• Title of article

    Analysis of a carbon dioxide transcritical power cycle using a low temperature source

  • Author/Authors

    Cayer، نويسنده , , Emmanuel and Galanis، نويسنده , , Nicolas and Desilets، نويسنده , , Martin and Nesreddine، نويسنده , , Hakim and Roy، نويسنده , , Philippe، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2009
  • Pages
    9
  • From page
    1055
  • To page
    1063
  • Abstract
    A detailed analysis of a carbon dioxide transcritical power cycle using an industrial low-grade stream of process gases as its heat source is presented. The methodology is divided in four steps: energy analysis, exergy analysis, finite size thermodynamics and calculation of the heat exchangers’ surface. The results have been calculated for fixed temperature and mass flow rate of the heat source, fixed maximum and minimum temperatures in the cycle and a fixed sink temperature by varying the high pressure of the cycle and its net power output. The main results show the existence of an optimum high pressure for each of the four steps; in the first two steps, the optimum pressure maximises the thermal or exergetic efficiency while in the last two steps it minimises the product UA or the heat exchangers’ surface. These high pressures are very similar for the energy and exergy analyses. The last two steps also have nearly identical optimizing high pressures that are significantly lower that the ones for the first two steps. In addition, the results show that the augmentation of the net power output produced from the limited energy source has no influence on the results of the energy analysis, decreases the exergetic efficiency and increases the heat exchangers’ surface. Changing the net power output has no significant impact on the high pressures optimizing each of the four steps.
  • Keywords
    optimization , waste heat , Energy Analysis , Finite size thermodynamics , Heat exchanger surface , Exergy analysis
  • Journal title
    Applied Energy
  • Serial Year
    2009
  • Journal title
    Applied Energy
  • Record number

    1603827