Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic Approach

An irreversible cycle model of a Braysson heat engine operating between two heat reservoirs is used to investigate the thermoeconomic performance of the cycle affected by the finite-rate heat transfer between the working fluid and the heat reservoirs, heat leak loss from the heat source to the ambie...

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Main Authors: Sudhir Kumar Tyagi, Jincan Chen, Yinghui Zhou
Format: Article
Language:English
Published: MDPI AG 2004-03-01
Series:Entropy
Subjects:
Online Access:http://www.mdpi.com/1099-4300/6/2/244/
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spelling doaj-f198b197f6cf45e9bb1042cc0270f0de2020-11-25T00:45:54ZengMDPI AGEntropy1099-43002004-03-016224425610.3390/e6020244Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic ApproachSudhir Kumar TyagiJincan ChenYinghui ZhouAn irreversible cycle model of a Braysson heat engine operating between two heat reservoirs is used to investigate the thermoeconomic performance of the cycle affected by the finite-rate heat transfer between the working fluid and the heat reservoirs, heat leak loss from the heat source to the ambient and the irreversibility within the cycle. The thermoeconomic objective function, defined as the total cost per unit power output, is minimized with respect to the cycle temperatures along with the isobaric temperature ratio for a given set of operating parameters. The objective function is found to be an increasing function of the internal irreversibility parameter, economic parameters and the isobaric temperature ratio. On the other hand, there exist the optimal values of the state point temperatures, power output and thermal efficiency at which the objective function attains its minimum for a typical set of operating parameters. Moreover, the objective function and the corresponding power output are also plotted against the state point temperature and thermal efficiency for a different set of operating parameters. The optimally operating regions of these important parameters in the cycle are also determined. The results obtained here may provide some useful criteria for the optimal design and performance improvements, from the point of view of economics as well as from the point of view of thermodynamics of an irreversible Braysson heat engine cycle and other similar cycles as well.http://www.mdpi.com/1099-4300/6/2/244/Braysson heat enginethermoeconomic objective functionpower outputmilti-irreversibilitiesthermal efficiencyoptimally operating regionoptimum criterion
collection DOAJ
language English
format Article
sources DOAJ
author Sudhir Kumar Tyagi
Jincan Chen
Yinghui Zhou
spellingShingle Sudhir Kumar Tyagi
Jincan Chen
Yinghui Zhou
Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic Approach
Entropy
Braysson heat engine
thermoeconomic objective function
power output
milti-irreversibilities
thermal efficiency
optimally operating region
optimum criterion
author_facet Sudhir Kumar Tyagi
Jincan Chen
Yinghui Zhou
author_sort Sudhir Kumar Tyagi
title Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic Approach
title_short Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic Approach
title_full Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic Approach
title_fullStr Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic Approach
title_full_unstemmed Optimum Criteria on the Performance of an Irreversible Braysson Heat Engine Based on the new Thermoeconomic Approach
title_sort optimum criteria on the performance of an irreversible braysson heat engine based on the new thermoeconomic approach
publisher MDPI AG
series Entropy
issn 1099-4300
publishDate 2004-03-01
description An irreversible cycle model of a Braysson heat engine operating between two heat reservoirs is used to investigate the thermoeconomic performance of the cycle affected by the finite-rate heat transfer between the working fluid and the heat reservoirs, heat leak loss from the heat source to the ambient and the irreversibility within the cycle. The thermoeconomic objective function, defined as the total cost per unit power output, is minimized with respect to the cycle temperatures along with the isobaric temperature ratio for a given set of operating parameters. The objective function is found to be an increasing function of the internal irreversibility parameter, economic parameters and the isobaric temperature ratio. On the other hand, there exist the optimal values of the state point temperatures, power output and thermal efficiency at which the objective function attains its minimum for a typical set of operating parameters. Moreover, the objective function and the corresponding power output are also plotted against the state point temperature and thermal efficiency for a different set of operating parameters. The optimally operating regions of these important parameters in the cycle are also determined. The results obtained here may provide some useful criteria for the optimal design and performance improvements, from the point of view of economics as well as from the point of view of thermodynamics of an irreversible Braysson heat engine cycle and other similar cycles as well.
topic Braysson heat engine
thermoeconomic objective function
power output
milti-irreversibilities
thermal efficiency
optimally operating region
optimum criterion
url http://www.mdpi.com/1099-4300/6/2/244/
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AT yinghuizhou optimumcriteriaontheperformanceofanirreversiblebrayssonheatenginebasedonthenewthermoeconomicapproach
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