A strategy for deriving thermodynamic properties of liquids (r, cp, cv) from speed of sound is presented. It is based on numerical integration of differential equations connecting speed of sound with other thermodynamic properties. Two different procedures are recommended: One for liquids with lower and moderate critical pressures (LMCP), and another for liquids with higher critical pressures (HCP). The set of differential equations is solved as the initial value problem in both cases. However, for LMCP liquids initial conditions (several accurate values of r and cp) are specified along isobar near the critical pressure, and for HCP liquids along the liquid-vapor saturation curve. The procedures are tested on ethane, carbon dioxide, and water.
Primary Language | English |
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Journal Section | Regular Original Research Article |
Authors | |
Publication Date | May 17, 2012 |
Published in Issue | Year 2012 Volume: 15 Issue: 2 |