Recommandé par l'IIF
Refroidissement par absorption pour les centres de données fonctionnant grâce à la chaleur résiduelle des piles à combustible et à oxyde solide.
Absorption cooling for data centers powered by solid oxide fuel cell waste heat.
Numéro : 2720
Auteurs : LAVERNIA A. C., ASGHARI M., MASTROPASQUA L., BROUWER J.
Résumé
Thermal integration of a solid oxide fuel cell and a lithium bromide absorption chiller is proposed for air conditioning at data centers. Solid oxide fuel cells (SOFC) can be effectively implemented as primary energy producers at data centers due to their efficiency, environmental friendliness, and fuel flexibility. This study focuses on row-level SOFC power in the range of 150 – 200 kW. Operating at temperatures greater than 700°C, SOFC systems can produce high quality heat that can be utilized by absorption technology to provide supplemental cooling for the servers. This study investigates the operation of a triple-effect absorption chiller (AC) in two possible configurations of a data center. The first configuration corresponds to traditional air-cooled servers. This configuration offers row-level cooling using a large-scale triple-effect lithium-bromide absorption chiller to provide cooling using traditional air handling units. The second configuration corresponds to newer liquid cooled servers, which can use chilling at higher temperatures. The study theoretically investigated the SOFC system and the useful heat within the exhaust stream. Exercising a mathematical model, we find that SOFC exhaust temperatures range from 250-350°C. Combining the exhaust heat characterization with waste heat recovery (WHR) from a triple-effect AC, we verify that the useful heat in the exhaust ranges between 80 and 120 kW. A mathematical model of a triple-effect AC investigates the operation of the AC between the varying exhaust temperatures and chilling temperatures. We concluded that at higher chilling temperatures, the integrated SOFC/AC system can fully offset the chilling and power demand of the server row in the data center.
Documents disponibles
Format PDF
Pages : 10
Disponible
Prix public
20 €
Prix membre*
15 €
* meilleur tarif applicable selon le type d'adhésion (voir le détail des avantages des adhésions individuelles et collectives)
Détails
- Titre original : Absorption cooling for data centers powered by solid oxide fuel cell waste heat.
- Identifiant de la fiche : 30028586
- Langues : Anglais
- Source : 2021 Purdue Conferences. 18th International Refrigeration and Air-Conditioning Conference at Purdue.
- Date d'édition : 05/2021
- Document disponible en consultation à la bibliothèque du siège de l'IIF uniquement.
Liens
Voir d'autres communications du même compte rendu (184)
Voir le compte rendu de la conférence
-
Development of NH3/H2O ab...
- Auteurs : DEMASLES H., MULLER A., PHAN H. T.
- Date : 21/08/2023
- Langues : Anglais
- Source : Proceedings of the 26th IIR International Congress of Refrigeration: Paris , France, August 21-25, 2023.
- Formats : PDF
Voir la fiche
-
Economics of absorption chillers powered by low...
- Auteurs : FINEBLUM S. S.
- Date : 24/06/2001
- Langues : Anglais
- Source : ASHRAE Transactions. 2001 annual Meeting, Cincinnati, Ohio. Volume 107, part 2 + CD-ROM.
Voir la fiche
-
Waste heat driven ammonia-water absorption chil...
- Auteurs : KINI G., TAMBASCO M., CHANDRASEKARAN S., et al.
- Date : 24/08/2019
- Langues : Anglais
- Source : Proceedings of the 25th IIR International Congress of Refrigeration: Montréal , Canada, August 24-30, 2019.
- Formats : PDF
Voir la fiche
-
Adsorption dynamics of MOF coatings for waste h...
- Auteurs : LAURENZ E., VELTE A., KUMMER H., et al.
- Date : 24/08/2019
- Langues : Anglais
- Source : Proceedings of the 25th IIR International Congress of Refrigeration: Montréal , Canada, August 24-30, 2019.
- Formats : PDF
Voir la fiche
-
Experimental investigation of solution transpor...
- Auteurs : WATANABE F., ENOKI K., TANAKA S., et al.
- Date : 02/03/2014
- Langues : Anglais
- Source : International sorption heat pump conference (ISHPC2014), College Park, United States, March 31-April 2, 2014.
- Formats : PDF
Voir la fiche