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Author McTigue, Joshua D., author.

Title Supercritical CO2 heat pumps and power cycles for concentrating solar power: preprint / Joshua D. McTigue [and 3 others].

Publication Info. Golden, CO : National Renewable Energy Laboratory, December 2020.

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Description 1 online resource (10 pages) : color illustrations.
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Series Conference paper / NREL ; NREL/CP-5700-77955
Conference paper (National Renewable Energy Laboratory (U.S.)) ; NREL/CP-5700-77955.
Note In scope of the U.S. Government Publishing Office Cataloging and Indexing Program (C&I) and Federal Depository Library Program (FDLP).
"December 2020."
"Presented at the 26th SolarPACES Conference 2020, September 28-October 2, 2020"--Cover.
Bibliography Includes bibliographical references (pages 9-10).
Funding DE-AC36-08GO28308
Note Description based on online resource; title from PDF title page (NREL, viewed March 2, 2023).
Summary Pumped Thermal Energy Storage (PTES) is a promising technology for electricity storage applications. Grid electricity drives a heat pump which moves energy from a cold space to a hot space, thereby creating hot and cold thermal storage. The temperature difference between the storage is later used to drive a heat engine and return electricity to the grid. In this article, supercritical carbon dioxide (sCO2) is chosen as the working fluid for PTES, and results are compared to 'conventional' systems that use an ideal gas. Molten salts are used for the hot storage which means that a CSP plant with thermal storage and an sCO2 power cycle could potentially be hybridized with PTES by the addition of a heat pump. This article describes some of the benefits of this combined system which can provide renewable power generation and energy management services. Two methods by which an sCO2 heat pump can be combined with an sCO2 power cycle for CSP are described and techno-economic results are presented. Results indicate that these systems can achieve reasonable technical performance, but that costs are currently high.
Subject Heat storage devices -- Technological innovations.
Solar energy -- Hybrid systems.
Supercritical fluids -- Thermal properties -- United States.
Heat storage devices -- Econometric models.
Thermodynamic cycles -- Research -- United States.
Chaleur -- Stockage -- Appareils et matériel -- Innovations.
Énergie solaire -- Systèmes hybrides.
Fluides supercritiques -- Propriétés thermiques -- États-Unis.
Chaleur -- Stockage -- Appareils et matériel -- Modèles économétriques.
Cycles thermodynamiques -- Recherche -- États-Unis.
Solar energy -- Hybrid systems
United States https://id.oclc.org/worldcat/entity/E39PBJtxgQXMWqmjMjjwXRHgrq
Indexed Term carnot battery
concentrating solar power
pumped thermal energy storage
supercritical carbon dioxide
thermal energy storage
Added Author National Renewable Energy Laboratory (U.S.), issuing body.
United States. Department of Energy, sponsoring body.
Standard No. 1735623 OSTI ID
0000-0003-3736-2788
0000-0003-1507-3563
Gpo Item No. 0430-P-04 (online)
Sudoc No. E 9.17:NREL/CP-5700-77955

 
    
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