Multidimensional thermodynamic potential for descriptions of ultrathin lubricant film melting between two atomically smooth surfaces

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2011

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Condensed Matter Physics
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Abstract

The thermodynamic model of ultrathin lubricant film melting, confined between two atomically-flat solid surfaces, is built using the Landau phase transition approach. Non-equilibrium entropy is introduced describing the part of thermal motion conditioned by non-equilibrium and non-homogeneous character of the thermal distribution. The equilibrium entropy changes during time due to transition of non-equilibrium entropy to the equilibrium subsystem. For the description of a melting condition the variable of the excess volume (disorder parameter) is introduced which arises due to chaotization of a solid structure in the course of melting. The thermodynamic and shear melting is described consistently. The stick-slip mode of melting, which is observed in experiments, is described. It is shown that with growth of shear velocity the frequency of stiction spikes in the irregular mode increases at first, then it decreases, and the sliding mode comes further characterized by the constant value of friction force. Comparison of the obtained results with experimental data is carried out. When you are citing the document, use the following link http://essuir.sumdu.edu.ua/handle/123456789/18068

Keywords

boundary friction, nanotribology, dynamic modeling, shear stress and strain, viscoelastic medium, stick-slip mode

Citation

L.S. Metlov, A.V. Khomenko, I.A. Lyashenko, Multidimensional thermodynamic potential for descriptions of ultrathin lubricant film melting between two atomically smooth surfaces // Condensed Matter Physics. - 2011. - Vol.14, No.1. - P.1-11.

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