scholarly journals Thermodynamic Properties, Surface Properties and Volume of Mixing of Liquid Cd-Na Alloys - Complex Formation Model Incorporating Volume Interaction Terms

Author(s):  
A.K. Mishra
2005 ◽  
Vol 357 (3-4) ◽  
pp. 445-451 ◽  
Author(s):  
Ashwani Kumar ◽  
S.M. Rafique ◽  
N. Jha ◽  
A.K. Mishra

2017 ◽  
Vol 244 ◽  
pp. 433-439 ◽  
Author(s):  
Long Bai ◽  
Xiaochen Liu ◽  
Tiliu Jiao ◽  
Yong Wang ◽  
Yueqing Huo ◽  
...  

1991 ◽  
Vol 177 ◽  
pp. 39-57 ◽  
Author(s):  
Alessandro De Robertis ◽  
Concetta De Stefano ◽  
Antonio Gianguzza

This paper describes a new statistical approach to the theory of multicomponent systems. A ‘conformal solution’ is defined as one satisfying the following conditions: (i) The mutual potential energy of a molecule of species L r and one of species L s at a distance ρ is given by the expression u rs (ρ) = f rs u 00 ( g rs ρ ), where u 00 is the mutual potential energy of two molecules of some reference species L 0 at a distance ρ , and f rs and g rs are constants depending only on the chemical nature of L r and L s . (ii) If L 0 is taken to be one of the components of the solution, then f rs and g rs are close to unity for every pair of components. (iii) The constant g rs equals ½( g rr + g ss ). From these assumptions it is possible to calculate rigorously the thermodynamic properties of a conformal solution in terms of those of the components and their interaction constants. The non-ideal free energy of mixing is given by the equation ∆* G = E 0 ƩƩ rs x r x s d rs , where E 0 equals RT minus the latent heat of vaporization of L 0 , x r is the mole fraction of L r and d rs denotes 2 f rs — f rr — f ss . This equation resembles that defining a regular solution, with the important difference that E 0 is a measurable function of T and p , which makes it possible to relate the free energy, entropy, heat and volume of mixing to the thermodynamic properties of the reference species; and the predicted relationships between these quantities agree well with available data on non-polar solutions. The theory makes no appeal to a lattice model or any other model of the liquid state, and can therefore be applied both to liquids and to imperfect gases, and to two-phase two-component systems near the critical point.


1971 ◽  
Vol 25 ◽  
pp. 1401-1407 ◽  
Author(s):  
Ingmar Grenthe ◽  
Göran Gårdhammar ◽  
Inger Søtofte ◽  
P. Beronius ◽  
Jan E. Engebretsen ◽  
...  

1970 ◽  
Vol 9 (9) ◽  
pp. 25-28
Author(s):  
SK Chatterjee ◽  
LC Prasad ◽  
A Bhattarai

The complex formation model is used to explain the anomalous behaviour of entropy of mixing of NaCd and AlMg liquid alloys as a function of concentration.The interionic pair potential Φij(r) evaluated within the framework of pseudopotential theory which in turn is used to obtain the values of hard-sphere diameter of NaCd and AlMg liquid alloys. The hard-sphere diameter is used to evaluate the concentration dependent anamoly in entropy of mixing which occurs due to preferential ordering of unlike atoms as nearest neighbour on NaCd and AlMg liquid alloys, which could be simultaneously understood with the help of complex formation model. The computed value of Entropy of mixing (SM) from pseudopotential theory is positive at all concentration range except 0.8≤Ccd≤0.9 in NaCd liquid alloys. The disagreement between theory and experiment might be due to parameterisation of hard- sphere diameter of the complex (σ3) and Ψcomp. Key Words: Entropy of mixing; Pseudopotential theory; Hard-sphere diameter; Pair-Potential. DOI: http://dx.doi.org/10.3126/sw.v9i9.5513 SW 2011; 9(9): 25-28


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