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Influence of the
compression pressure ratio on the energetic and exergetic efficiency
of a solar driven regenerative closed Brayton cycle with helium
as working fluid
S. Sanchez-Orgaz, J. Rodríguez
Martín, A. Jiménez Álvaro, I. López
Paniagua, C. González Fernández and R. Nieto Carlier
2018/04/20
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Abstract
One of the causes of the lack of competitiveness
of solar thermal energy is its low energy and exergetic performance Therefore,
it is necessary to investigate the possibility of using more efficient
cycles. Closed Brayton cycles are an attractive alternative because of
their good performance achieved in other applications on the same range
of temperatures.
In this work the energy and exergy efficiency of a closed Brayton regenerative
cycle have been calculated. The working fluid of the power block is helium.
Also, the influence of the compressor pressure ratio on the energetic
and exergetic efficiency has been analyzed. For this, a model of the plant
in Engineering Equation Solver (EES) has been made. The maximum energy
efficiency is 22.44% while the maximum exergetic efficiency is 24.09%.
Both are obtained for a compressor pressure ratio of 1.634.
| Published in: Renewable Energy
& Power Quality Journal (RE&PQJ, Nº. 16) |
| Pages: 533-537 |
Date of Publication: 2018/04/20 |
| ISSN: 2172-038X |
Date of Current Version:2018/03/23 |
| REF: 378-18 |
Issue Date: April 2018 |
| DOI:10.24084/repqj16.378 |
Publisher: EA4EPQ |
Authors and affiliations
S. Sanchez-Orgaz1, J. Rodríguez Martín1,
A. Jiménez Álvaro1, I. López Paniagua1, C. González
Fernández1 and R. Nieto Carlier1
1. ETSI Industriales-Universidad Politécnica de Madrid, Spain
Key words
Helium, Closed Brayton, solar thermal, energetic, exergetic
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