English

Exact solution of a one-dimensional continuum percolation model

Statistical Mechanics 2009-10-28 v1

Abstract

I consider a one dimensional system of particles which interact through a hard core of diameter \si\si and can connect to each other if they are closer than a distance dd. The mean cluster size increases as a function of the density ρ\rho until it diverges at some critical density, the percolation threshold. This system can be mapped onto an off-lattice generalization of the Potts model which I have called the Potts fluid, and in this way, the mean cluster size, pair connectedness and percolation probability can be calculated exactly. The mean cluster size is S=2exp[ρ(d\si)/(1ρ\si)]1S = 2 \exp[ \rho (d -\si)/(1 - \rho \si)] - 1 and diverges only at the close packing density ρcp=1/\si\rho_{cp} = 1 / \si . This is confirmed by the behavior of the percolation probability. These results should help in judging the effectiveness of approximations or simulation methods before they are applied to higher dimensions.

Keywords

Cite

@article{arxiv.cond-mat/9610062,
  title  = {Exact solution of a one-dimensional continuum percolation model},
  author = {Alon Drory},
  journal= {arXiv preprint arXiv:cond-mat/9610062},
  year   = {2009}
}

Comments

21 pages, Latex