![]() Hence the chart is only useful for enthalpy changes in the expansion process of the steam cycle. In general such charts do not show the values of specific volumes, nor do they show the enthalpies of saturated water at pressures which are of the order of those experienced in condensers in a thermal power station. Above the heavy line, the temperature is above the boiling point, and the dry (superheated) substance is gas only. ![]() X gives the fraction (by mass) of gaseous substance in the wet region, the remainder being colloidal liquid droplets. Lines of constant dryness fraction ( x), sometimes called the quality, are drawn in the wet region and lines of constant temperature are drawn in the superheated region. Later the deviations from the ideal values and they can be calculated considering the isentropic efficiency of the steam turbine used.) So the expansion process in a turbine can be easily calculated using the h–s chart when the process is considered to be ideal (which is the case normally when calculating enthalpies, entropies, etc. The process 3–4 in a Rankine cycle is isentropic when the steam turbine is said to be an ideal one. A horizontal line in the diagram represents an isenthalpic process.Ī vertical line in the h–s chart represents an isentropic process. In an isenthalpic process, the enthalpy is constant. In an isobaric process, the pressure remains constant, so the heat interaction is the change in enthalpy. The work done in a process on vapor cycles is represented by length of h, so it can be measured directly, whereas in a T–s diagram it has to be computed using thermodynamic relationship between thermodynamic properties. Thus, coordinates on the diagram represent entropy and heat. On the diagram, lines of constant pressure, constant temperature and volume are plotted, so in a two-phase region, the lines of constant pressure and temperature coincide. Īt the 1923 Thermodynamics Conference held in Los Angeles it was decided to name, in his honor, as a "Mollier diagram" any thermodynamic diagram using the enthalpy as one of its axes. The diagram was created in 1904, when Richard Mollier plotted the total heat H against entropy S. A typical chart covers a pressure range of 0.01–1000 bar, and temperatures up to 800 degrees Celsius. The "dryness fraction", x, gives the fraction by mass of gaseous water in the wet region, the remainder being droplets of liquid.Īn enthalpy–entropy chart, also known as the H– S chart or Mollier diagram, plots the total heat against entropy, describing the enthalpy of a thermodynamic system. ![]() The Mollier enthalpy–entropy diagram for water and steam. ![]()
0 Comments
Leave a Reply. |