Thermodynamic Property Models for Moist Air and Combustion Gases

Author:

Bu¨cker D.1,Span R.1,Wagner W.1

Affiliation:

1. Lehrstuhl fu¨r Thermodynamik, Ruhr-Universita¨t Bochum, D-44780 Bochum, Germany

Abstract

A new model for the prediction of caloric properties of moist air and combustion gases has been developed. The model very accurately predicts ideal gas caloric properties of undissociated gas mixtures at temperatures from 200 K to 3300 K. In addition, a simple model has been developed to account for caloric effects of dissociation at temperatures up to 2000 K. As a part of the project, scientific equations for the ideal gas isobaric heat capacity of the individual combustion gas components have been established. Based on this reference, an assessment and comparison of the new model with the most common technical models have been carried out. Results of the simplified dissociation model are compared to the results of complex chemical equilibrium programs. To mark out the limits of the ideal gas hypothesis, some sample calculations are given, which compare results of the new ideal gas model to results from sophisticated real gas models.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference32 articles.

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3. Gordon, S., and McBride, B. J., 1994, “Computer Program for Calculation of Complex Chemical Equilibrium Composition and Applications,” NASA RP-1311, National Aeronautics and Space Administration, Washington, DC.

4. Brandt, F., 1995, Wa¨rmeu¨bertragung in Dampferzeugern und Wa¨rmetauschern, FDBR-Fachbuchreihe, 2, Second Ed., Vulkan-Verlag, Essen.

5. Jacobsen, R. T., Clarke, W. P., Penocello, S. G., and McCarty, R. D., 1990, “A Thermodynamic Property Formulation for Air. I. Single-Phase Equation of State from 60 to 873 K at Pressures to 70 MPa,” Int. J. Thermophys., 11, pp. 169–177.

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