Related Experiment Video
Updated: Jun 20, 2026

An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids
Published on: December 4, 2017
Fick's law and phase transitions in the Lorentz circuit
Matteo Colangeli1, Lamberto Rondoni2,3, Martin Kröger4,5
1University of L'Aquila, Department of Information Engineering, Computer Science and Mathematics, Via Vetoio, 67100 L'Aquila, Italy.
None:
Nonequilibrium steady states are investigated in a two-dimensional billiard table, called the Lorentz circuit, consisting of two circular urns connected by two rectangular strips: an active channel, where a feedback mechanism operates, and a passive finite-size Lorentz channel, which is a finite network of Sinai billiards, i.e., a specific environment populated with an array of circular scatterers of fixed radius. We show that, in the finite-horizon regime, a variation of any of the four geometrical parameters of the Lorentz channel can trigger a phase transition in the circuit. Our analytic derivations identify the critical parameters governing these transitions and predict whether they are continuous or discontinuous. We find that both transition orders are realized upon changing just one of the geometrical parameters. Our analysis further highlights the validity of Fick's law in the Lorentz channel, which in our model mirrors the validity of Ohm's law in electrical circuits. All analytic results are corroborated by an extensive set of numerical simulations of the particle dynamics.
More Related Videos
Related Concept Videos
Phase Diagram
Phase Diagram
Lenz's Law
If a bar magnet is moved toward a coil such that the magnetic flux through the coil...
Faraday's Law
Ampere's Law in Matter
The differential form of Ampere's law in vacuum states that the curl of the magnetic field equals the permeability times the current density. In a magnetized material, the law is modified to incorporate the free and bound current...
Symmetry in Maxwell's Equations

