Hard sphere model: Difference between revisions

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Hard sphere solid:
Hard sphere solid:
# See Ref. 2
# See Ref. 2
===Fluid-solid transition===
The hard sphere fluid undergoes a fluid-solid first order transition at <math>\rho d^3 = 0.94</math>,
<math>\eta_A = \frac{\pi \rho d^3}{6} = 0.49218</math>.
*[http://dx.doi.org/10.1063/1.1670641    William G. Hoover and Francis H. Ree "Melting Transition and Communal Entropy for Hard Spheres", Journal of Chemical Physics '''49''' pp. 3609-3617  (1968)]
==First ever simulations  of hard spheres==
==First ever simulations  of hard spheres==
*[http://dx.doi.org/10.1063/1.1740207 Marshall N. Rosenbluth and Arianna W. Rosenbluth "Further Results on Monte Carlo Equations of State", Journal of Chemical Physics '''22''' pp. 881-884  (1954)]
*[http://dx.doi.org/10.1063/1.1740207 Marshall N. Rosenbluth and Arianna W. Rosenbluth "Further Results on Monte Carlo Equations of State", Journal of Chemical Physics '''22''' pp. 881-884  (1954)]

Revision as of 15:12, 31 May 2007

Interaction Potential

The hard sphere interaction potential is given by


where is the potential energy between two spheres at a distance , and is the diameter of the sphere.

Equations of state

Hard sphere fluid:

  1. See Carnahan-Starling (three dimensions)
  2. See Ref.1

Hard sphere solid:

  1. See Ref. 2

Fluid-solid transition

The hard sphere fluid undergoes a fluid-solid first order transition at , .

First ever simulations of hard spheres

Related systems

Other dimensions

Data

Virial coefficients of hard spheres and hard disks are to be found in the table.

Experimental results

For results obtained from the Colloidal Disorder - Order Transition (CDOT) experiments performed on-board the Space Shuttles Columbia and Discovery see Ref. 3.

References

  1. Robin J. Speedy "Pressure of the metastable hard-sphere fluid", Journal of Physics: Condensed Matter 9 pp. 8591-8599 (1997)
  2. Robin J. Speedy "Pressure and entropy of hard-sphere crystals", Journal of Physics: Condensed Matter 10 pp. 4387-4391 (1998)
  3. Z. Chenga, P. M. Chaikina, W. B. Russelb, W. V. Meyerc, J. Zhub, R. B. Rogersc and R. H. Ottewilld, "Phase diagram of hard spheres", Materials & Design 22 pp. 529-534 (2001)