Long range correlations in stochastic transport with energy and momentum conservation
arXiv:1510.02264 · doi:10.1088/1742-5468/2016/03/033108
Abstract
We consider a simple one dimensional stochastic model of heat transport which locally conserves both energy and momentum and which is coupled to heat reservoirs with different temperatures at its two ends. The steady state is analyzed and the model is found to obey the Fourier law with finite heat conductivity. In the infinite length limit, the steady state is described locally by an equilibrium Gibbs state. However finite size corrections to this local equilibrium state are present. We analyze these finite size corrections by calculating the on-site fluctuations of the momentum and the two point correlation of the momentum and energy. These correlations are long ranged and have scaling forms which are computed explicitly. We also introduce a multi-lane variant of the model in which correlations vanish in the steady state. The deviation from local equilibrium in this model as expressed in terms of the on-site momentum fluctuations is calculated in the large length limit.
20 pages, 8 figures
References in corpus (7)
- Heat Transport in low-dimensional systems
- Non equilibrium steady states: fluctuations and large deviations of the density and of the current
- Macroscopic fluctuation theory
- A momentum conserving model with anomalous thermal conductivity in low dimension
- Stationary non-equilibrium properties for a heat conduction model
- Long-range correlations in a locally driven exclusion process
- Long-range correlations in a simple stochastic model of coupled transport
Cited by in corpus (6)
- Derivation of fluctuating hydrodynamics and crossover from diffusive to anomalous transport in a hard-particle gas
- Enhancing (quasi-)long-range order in a two-dimensional driven crystal
- Macroscopic Length Correlations in Non-Equilibrium Systems and Their Possible Realizatons
- Hyperuniformity and conservation laws in non-equilibrium systems
- Dynamical and structural properties of an absorbing phase transition: a case study from granular systems
- Nonanomalous heat transport in a one-dimensional composite chain