Document IIF
Modélisation et stratégie de régulation pour un cycle transcritique au dioxyde de carbone pour les systèmes de conteneurs frigorifiques multi-températures.
Modeling and control strategy of a transcritical carbon dioxide cycle for application in multi-temperature refrigerated container systems.
Numéro : pap. 1116
Auteurs : BARTA R. B., GROLL E. A., HUGENROTH J. J.
Résumé
Transportation refrigeration requires efficient, compact, and reliable technology, and these constraints must be met with especially rugged designs when used in a military application. Additionally, industry trends towards efficiency and environmental concerns have motivated the development of low global warming potential (GWP) refrigerants and efficient technologies to utilize them. This research focuses on the theoretical analysis and physical design of a transcritical carbon dioxide (CO2) cycle for application in a U.S. Army Multi-Temperature Refrigerated Container System (MTRCS). The MTRCS has two separate refrigeration compartments of variable size and operating temperature. The proposed transcritical CO2 cycle utilizes a novel compressor-expander unit called the Energy Recovery Compressor (ERC), which is an axial multi-piston compressor-expander that uses the Sanderson Rocker Arm Mechanism (S-RAM) to convert the shaft rotation into linear piston movements. Integrating the ERC into novel refrigeration system architecture results in a coefficient of performance (COP) of 1.29 at an ambient air temperature of 57.2 °C. In order to achieve this performance, the cycle utilizes three compression stages, intercooling between the 2nd and 3rd compression stages, flash tank economization, and expansion work recovery. The inclusion of these cycle modifications increases the complexity of the system control strategy significantly, and requires the investigation of how important cycle parameters need to be controlled over the range of given operating conditions. This paper describes the system architecture and the analysis conducted to predict the system performance and necessary controls for robust operation.
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Détails
- Titre original : Modeling and control strategy of a transcritical carbon dioxide cycle for application in multi-temperature refrigerated container systems.
- Identifiant de la fiche : 30023484
- Langues : Anglais
- Source : 13th IIR Gustav Lorentzen Conference on Natural Refrigerants (GL2018). Proceedings. Valencia, Spain, June 18-20th 2018.
- Date d'édition : 18/06/2018
- DOI : http://dx.doi.org/10.18462/iir.gl.2018.1116
Liens
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Indexation
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Thèmes :
CO2;
Conteneurs et emballages - Mots-clés : Application militaire; Régulation; R744; Modélisation; Cycle transcritique; Conteneur frigorifique; CO2
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Modeling of S-RAM energy recovery compressor in...
- Auteurs : BARTA R. B., GROLL E. A., HUGENROTH J. J.
- Date : 18/06/2018
- Langues : Anglais
- Source : 13th IIR Gustav Lorentzen Conference on Natural Refrigerants (GL2018). Proceedings. Valencia, Spain, June 18-20th 2018.
- Formats : PDF
Voir la fiche
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Dynamic modeling and control strategy of a tran...
- Auteurs : BARTA R., ZIVIANI D., HUGENROTH J., 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
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Modeling of S-RAM energy recover compressor int...
- Auteurs : BARTA R. B., HUGENROTH J. J., GROLL E. A.
- Date : 09/07/2018
- Langues : Anglais
- Source : 2018 Purdue Conferences. 17th International Refrigeration and Air-Conditioning Conference at Purdue.
- Formats : PDF
Voir la fiche
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Design and investigation of a transcritical R74...
- Auteurs : LAWRENCE N., ELBEL S., HRNJAK P.
- Date : 09/07/2018
- Langues : Anglais
- Source : 2018 Purdue Conferences. 17th International Refrigeration and Air-Conditioning Conference at Purdue.
- Formats : PDF
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Advanced R744 technology applied to a multi-tem...
- Auteurs : LAWRENCE N., ELBEL S., HRNJAK P.
- Date : 07/12/2020
- Langues : Anglais
- Source : 14th IIR-Gustav Lorentzen Conference on Natural Refrigerants (GL2020). Proceedings. Kyoto, Japon, December 7-9th 2020.
- Formats : PDF
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