1-dimensional hard rods: Difference between revisions

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Consider a system of length <math> \left. L \right. </math> defined in the range <math> \left[ 0, L \right] </math>.
Consider a system of length <math> \left. L \right. </math> defined in the range <math> \left[ 0, L \right] </math>.


Our aim is to compute the partition function of a system of <math> \left. N \right. </math> hard rods of length <math> \left. \sigma \right. </math>.
Our aim is to compute the [[partition function]] of a system of <math> \left. N \right. </math> hard rods of length <math> \left. \sigma \right. </math>.


Model:
Model:
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\infty &; & {\rm elsewhere}. \end{array} \right. </math>
\infty &; & {\rm elsewhere}. \end{array} \right. </math>


* Pair Potential:
* [[Intermolecular pair potential]]:


: <math> V (x_i,x_j) = \left\{ \begin{array}{lll} 0 & ; & |x_i-x_j| > \sigma \\
: <math> \Phi (x_i,x_j) = \left\{ \begin{array}{lll} 0 & ; & |x_i-x_j| > \sigma \\
\infty &; & |x_i-x_j| < \sigma \end{array} \right. </math>
\infty &; & |x_i-x_j| < \sigma \end{array} \right. </math>


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Consider that the particles are ordered according to their label: <math> x_0 < x_1 < x_2 < \cdots < x_{N-1} </math>;  
Consider that the particles are ordered according to their label: <math> x_0 < x_1 < x_2 < \cdots < x_{N-1} </math>;  
 
taking into account the pair potential we can write the canonical parttion function (configuration integral) of a system of <math> N </math> particles as:
:taking into account the pair potential we can write the canonical parttion function (configuration integral) of a system of <math> N </math> particles as:


: <math>
: <math>
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== Equation of state ==
== Equation of state ==


From the basic thermodynamics, the pressure  [''linear tension in this case''] <math> \left. p \right. </math> can
From the basic thermodynamics, the [[pressure]] [''linear tension in this case''] <math> \left. p \right. </math> can
be written as:
be written as:



Revision as of 14:34, 21 June 2007

Hard Rods, 1-dimensional system with hard sphere interactions. The statistical mechanics of this system can be solved exactly (see Ref. 1).

Canonical Ensemble: Configuration Integral

Consider a system of length defined in the range .

Our aim is to compute the partition function of a system of hard rods of length .

Model:

  • External Potential; the whole length of the rod must be inside the range:

where is the position of the center of the k-th rod.

Consider that the particles are ordered according to their label: ; taking into account the pair potential we can write the canonical parttion function (configuration integral) of a system of particles as:

Variable change:  ; we get:

Therefore:

Thermodynamics

Helmholtz energy function

In the thermodynamic limit (i.e. with , remaining finite):

Equation of state

From the basic thermodynamics, the pressure [linear tension in this case] can be written as:

where ; is the fraction of volume (length) occupied by the rods.

References

  1. Lewi Tonks "The Complete Equation of State of One, Two and Three-Dimensional Gases of Hard Elastic Spheres", Physical Review 50 pp. 955- (1936)
  2. L. van Hove "Quelques Propriétés Générales De L'intégrale De Configuration D'un Système De Particules Avec Interaction", Physica, 15 pp. 951-961 (1949)
  3. L. van Hove, "Sur L'intégrale de Configuration Pour Les Systèmes De Particules À Une Dimension", Physica, 16 pp. 137-143 (1950)