We present a molecular dynamics simulation for the static friction under the effect of load. We chose a system formed by slabs of molecules of N2 deposited on a (111) surface of Pb. In contrary to many calculations, we assume that the Pb atoms are not kept fixed in the lattice positions, but can vibrate in their own phonon’s field. This has the important consequence that the upper and lower block can exchange energy and momentum. During the molecular dynamics simulation, the two systems can reach a thermodynamical equilibrium. When in our moleculardynamics simulation the equilibrium is reached the N2 plane at the interface reconstructs. The unit cell is still hexagonal but it contains 16 molecules in disordered positions. These positions of the N2 molecules are strongly modified by the presence of load. For small load there is a small increase of the disorder that produces a small reduction in the static friction. For larger loads the formation of clusters begins, and for high loads the size of theclusters increases and there is a tendency to the formation of vacancies. These effects are producing a large increase in the force friction. We can then distinguish different regions that characterize the behaviour of the static friction as a function of the load.

We present a molecular dynamics simulation for the static friction under the effect of load. We chose a system formed by slabs of molecules of N 2 deposited on a (111) surface of Pb. In contrary to many calculations, we assume that the Pb atoms are not kept fixed in the lattice positions, but can vibrate in their own phonon's field. This has the important consequence that the upper and lower block can exchange energy and momentum. During the molecular dynamics simulation, the two systems can reach a thermodynamical equilibrium. When in our molecular dynamics simulation the equilibrium is reached the N 2 plane at the interface reconstructs. The unit cell is still hexagonal but it contains 16 molecules in disordered positions. These positions of the N 2 molecules are strongly modified by the presence of load. For small load there is a small increase of the disorder that produces a small reduction in the static friction. For larger loads the formation of clusters begins, and for high loads the size of the clusters increases and there is a tendency to the formation of vacancies. These effects are producing a large increase in the force friction. We can then distinguish different regions that characterize the behaviour of the static friction as a function of the load. © 2010 Springer Science+Business Media, LLC.

Theory of Friction with Applied Load / Bortolani, Virginio; Franchini, Anna; Santoro, Giorgio; Brigazzi, Marco. - In: TRIBOLOGY LETTERS. - ISSN 1023-8883. - STAMPA. - 39:3(2010), pp. 251-255. (Intervento presentato al convegno New Trends in Nanotribology - ICTP-FANAS Workshop tenutosi a Miramare, Trieste, Italy nel 19 - 24 October 2009) [10.1007/s11249-010-9631-3].

Theory of Friction with Applied Load

BORTOLANI, Virginio;FRANCHINI, Anna;SANTORO, Giorgio;BRIGAZZI, Marco
2010

Abstract

We present a molecular dynamics simulation for the static friction under the effect of load. We chose a system formed by slabs of molecules of N 2 deposited on a (111) surface of Pb. In contrary to many calculations, we assume that the Pb atoms are not kept fixed in the lattice positions, but can vibrate in their own phonon's field. This has the important consequence that the upper and lower block can exchange energy and momentum. During the molecular dynamics simulation, the two systems can reach a thermodynamical equilibrium. When in our molecular dynamics simulation the equilibrium is reached the N 2 plane at the interface reconstructs. The unit cell is still hexagonal but it contains 16 molecules in disordered positions. These positions of the N 2 molecules are strongly modified by the presence of load. For small load there is a small increase of the disorder that produces a small reduction in the static friction. For larger loads the formation of clusters begins, and for high loads the size of the clusters increases and there is a tendency to the formation of vacancies. These effects are producing a large increase in the force friction. We can then distinguish different regions that characterize the behaviour of the static friction as a function of the load. © 2010 Springer Science+Business Media, LLC.
2010
39
3
251
255
Theory of Friction with Applied Load / Bortolani, Virginio; Franchini, Anna; Santoro, Giorgio; Brigazzi, Marco. - In: TRIBOLOGY LETTERS. - ISSN 1023-8883. - STAMPA. - 39:3(2010), pp. 251-255. (Intervento presentato al convegno New Trends in Nanotribology - ICTP-FANAS Workshop tenutosi a Miramare, Trieste, Italy nel 19 - 24 October 2009) [10.1007/s11249-010-9631-3].
Bortolani, Virginio; Franchini, Anna; Santoro, Giorgio; Brigazzi, Marco
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/643750
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