Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders

Screw expanders are volumetric machines particularly suitable in energy conversion with steam−liquid mixtures and for the exploitation of low temperature heat sources. This study explored the main criteria to evaluate the thermodynamic advantages and exergetic assessment of an innovative s...

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Main Authors: Paolo Iodice, Giuseppe Langella, Amedeo Amoresano
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/3/720
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spelling doaj-cb4d4ab28e24439f90c90b5f32687eee2020-11-25T03:32:00ZengMDPI AGEnergies1996-10732020-02-0113372010.3390/en13030720en13030720Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw ExpandersPaolo Iodice0Giuseppe Langella1Amedeo Amoresano2Dipartimento di Ingegneria Industriale, Università degli Studi di Napoli Federico II, 80125 Napoli, ItalyDipartimento di Ingegneria Industriale, Università degli Studi di Napoli Federico II, 80125 Napoli, ItalyDipartimento di Ingegneria Industriale, Università degli Studi di Napoli Federico II, 80125 Napoli, ItalyScrew expanders are volumetric machines particularly suitable in energy conversion with steam−liquid mixtures and for the exploitation of low temperature heat sources. This study explored the main criteria to evaluate the thermodynamic advantages and exergetic assessment of an innovative solar electricity generation system: Screw expanders are utilized as power machines and parabolic trough collectors as a thermal source. Such a direct steam generation solar system, which is based on the Rankine cycle, offers benefits in comparison with usual power plants with dynamic expanders: The best exploitation of low temperature heat sources, satisfactory thermal efficiency with steam−liquid mixtures, lower evaporation pressures, and reduced size. Under real working conditions, screw expanders can work at part-load operating conditions; thus, the chief purpose of the present paper was to analyze the exergetic advantages of the planned solar power system when solar radiation and off-design working conditions fluctuate. Initially, the polytropic expansion phase with a specific numerical model is described to evaluate the energy losses that affect the thermodynamic performance of screw expanders when installed in the planned renewable energy power plant. Subsequently, to explore the exergy harnessing in the exhausted steam at off-design working conditions and then to appraise the maximum exergetic efficiency of the proposed screw expander-based solar thermal electricity plant, numerical optimization was performed in a broad range of evaporation and condensation temperatures.https://www.mdpi.com/1996-1073/13/3/720steam screw expanderpart-load behaviorexergetic analysispolytropic expansion phase
collection DOAJ
language English
format Article
sources DOAJ
author Paolo Iodice
Giuseppe Langella
Amedeo Amoresano
spellingShingle Paolo Iodice
Giuseppe Langella
Amedeo Amoresano
Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders
Energies
steam screw expander
part-load behavior
exergetic analysis
polytropic expansion phase
author_facet Paolo Iodice
Giuseppe Langella
Amedeo Amoresano
author_sort Paolo Iodice
title Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders
title_short Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders
title_full Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders
title_fullStr Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders
title_full_unstemmed Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders
title_sort exergetic analysis of a new direct steam generation solar plant using screw expanders
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-02-01
description Screw expanders are volumetric machines particularly suitable in energy conversion with steam−liquid mixtures and for the exploitation of low temperature heat sources. This study explored the main criteria to evaluate the thermodynamic advantages and exergetic assessment of an innovative solar electricity generation system: Screw expanders are utilized as power machines and parabolic trough collectors as a thermal source. Such a direct steam generation solar system, which is based on the Rankine cycle, offers benefits in comparison with usual power plants with dynamic expanders: The best exploitation of low temperature heat sources, satisfactory thermal efficiency with steam−liquid mixtures, lower evaporation pressures, and reduced size. Under real working conditions, screw expanders can work at part-load operating conditions; thus, the chief purpose of the present paper was to analyze the exergetic advantages of the planned solar power system when solar radiation and off-design working conditions fluctuate. Initially, the polytropic expansion phase with a specific numerical model is described to evaluate the energy losses that affect the thermodynamic performance of screw expanders when installed in the planned renewable energy power plant. Subsequently, to explore the exergy harnessing in the exhausted steam at off-design working conditions and then to appraise the maximum exergetic efficiency of the proposed screw expander-based solar thermal electricity plant, numerical optimization was performed in a broad range of evaporation and condensation temperatures.
topic steam screw expander
part-load behavior
exergetic analysis
polytropic expansion phase
url https://www.mdpi.com/1996-1073/13/3/720
work_keys_str_mv AT paoloiodice exergeticanalysisofanewdirectsteamgenerationsolarplantusingscrewexpanders
AT giuseppelangella exergeticanalysisofanewdirectsteamgenerationsolarplantusingscrewexpanders
AT amedeoamoresano exergeticanalysisofanewdirectsteamgenerationsolarplantusingscrewexpanders
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