logo

Comparison of Transcritical CO2 and Conventional Refrigerant Heat Pump

PDF Publication Title:

Comparison of Transcritical CO2 and Conventional Refrigerant Heat Pump ( comparison-transcritical-co2-and-conventional-refrigerant-he )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 017

Energies 2019, 12, 479 17 of 17 12. Rubitherm. RT60 Datasheet; Datasheet 16.02.2015; Rubitherm Technologies GmbH: Berlin, Germany, 2015. 13. Catalán-Gil, J.; Sánchez, D.; Llopis, R.; Nebot-Andrés, L.; Cabello, R. Energy Evaluation of Multiple Stage Commercial Refrigeration Architectures Adapted to F-Gas Regulation. Energies 2018, 11, 1915. doi:10.3390/en11071915. 14. Zhang, B.; Chen, L.; Liu, L.; Zhang, X.; Wang, M.; Ji, C.; Song, K.I. Parameter Sensitivity Study for Typical Expander-Based Transcritical CO2 Refrigeration Cycles. Energies 2018, 11, 1279. doi:10.3390/en11051279. 15. Daikin Europe, N.V. ECH2O: Domestic Hot Water Heat Pump; Publication No. ECPEN16-732; Daikin Europe N.V.: Oostende, Belgium, February 2016. 16. Daikin Europe, N.V. Installation and Operating Instructions: Hot Water Heat Pump (Indoor Unit) EKHHP300AA2V3/EKHHP500AA2V3; Publication No. 008.1423444_05; Daikin Europe N.V.: Oostende, Belgium, August 2016. 17. Zhao, Z.; Zhang, Y.; Mi, H.; Zhou, Y.; Zhang, Y. Experimental Research of a Water-Source Heat Pump Water Heater System. Energies 2018, 11, 1205. doi:10.3390/en11051205. 18. SANYO. CO2 ECO Heating System—Energy Efficient Air To Water Heat Pump Technology; Catalogue 2009; SANYO: Osaka, Japan, 2009. 19. Arpagaus, C.; Bless, F.; Schiffmann, J.; Bertsch, S.S. Multi-temperature heat pumps: A literature review. Int. J. Refrig. 2016, 69, 437–465. doi:10.1016/j.ijrefrig.2016.05.014. 20. Austin, B.T.; Sumathy, K. Transcritical carbon dioxide heat pump systems: A review. Renew. Sustain. Energy Rev. 2011, 15, 4013–4029. doi:10.1016/j.rser.2011.07.021. 21. Hu, H.; Eikevik, T.M.; Neksa, P.; Hafner, A.; Ding, G.; Huang, Q.; Ye, J. Performance analysis of an R744 ground source heat pump system with air-cooled and water-cooled gas coolers. Int. J. Refrig. 2016, 63, 72–86. doi:10.1016/j.ijrefrig.2015.10.029. 22. Raman, S.K.; Kim, H.D. Computational Analysis of the Performance Characteristics of a Supercritical CO2 Centrifugal Compressor. Computation 2018, 6, 54. doi:10.3390/computation6040054. 23. Hubacher, B.; Groll, E.A. Measurement of Performance of Carbon Dioxide Compressors; Technical Report, ARTI-21CR/611-10070-01 Project Final Report; Air Conditioning and Refrigeration Technology Institute: Arlington, VA, USA, 2002. 24. Zhang, Z.; Tong, L.; Wang, X. Thermodynamic Analysis of Double-Stage Compression Transcritical CO2 Refrigeration Cycles with an Expander. Entropy 2015, 17, 2544–2555. doi:10.3390/e17042544. 25. Chen, Y., L.P.A.A.; Brachert, L. CO2 Heat Pumps for the Swedish Market-Test and Analysis Of the SANYO ECO-CUTE Heat Pump Modified for Swedish Conditions; Project EFFSYS2 Report; KTH University, Lab of Division of Applied Thermodynamics and Refrigeration: Stockholm, Sweden, 2008. 26. Grassi, W. Heat Pumps: Fundamentals and Applications, 1st ed.; Springer International Publishing: Cham, Switzerland, 2018; ISBN 978-3-319-62198-2. 27. Eslami-Nejad, P.; Badache, M.; Bastani, A.; Aidoun, Z. Detailed Theoretical Characterization of a Transcritical CO2 Direct Expansion Ground Source Heat Pump Water Heater. Energies 2018, 11, 387. doi:10.3390/en11020387. 28. Shi, L.; Shu, G.; Tian, H.; Huang, G.; Chang, L.; Chen, T.; Li, X. Ideal Point Design and Operation of CO2-Based Transcritical Rankine Cycle (CTRC) System Based on High Utilization of Engine’s Waste Heats. Energies 2017, 10, 1692. doi:10.3390/en10111692. ⃝c 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

PDF Image | Comparison of Transcritical CO2 and Conventional Refrigerant Heat Pump

comparison-transcritical-co2-and-conventional-refrigerant-he-017

PDF Search Title:

Comparison of Transcritical CO2 and Conventional Refrigerant Heat Pump

Original File Name Searched:

energies-12-00479.pdf

DIY PDF Search: Google It | Yahoo | Bing

CO2 Organic Rankine Cycle Experimenter Platform The supercritical CO2 phase change system is both a heat pump and organic rankine cycle which can be used for those purposes and as a supercritical extractor for advanced subcritical and supercritical extraction technology. Uses include producing nanoparticles, precious metal CO2 extraction, lithium battery recycling, and other applications... More Info

Heat Pumps CO2 ORC Heat Pump System Platform More Info

CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP