Generalized Linear Trajectory Approximations and the Constant Acceleration Approximation
- 15 December 1970
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 53 (12) , 4705-4709
- https://doi.org/10.1063/1.1673999
Abstract
The evaluation of correlation functions by means of approximation of the time evolution operator is discussed. It is shown that different approximations may be obtained depending upon the particular factorization of the equilibrium distribution function in the averages to be computed. With the approximation of free particle dynamics, generalized linear trajectory approximations for correlation functions are obtained. The circumvention in the generalized approximation of the separation of the intermolecular potential employed in the linear trajectory approximation introduced by Helfand is discussed. For low density, it is demonstrated that the constant acceleration approximation introduced by Bloom and Oppenheim is exactly equivalent to a generalized linear trajectory approximation. An explicit expression for the deviation of the constant acceleration approximation result from the exact correlation function expression is obtained. The differences between the constant acceleration and generalized linear trajectory approximations at higher densities are discussed.Keywords
This publication has 12 references indexed in Scilit:
- Theory of Transport Coefficients for Moderately Dense GasesReviews of Modern Physics, 1969
- Reformulation of the Representation of Transport Coefficients Using the Autocorrelation-Function Formalism and the Linear-Trajectory ApproximationThe Journal of Chemical Physics, 1967
- Contribution to the Friction Coefficient from Time Correlations between Hard and Soft Molecular InteractionsThe Journal of Chemical Physics, 1967
- Intermolecular Forces Determined by Nuclear Magnetic ResonanceAdvances in Chemical Physics, 1967
- Nuclear Relaxation in Hydrogen Gas and LiquidPublished by Elsevier ,1966
- Correlation-Function Method for the Transport Coefficients of Dense Gases. I. First Density Correction to the Shear ViscosityPhysical Review B, 1964
- NUCLEAR SPIN RELAXATION IN GASES AND LIQUIDS: III. MOMENTUM-DEPENDENT INTERACTIONSCanadian Journal of Physics, 1964
- Method for Finding the Density Expansion of Transport Coefficients of GasesPhysical Review B, 1963
- A simplified cluster expansion for the classical real gasPhysica, 1961
- NUCLEAR SPIN RELAXATION IN GASES AND LIQUIDS: I. CORRELATION FUNCTIONSCanadian Journal of Physics, 1961