Transport and nonequilibrium phase transitions in polygonal urn models

Author:

Cirillo Emilio N. M.1ORCID,Colangeli Matteo2ORCID,Di Francesco Antonio2ORCID,Kröger Martin3ORCID,Rondoni Lamberto45ORCID

Affiliation:

1. Dipartimento di Scienze di Base e Applicate per l’Ingegneria, Sapienza Università di Roma, via A. Scarpa 16, 00161 Roma, Italy

2. Dipartimento di Ingegneria e Scienze dell’Informazione e Matematica, Università degli Studi dell’Aquila, via Vetoio, 67100 L’Aquila, Italy

3. Polymer Physics, Department of Materials, ETH Zurich, 8093 Zurich, Switzerland

4. Dipartimento di Scienze Matematiche, Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129 Torino, Italy

5. INFN, Sezione di Torino, Via P. Giuria 1, 10125 Torino, Italy

Abstract

We study the deterministic dynamics of [Formula: see text] point particles moving at a constant speed in a 2D table made of two polygonal urns connected by an active rectangular channel, which applies a feedback control on the particles, inverting the horizontal component of their velocities when their number in the channel exceeds a fixed threshold. Such a bounce-back mechanism is non-dissipative: it preserves volumes in phase space. An additional passive channel closes the billiard table forming a circuit in which a stationary current may flow. Under specific constraints on the geometry and on the initial conditions, the large [Formula: see text] limit allows nonequilibrium phase transitions between homogeneous and inhomogeneous phases. The role of ergodicity in making a probabilistic theory applicable is discussed for both rational and irrational urns. The theoretical predictions are compared with the numerical simulation results. Connections with the dynamics of feedback-controlled biological systems are highlighted.

Funder

Ministero dell'Instruzione, dell'Universita e delle Ricerce

Italian National Group of Mathematical Physics

Publisher

AIP Publishing

Subject

Applied Mathematics,General Physics and Astronomy,Mathematical Physics,Statistical and Nonlinear Physics

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