Calculation of Thermal Pressure Coefficient of Dense C<sub>15</sub>H<sub>32</sub>, C<sub>17</sub>H<sub>36</sub>, C<sub>18</sub>H<sub>38</sub> and C<sub>19</sub>H<sub>40</sub> Using <i>pVT</i> Data
- 1 Department of Chemistry, Payame Noor University, Tehran, Iran
- 2 Department of Chemistry, Payame Noor University, Tehran, Iran
Abstract
The thermal pressure coefficients in liquid n-Pentadecane (C15), n-Heptadecane (C17), n-octadecane (C18) and n-nonadecane (C19) was measured using pVT data. The measurements were carried out at pressures up to 150 MPa in the temperature range from 293 to 383 K. The experimental results have been used to evaluate various thermophysical properties such as thermal pressure coefficients up to 150 MPa with the use of density and temperature data at various pressures. New parameters of the linear isotherm regularity, the so-called LIR equation of state, are used to calculate of thermal pressure coefficients of n-Pentadecane (C15), n-Heptadecane (C17), n-octadecane (C18) and n-nonadecane (C19) dense fluids. In this paper, temperature dependency of linear isotherm regularity parameters in the form of a first order has been developed to second and third order and their temperature derivatives of new parameters are used to calculate thermal pressure coefficients. The resulting model predicts accurately thermal pressure coefficients from the lower density limit at the Boyle density at the from triple temperature up to about double the Boyle temperature. The upper density limit appears to be reached at 1.4 times the Boyle density. These problems have led us to try to establish a function for the accurate calculation of the thermal pressure coefficients based on the linear isotherm regularity theory for different fluids.
- J. L. Daridon, H. Carrier and B. Lagourette, “Pressure Dependence of the Thermophysical Properties of n-Pentadecane and n-Heptadecane,” International Journal of Thermophysics, Vol. 23, No. 3, 2002, pp. 697-708. doi:10.1023/A:1015451020209
- L. Boltzmann, “Lectures on Gas Theory,” University of California Press, Berkeley, 1964.
- S. Dutour, J. L. Daridon and B. Lagourette, “Pressure and Temperature Dependence of the Speed of Sound and Related Properties in Normal Octadecane and Nonadecane,” International Journal of Thermophysics, Vol. 21, No. 1, 2000, pp. 173-184. doi:10.1023/A:1006665006643
- V. Moeini, “A New Regularity for Internal Pressure of Dense Fluids,” Journal of Physical Chemistry B, Vol. 110, No. 7, 2006, pp. 3271-3275. doi:10.1021/jp0547764
- V. Moeini, F. Ashrafi, M. Karri and H. Rahimi, “Calculation of Thermal Pressure Coefficient of Dense Fluids Using the Linear Isotherm Regularity,” Journal of Physics Condensed Matter, Vol. 20, No. 7, 2008. doi:10.1088/0953-8984/20/7/075102
- V. Moeini, “Internal Pressures of Lithium and Cesium Fluids at Different Temperatures,” Journal of Chemical & Engineering Data, Vol. 55, No. 3, 2010, pp. 1093-1099. doi:10.1021/je900538q
- V. Moeini and M. Deilam, “Determination of Molecular Diameter by pVT,” ISRN Physical Chemistry, Vol. 2012, 2012. doi:10.5402/2012/521827
- V. Moeini, “Internal Pressures of Sodium, Potassium, and Rubidium Fluids at Different Temperatures,” Journal of Chemical & Engineering Data, Vol. 55, No. 12, 2010, pp. 5673-5680. doi:10.1021/je100627c
- R. B. Stewart and T. Jacobsen, “Thermodynamic Properties of Argon from the Triple Point to 1200 K with Pressures to 1000MPa,” Journal of Physical and Chemical Reference Data, Vol. 18, No. 2, 1989, pp. 639-798. doi:org/10.1063/1.555829
- R. D. Goodwin, “Carbonmonoxide Thermophysical Properties from 68 to 1000 K at Pressures to 100MPa,” Journal of Physical and Chemical Reference Data, Vol. 14, No. 4, 1985, pp. 849-933. doi:org/10.1063/1.555742
- R. Span and W. Wagner, “A New Equation of State for Carbon Dioxide Covering the Fluid Region from the Triple-Point Temperature to 1100 K at Pressures up to 800 MPa,” Journal of Physical and Chemical Reference Data, Vol. 25, No. 6, 1996, pp. 1509-1596. doi:org/10.1063/1.555991
- R. T. Jacobsen, R. B. Stewart and M. Jahangiri, “Thermodynamic Properties of Nitrogen from the Freezing Line to 2000 K at Pressures to 1000MPa,” Journal of Physical and Chemical Reference Data, Vol. 15, No. 2, 1986, pp. 735-909. doi:org/10.1063/1.555754