Far-From-Equilibrium Physics: An Overview
arXiv:1009.4874
Abstract
Isolated systems tend to evolve towards equilibrium, a special state that has been the focus of many-body research for a century. Yet much of the richness of the world around us arises from conditions far from equilibrium. Phenomena such as turbulence, earthquakes, fracture, and life itself occur only far from equilibrium. Subjecting materials to conditions far from equilibrium leads to otherwise unattainable properties. For example, rapid cooling is a key process in manufacturing the strongest metallic alloys and toughest plastics. Processes that occur far from equilibrium also create some of the most intricate structures known, from snowflakes to the highly organized structures of life. While much is understood about systems at or near equilibrium, we are just beginning to uncover the basic principles governing systems far from equilibrium.
This is an overview of the field designed for non-experts that was included in the CMMP2010 decadal study report
References in corpus (7)
- Jamming at Zero Temperature and Zero Applied Stress: the Epitome of Disorder
- A fluidized granular medium as an instance of the Fluctuation Theorem
- Entropy and Temperature of a Static Granular Assembly
- Dendritic flux avalanches and nonlocal electrodynamics in thin superconducting films
- Breakup of Air Bubbles in Water: Memory and Breakdown of Cylindrical Symmetry
- Quantum Shock Waves - the case for non-linear effects in dynamics of electronic liquids
- Intermittency and Universality in Fully-Developed Inviscid and Weakly-Compressible Turbulent Flows