Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems

We develop thermodynamic models for discrete-time large-scale dynamical systems. Specifically, using compartmental dynamical system theory, we develop energy flow models possessing energy conservation, energy equipartition, temperature equipartition, and entropy nonconservation principles for discre...

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Main Authors: Vijaysekhar Chellaboina, Sergey G. Nersesov, Qing Hui, Wassim M. Haddad
Format: Article
Language:English
Published: SpringerOpen 2005-09-01
Series:Advances in Difference Equations
Online Access:http://dx.doi.org/10.1155/ADE.2005.275
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spelling doaj-98d3252a6b3347808fb461bc6d7f30fc2020-11-24T21:35:57ZengSpringerOpenAdvances in Difference Equations1687-18391687-18472005-09-012005327531810.1155/ADE.2005.275Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systemsVijaysekhar ChellaboinaSergey G. NersesovQing HuiWassim M. HaddadWe develop thermodynamic models for discrete-time large-scale dynamical systems. Specifically, using compartmental dynamical system theory, we develop energy flow models possessing energy conservation, energy equipartition, temperature equipartition, and entropy nonconservation principles for discrete-time, large-scale dynamical systems. Furthermore, we introduce a new and dual notion to entropy; namely, ectropy, as a measure of the tendency of a dynamical system to do useful work and grow more organized, and show that conservation of energy in an isolated thermodynamic system necessarily leads to nonconservation of ectropy and entropy. In addition, using the system ectropy as a Lyapunov function candidate, we show that our discrete-time, large-scale thermodynamic energy flow model has convergent trajectories to Lyapunov stable equilibria determined by the system initial subsystem energies.http://dx.doi.org/10.1155/ADE.2005.275
collection DOAJ
language English
format Article
sources DOAJ
author Vijaysekhar Chellaboina
Sergey G. Nersesov
Qing Hui
Wassim M. Haddad
spellingShingle Vijaysekhar Chellaboina
Sergey G. Nersesov
Qing Hui
Wassim M. Haddad
Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems
Advances in Difference Equations
author_facet Vijaysekhar Chellaboina
Sergey G. Nersesov
Qing Hui
Wassim M. Haddad
author_sort Vijaysekhar Chellaboina
title Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems
title_short Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems
title_full Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems
title_fullStr Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems
title_full_unstemmed Thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems
title_sort thermodynamic modeling, energy equipartition, and nonconservation of entropy for discrete-time dynamical systems
publisher SpringerOpen
series Advances in Difference Equations
issn 1687-1839
1687-1847
publishDate 2005-09-01
description We develop thermodynamic models for discrete-time large-scale dynamical systems. Specifically, using compartmental dynamical system theory, we develop energy flow models possessing energy conservation, energy equipartition, temperature equipartition, and entropy nonconservation principles for discrete-time, large-scale dynamical systems. Furthermore, we introduce a new and dual notion to entropy; namely, ectropy, as a measure of the tendency of a dynamical system to do useful work and grow more organized, and show that conservation of energy in an isolated thermodynamic system necessarily leads to nonconservation of ectropy and entropy. In addition, using the system ectropy as a Lyapunov function candidate, we show that our discrete-time, large-scale thermodynamic energy flow model has convergent trajectories to Lyapunov stable equilibria determined by the system initial subsystem energies.
url http://dx.doi.org/10.1155/ADE.2005.275
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AT sergeygnersesov thermodynamicmodelingenergyequipartitionandnonconservationofentropyfordiscretetimedynamicalsystems
AT qinghui thermodynamicmodelingenergyequipartitionandnonconservationofentropyfordiscretetimedynamicalsystems
AT wassimmhaddad thermodynamicmodelingenergyequipartitionandnonconservationofentropyfordiscretetimedynamicalsystems
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