Power, efficiency, entropy-generation rate and ecological optimization for a class of generalized irreversible universal heat-engine cycles
The optimal performance for a class of generalized irreversible universal steady-flow heat-engine cycle models, consisting of two heating branches, two cooling branches and two adiabatic branches, and with losses due to heat-resistance, heat leaks and internal irreversibility was analyzed using finite-time thermodynamics. The analytical formulae for power, efficiency, entropy-generation rate and an ecological criterion of the irreversible heat-engine cycle are derived. Moreover, analysis and optimization of the model were carried out in order to investigate the effect of the cycle process on the performance of the cycles. The results obtained include the performance characteristics of Diesel, Otto, Brayton, Atkinson, Dual and Miller cycles with the losses of heat-resistance, heat leak and internal irreversibility.
Year of publication: |
2007
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Authors: | Chen, Lingen ; Zhang, Wanli ; Sun, Fengrui |
Published in: |
Applied Energy. - Elsevier, ISSN 0306-2619. - Vol. 84.2007, 5, p. 512-525
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Publisher: |
Elsevier |
Keywords: | Finite-time thermodynamics Generalized thermodynamic-optimization Heat resistance Heat leak Internal irreversibility Power Efficiency Entropy-generation rate Ecological function |
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