Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine Model

In the present paper, the thermoeconomic optimization of an endoreversible solardriven heat engine has been carried out by using finite-time/finite-size thermodynamic theory. In the considered heat engine model, the heat transfer from the hot reservoir to the working fluid is assumed to be the radia...

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Main Authors: Marco A. Barranco-Jiménez, Norma Sánchez-Salas, Marco A. Rosales
Format: Article
Language:English
Published: MDPI AG 2009-08-01
Series:Entropy
Subjects:
Online Access:http://www.mdpi.com/1099-4300/11/3/443/
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spelling doaj-b717547969cd48dc808769378d7d48d82020-11-24T23:34:09ZengMDPI AGEntropy1099-43002009-08-0111344345310.3390/e11030443Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine ModelMarco A. Barranco-JiménezNorma Sánchez-SalasMarco A. RosalesIn the present paper, the thermoeconomic optimization of an endoreversible solardriven heat engine has been carried out by using finite-time/finite-size thermodynamic theory. In the considered heat engine model, the heat transfer from the hot reservoir to the working fluid is assumed to be the radiation type and the heat transfer to the cold reservoir is assumed the conduction type. In this work, the optimum performance and two design parameters have been investigated under three objective functions: the power output per unit total cost, the efficient power per unit total cost and the ecological function per unit total cost. The effects of the technical and economical parameters on the thermoeconomic performance have been also discussed under the aforementioned three criteria of performance. http://www.mdpi.com/1099-4300/11/3/443/thermoeconomic performanceendoreversiblesolar-driven heat engineoptimization
collection DOAJ
language English
format Article
sources DOAJ
author Marco A. Barranco-Jiménez
Norma Sánchez-Salas
Marco A. Rosales
spellingShingle Marco A. Barranco-Jiménez
Norma Sánchez-Salas
Marco A. Rosales
Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine Model
Entropy
thermoeconomic performance
endoreversible
solar-driven heat engine
optimization
author_facet Marco A. Barranco-Jiménez
Norma Sánchez-Salas
Marco A. Rosales
author_sort Marco A. Barranco-Jiménez
title Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine Model
title_short Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine Model
title_full Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine Model
title_fullStr Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine Model
title_full_unstemmed Thermoeconomic Optimum Operation Conditions of a Solar-driven Heat Engine Model
title_sort thermoeconomic optimum operation conditions of a solar-driven heat engine model
publisher MDPI AG
series Entropy
issn 1099-4300
publishDate 2009-08-01
description In the present paper, the thermoeconomic optimization of an endoreversible solardriven heat engine has been carried out by using finite-time/finite-size thermodynamic theory. In the considered heat engine model, the heat transfer from the hot reservoir to the working fluid is assumed to be the radiation type and the heat transfer to the cold reservoir is assumed the conduction type. In this work, the optimum performance and two design parameters have been investigated under three objective functions: the power output per unit total cost, the efficient power per unit total cost and the ecological function per unit total cost. The effects of the technical and economical parameters on the thermoeconomic performance have been also discussed under the aforementioned three criteria of performance.
topic thermoeconomic performance
endoreversible
solar-driven heat engine
optimization
url http://www.mdpi.com/1099-4300/11/3/443/
work_keys_str_mv AT marcoabarrancojimenez thermoeconomicoptimumoperationconditionsofasolardrivenheatenginemodel
AT normasanchezsalas thermoeconomicoptimumoperationconditionsofasolardrivenheatenginemodel
AT marcoarosales thermoeconomicoptimumoperationconditionsofasolardrivenheatenginemodel
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