Lennard-Jones model: Difference between revisions
Jump to navigation
Jump to search
Carl McBride (talk | contribs) (→Argon) |
Carl McBride (talk | contribs) (→Argon) |
||
| Line 19: | Line 19: | ||
The Lennard-Jones parameters for argon are <math>\epsilon/k_B \approx</math> 120 K and <math>\sigma \approx</math> 0.34 nm. | The Lennard-Jones parameters for argon are <math>\epsilon/k_B \approx</math> 120 K and <math>\sigma \approx</math> 0.34 nm. | ||
[[Image:Lennard-Jones.png|center]] | [[Image:Lennard-Jones.png|center]] | ||
This figure was produced using [http://www.gnuplot.info/ gnuplot] with the command: | |||
plot (-4*120*((0.34/x)**12-(0.34/x)**6)) | |||
==References== | ==References== | ||
Revision as of 13:15, 22 March 2007
The Lennard-Jones potential is given by
where:
- : potential energy of interaction between two particles at a distance r;
- : diameter (length);
- : well depth (energy)
Reduced units:
- Density, , where (number of particles divided by the volume .)
- Temperature; , where Failed to parse (SVG (MathML can be enabled via browser plugin): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle T } is the absolute temperature and Failed to parse (SVG (MathML can be enabled via browser plugin): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle k_B } is the Boltzmann constant
Argon
The Lennard-Jones parameters for argon are Failed to parse (SVG (MathML can be enabled via browser plugin): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle \epsilon/k_B \approx} 120 K and Failed to parse (SVG (MathML can be enabled via browser plugin): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle \sigma \approx} 0.34 nm.

This figure was produced using gnuplot with the command:
plot (-4*120*((0.34/x)**12-(0.34/x)**6))