in the interfacial vapor condensate saturation temperature; an expedited decrease in the condensate liquid film thickness, the condensate liquid velocity, and the condensate heat and mass transfer. It was found that in increase of the wall temperature will increase the negative effect of the non-condensable gas on heat and mass transfer of the film condensation from the vapor-gas mixture. (C) 2008 Elsevier Ltd. All rights reserved.