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January 22, 2026Modern mathematical physics0 citationsOpen Access

Entropy Production from Macroscopic Balances: Bridging Continuum Laws and Stochastic Dynamics

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MTMesfin Asfaw Taye

Key Points

  • The aim is to develop a framework that connects nonequilibrium thermodynamics with macroscopic conservation laws, bypassing traditional assumptions.
  • Developed a framework based on macroscopic conservation laws for nonequilibrium thermodynamics.
  • Applied the Fokker-Planck equation to extract microscopic currents.
  • Ensured non-negativity of entropy production through dissipative admissibility.
  • Quantified thermodynamic distances and established bounds linking various thermodynamic quantities.
  • Identified that entropy production and extraction identities are consistent across macroscopic and stochastic descriptions.
  • Demonstrated the emergence of entropy as a gauge-invariant quantity in nonequilibrium systems.
  • Provided a unified framework that connects transport properties with thermodynamic irreversibility.

Abstract

We develop a balance-first framework for nonequilibrium thermodynamics in which entropy production follows directly from macroscopic conservation laws, without assuming the Gibbs relation, local equilibrium, or a predefined temperature field. Entropy flux and production emerge naturally from the flux–force structure, with non-negativity ensured by dissipative admissibility. Substituting microscopic currents from the Fokker–Planck equation recovers the canonical entropy production laws for both overdamped and underdamped Brownian motions, which demonstrates that macroscopic and stochastic descriptions share identical production and extraction identities. The framework further quantifies thermodynamic distances and establishes rigorous bounds linking current, activity, and dissipation, providing a unifying route from continuum balance to stochastic irreversibility. Thus, entropy appears as an emergent, gauge-invariant quantity that connects transport, distance, and control in nonequilibrium systems.

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Cite This Study

Mesfin Asfaw Taye (2026) studied this question.

synapsesocial.com/papers/6971be6b642b1836717e31d5https://doi.org/10.3390/mmphys2010001
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