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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2005-09-01
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Series: | Advances in Difference Equations |
Online Access: | http://dx.doi.org/10.1155/ADE.2005.275 |
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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 |
work_keys_str_mv |
AT vijaysekharchellaboina thermodynamicmodelingenergyequipartitionandnonconservationofentropyfordiscretetimedynamicalsystems AT sergeygnersesov thermodynamicmodelingenergyequipartitionandnonconservationofentropyfordiscretetimedynamicalsystems AT qinghui thermodynamicmodelingenergyequipartitionandnonconservationofentropyfordiscretetimedynamicalsystems AT wassimmhaddad thermodynamicmodelingenergyequipartitionandnonconservationofentropyfordiscretetimedynamicalsystems |
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