Gravity Analog Model of Non-equilibrium Thermodynamics
Noriaki Aibara, Naoaki Fujimoto, So Katagiri, Mayumi Saitou, Akio, Sugamoto, Takashi Yamamoto, Tsukasa Yumibayashi

TL;DR
This paper introduces a gravity analog model for non-equilibrium thermodynamics, classifying entropy production and deriving an effective action, with applications to chemical oscillations and links to quantum mechanics.
Contribution
It reformulates non-equilibrium thermodynamics as a gravity analog model, incorporating symmetry, entropy classification, and extending to non-linear responses, providing a new theoretical framework.
Findings
Entropy production classified into three categories based on symmetry.
Effective action derived from non-equilibrium thermodynamics.
Application to chemical oscillatory reactions.
Abstract
Non-equilibrium thermodynamics of Onsager and Machlup and of Hashitsume is reformulated as a gravity analog model, in which thermodynamic variables, kinetic coefficients and generalized forces form, respectively, coordinates, metric tensor and vector fields in a space of thermodynamic variables. The relevant symmetry of the model is the general coordinate transformation. Then, the entropy production is classified into three categories, when a closed path is depicted as a thermodynamic cycle. One category is time reversal odd, and is attributed to the number of lines of magnetic flux passing through the closed path, having monopole as a source. There are two time reversal even categories, one of which is attributed to the space curvature around the path, having gravitational instanton as a source, which dominates for a rapid operation of the cycle. The last category is the usual one,…
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