Second virial coefficient: Difference between revisions

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where <math>v_{\mathrm {excluded}}</math> is the [[excluded volume]].
where <math>v_{\mathrm {excluded}}</math> is the [[excluded volume]].
==Admur and Mason mixing rule==
==Admur and Mason mixing rule==
For the [[second virial coefficient]] of a mixture  
The [[second virial coefficient]] for a mixture of <math>n</math> components is given by (Eq. 11 in
<ref>[http://dx.doi.org/10.1063/1.1724353 I. Amdur and E. A. Mason "Properties of Gases at Very High Temperatures",  Physics of Fluids '''1''' pp. 370-383 (1958)]</ref>
<ref>[http://dx.doi.org/10.1063/1.1724353 I. Amdur and E. A. Mason "Properties of Gases at Very High Temperatures",  Physics of Fluids '''1''' pp. 370-383 (1958)]</ref>)
:<math>B_{ {\mathrm {mix}} } =  \sum_{i=1}^{n} \sum_{j=1}^{n} B_{ij} x_i x_j</math>
where <math>x_i</math> and <math>x_j</math> are the mole fractions of the <math>i</math>th and <math>j</math>th component gasses of the mixture.
==Unknown==
(<ref>I am not sure where this mixing rule was published</ref>)
:<math>B_{ij} = \frac{\left(B_{ii}^{1/3}+B_{jj}^{1/3}\right)^3}{8}</math>
:<math>B_{ij} = \frac{\left(B_{ii}^{1/3}+B_{jj}^{1/3}\right)^3}{8}</math>
==See also==
==See also==
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*[http://dx.doi.org/10.1063/1.481106 G. A. Vliegenthart and H. N. W. Lekkerkerker "Predicting the gas–liquid critical point from the second virial coefficient", Journal of Chemical Physics '''112''' pp. 5364-5369 (2000)]
*[http://dx.doi.org/10.1063/1.481106 G. A. Vliegenthart and H. N. W. Lekkerkerker "Predicting the gas–liquid critical point from the second virial coefficient", Journal of Chemical Physics '''112''' pp. 5364-5369 (2000)]
*[http://dx.doi.org/10.1080/00268976.2016.1263763 Michael Rouha and Ivo Nezbeda "Second virial coefficients: a route to combining rules?", Molecular Physics '''115''' pp. 1191-1199 (2017)]
*[http://dx.doi.org/10.1080/00268976.2016.1263763 Michael Rouha and Ivo Nezbeda "Second virial coefficients: a route to combining rules?", Molecular Physics '''115''' pp. 1191-1199 (2017)]
 
*[https://doi.org/10.1063/1.5004687 Elisabeth Herold, Robert Hellmann, and Joachim Wagner "Virial coefficients of anisotropic hard solids of revolution: The detailed influence of the particle geometry", Journal of Chemical Physics '''147''' 204102 (2017)]


[[Category: Virial coefficients]]
[[Category: Virial coefficients]]

Latest revision as of 15:36, 10 December 2019

The second virial coefficient is usually written as B or as B2. The second virial coefficient represents the initial departure from ideal-gas behaviour. The second virial coefficient, in three dimensions, is given by

B2(T)=−12∫(exp(−Φ12(r)kBT)−1)4πr2dr

where Φ12(r) is the intermolecular pair potential, T is the temperature and kB is the Boltzmann constant. Notice that the expression within the parenthesis of the integral is the Mayer f-function.

In practice the integral is often very hard to integrate analytically for anything other than, say, the hard sphere model, thus one numerically evaluates

B2(T)=−12∫(⟨exp(−Φ12(r)kBT)⟩−1)4πr2dr

calculating

⟨exp(−Φ12(r)kBT)⟩

for each r using the numerical integration scheme proposed by Harold Conroy [1][2].

Isihara-Hadwiger formula[edit]

The Isihara-Hadwiger formula was discovered simultaneously and independently by Isihara [3] [4] [5] and the Swiss mathematician Hadwiger in 1950 [6] [7] [8] The second virial coefficient for any hard convex body is given by the exact relation

B2=RS+V

or

B2V=1+3α

where

α=RS3V

where V is the volume, S, the surface area, and R the mean radius of curvature.

Hard spheres[edit]

For the hard sphere model one has [9]

B2(T)=−12∫0σ(⟨0⟩−1)4πr2dr

leading to

B2=2πσ33

Note that B2 for the hard sphere is independent of temperature. See also: Hard sphere: virial coefficients.

Van der Waals equation of state[edit]

For the Van der Waals equation of state one has:

B2(T)=b−aRT

For the derivation click here.

Excluded volume[edit]

The second virial coefficient can be computed from the expression

B2=12∬vexcluded(Ω,Ω′)f(Ω)f(Ω′)dΩdΩ′

where vexcluded is the excluded volume.

Admur and Mason mixing rule[edit]

The second virial coefficient for a mixture of n components is given by (Eq. 11 in [10])

Bmix=∑i=1n∑j=1nBijxixj

where xi and xj are the mole fractions of the ith and jth component gasses of the mixture.

Unknown[edit]

([11])

Bij=(Bii1/3+Bjj1/3)38

See also[edit]

References[edit]

Related reading