Control Volume Analysis, Entropy Balance and the Entropy Production in Flow Systems
Robert K. Niven, Bernd R. Noack

TL;DR
This paper discusses control volume analysis and entropy balance in flow systems, deriving equations for entropy production, examining technical aspects, and proposing a framework for predicting steady states using maximum entropy principles.
Contribution
It introduces a comprehensive framework combining control volume analysis with entropy production principles, including a new theoretical approach for steady state prediction using maximum entropy methods.
Findings
Revealed an entropy production closure problem in fluctuating systems.
Derived equations for entropy production in simple and complex flow systems.
Proposed a minimum flux potential principle for steady state prediction.
Abstract
This chapter concerns "control volume analysis", the standard engineering tool for the analysis of flow systems, and its application to entropy balance calculations. Firstly, the principles of control volume analysis are enunciated and applied to flows of conserved quantities (e.g. mass, momentum, energy) through a control volume, giving integral (Reynolds transport theorem) and differential forms of the conservation equations. Several definitions of steady state are discussed. The concept of "entropy" is then established using Jaynes' maximum entropy method, both in general and in equilibrium thermodynamics. The thermodynamic entropy then gives the "entropy production" concept. Equations for the entropy production are then derived for simple, integral and infinitesimal flow systems. Some technical aspects are examined, including discrete and continuum representations of volume…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Advanced Thermodynamics and Statistical Mechanics · Nanofluid Flow and Heat Transfer
