An improved intermolecular potential function.
Simpler intermolecular potential function, determining second virial coefficient and potential parameters for rare gases
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Simpler intermolecular potential function, determining second virial coefficient and potential parameters for rare gases
Electron exchange effects on intermolecular potentials in degenerate noninteracting system of atoms or molecules studied with operator form of perturbation theory
Well depth determination for weak intermolecular potentials based on dimerization enthalpy measurement of rare gas atoms by mass spectrometry
Fluid intermolecular potential and virial calculation, noting relationships to Boyle and Joule-Thompson inversion temperatures
In this paper we examine the role of the anisotropy of the intermolecular potential in the rototranslational collision-induced absorption of the CO2 pairs. Using newly developed formulas that include the effects of anisotropy of the potential to all orders, we calculate the two lowest spectral moments gamma(prime), and alpha(prime), for four different classes of C02 pair potentials and compare the results with the experimental values. We assumed only multipolar induction in the process of forming the induced dipole, with the second-order contributions included. Using a site-site LJ and a site-site semi-ab initio intermolecular potentials we were able to reproduce the experimental values of gamma(prime), and alpha(prime) moments over entire temperature range from 230 to 330 K. Also, the role of an electrostatic interaction between two C02 molecules and its impact on the spectral moments is thoroughly investigated. An isotropic core with a point quadrupole centered at each molecule is shown to be an inadequate representation of the C02-CO2 potential. Additionally, we show the results obtained with the first- and second-order perturbation theory to be more than twice too small.
An example is presented which demonstrates the importance of using physically realistic derivatives of the intermolecular potential when fitting pressure-induced spectra. The use of nonrealistic derivatives may mask second-order temperature effects in the theory. As the temperature decreases, the intermolecular potential may have an important angular dependence.
Relationship between Pitzer acentric factor and Morse intermolecular potential
Differences in spherical intermolecular potentials of hydrogen and deuterium determined from reanalysis of second-virial-coefficient data
Pitzer acentric factor relationship to Morse intermolecular potential function appears to hold only for normal fluids
Electron exchange effects in degenerate perturbation theory of intermolecular potentials
High energy and thermal energy molecular beams elastic scattering for intermolecular potentials determination
Molecular beam scattering analysis by four parameter B-C intermolecular potential, plotting expansion coefficients against reduced curvature
Intermolecular potential function relation to individual macroscopic properties extended to simultaneous fit of all possible pair combinations
Statistical correlation between model intermolecular potential functions, and experimental properties
Differential elastic scattering cross section of Ar nozzle beam in nitrogen considered with rainbow effect in determining intermolecular potential well depth
Ground-state intermolecular interaction potentials determined from shock structure experiments with four monatomic gases are reported. These potentials are assessed for self-consistency, using the law of corresponding states, and their suitability for engineering applications in rarefied gas dynamics is discussed.
The line-shape cross sections of vibrational Raman Q-branch spectra are determined theoretically for D2 and H2 in Ar. The calculations are based on accurate close-coupling matrices and the intermolecular potential obtained by Le Roy and Hutson (1987) from spectra of van der Waals complexes. The calculation techniques applied are explained, and the results are presented in tables and graphs and discussed in detail with reference to published experimental data. Agreement to within about 25 percent is obtained for the line widths, but the line shifts are found to be a factor of two smaller than the measured values, and a temperature dependence of line-width cross sections is predicted which is not observed experimentally.
This report presents a comprehensive analysis of the JCZ3 equation of state (EOS) as implemented in the TIGER code, focusing on its thermodynamic framework, mathematical formulations, and implications for modeling gas phase behavior under varying conditions. Overall, the report affirms the TIGER code's foundational robustness and its potential as a valuable tool for simulating high-pressure, high-temperature gas mixtures, while also highlighting areas for further refinement and validation.