Mathematical and information-geometrical entropy for phenomenological Fourier and non-Fourier heat conduction

Shu-Nan Li (李书楠) and Bing-Yang Cao (曹炳阳)
Phys. Rev. E 96, 032131 – Published 19 September 2017

Abstract

The second law of thermodynamics governs the direction of heat transport, which provides the foundational definition of thermodynamic Clausius entropy. The definitions of entropy are further generalized for the phenomenological heat transport models in the frameworks of classical irreversible thermodynamics and extended irreversible thermodynamics (EIT). In this work, entropic functions from mathematics are combined with phenomenological heat conduction models and connected to several information-geometrical conceptions. The long-time behaviors of these mathematical entropies exhibit a wide diversity and physical pictures in phenomenological heat conductions, including the tendency to thermal equilibrium, and exponential decay of nonequilibrium and asymptotics, which build a bridge between the macroscopic and microscopic modelings. In contrast with the EIT entropies, the mathematical entropies expressed in terms of the internal energy function can avoid singularity paired with nonpositive local absolute temperature caused by non-Fourier heat conduction models.

  • Received 17 April 2017

DOI:https://doi.org/10.1103/PhysRevE.96.032131

©2017 American Physical Society

Physics Subject Headings (PhySH)

Statistical Physics & Thermodynamics

Authors & Affiliations

Shu-Nan Li (李书楠) and Bing-Yang Cao (曹炳阳)*

  • Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Department of Engineering Mechanics, Tsinghua University, Beijing 100084, China

  • *caoby@tsinghua.edu.cn

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Issue

Vol. 96, Iss. 3 — September 2017

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