Semi-grand ensembles: Difference between revisions
Jump to navigation
Jump to search
Line 23: | Line 23: | ||
== Semi-grand ensemble at fixed volume and temperature == | == Semi-grand ensemble at fixed volume and temperature == | ||
Consider now that we want to consider a system with fixed total number of particles, <math> N </math> | |||
: <math> \left. N = N_1 + N_2 \right. </math>; | |||
but the composition can change, from the thermodynamics we can apply a Legendre's transform [HAVE TO CHECK ACCURACY] | |||
to the differential equation written above in terms of <math> A (T,V,N_1,N_2) </math>. | |||
# Consider the change <math> (N_1,N_2) \rightarrow (N,N_2) </math> |
Revision as of 13:08, 5 March 2007
General Features
Semi-grand ensembles are used in Monte Carlo simulation of mixtures.
In this ensembles the total number of molecules is fixed, but the composition can change.
Canonical Ensemble: fixed volume, temperature and number(s) of molecules
We will consider a binary system;. In the Canonical Ensemble, the differential equation energy for the Helmholtz energy function can be written as:
- ,
where:
- is the Helmholtz energy function
- is the Boltzmann constant
- is the absolute temperature
- is the internal energy
- is the pressure
- is the chemical potential of the species "i"
- is the number of molecules of the species "i"
Semi-grand ensemble at fixed volume and temperature
Consider now that we want to consider a system with fixed total number of particles,
- ;
but the composition can change, from the thermodynamics we can apply a Legendre's transform [HAVE TO CHECK ACCURACY] to the differential equation written above in terms of .
- Consider the change