Isothermal-isobaric ensemble: Difference between revisions
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The '''isothermal-isobaric ensemble''' has the following variables: | |||
* N is the number of particles | * <math>N</math> is the number of particles | ||
* p is the [[pressure]] | * <math>p</math> is the [[pressure]] | ||
* T is the [[temperature]] | * <math>T</math> is the [[temperature]] | ||
The classical [[partition function]], for a one-component atomic system in 3-dimensional space, is given by | The classical [[partition function]], for a one-component atomic system in 3-dimensional space, is given by | ||
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== | == Related reading == | ||
*[http://molsim.chem.uva.nl/frenkel_smit Daan Frenkel and Berend Smit "Understanding Molecular Simulation: From Algorithms to Applications", Second Edition (2002)] ISBN 0-12-267351-4 | |||
[[category: statistical mechanics]] | [[category: statistical mechanics]] |
Latest revision as of 16:41, 3 September 2009
The isothermal-isobaric ensemble has the following variables:
- is the number of particles
- is the pressure
- is the temperature
The classical partition function, for a one-component atomic system in 3-dimensional space, is given by
where
- is the Volume:
- , where is the Boltzmann constant
- represent the reduced position coordinates of the particles; i.e.
- is the potential energy, which is a function of the coordinates (or of the volume and the reduced coordinates)