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Thermal Energy Storage Strategy Booster Heat Pump Low Temp

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Thermal Energy Storage Strategy Booster Heat Pump Low Temp ( thermal-energy-storage-strategy-booster-heat-pump-low-temp )

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Energies 2020, 13, 6576 23 of 24 5. Cecchinato, L.; Corradi, M.; Fornasieri, E.; Zamboni, L. Carbon dioxide as refrigerant for tap water heat pumps: A comparison with the traditional solution. Int. J. Refrig. 2005, 28, 1250–1258. [CrossRef] 6. Pitarch, M.; Navarro-Peris, E.; Gonzálvez-Maciá, J.; Corberán, J.M. Experimental study of a subcritical heat pump booster for sanitary hot water production using a subcooler in order to enhance the efficiency of the system with a natural refrigerant (R290). Int. J. Refrig. 2017, 73, 226–234. [CrossRef] 7. Pitarch, M.; Hervas-Blasco, E.; Navarro-Peris, E.; Gonzálvez-Maciá, J.; Corberán, J.M. Evaluation of optimal subcooling in subcritical heat pump systems. Int. J. Refrig. 2017, 78, 18–31. [CrossRef] 8. Hervas-Blasco, E.; Pitarch, M.; Navarro-Peris, E.; Corberán, J.M. Study of different subcooling control strategies in order to enhance the performance of a heat pump. Int. J. Refrig. 2018, 88, 324–336. [CrossRef] 9. Nawaz, K.; Shen, B.; Elatar, A.; Baxter, V.; Abdelaziz, O. R290 (propane) and R600a (isobutane) as natural refrigerants for residential heat pump water heaters. Appl. Therm. Eng. 2017, 127, 870–883. [CrossRef] 10. Meggers, F.; Leibundgut, H. The potential of wastewater heat and exergy: Decentralized high-temperature recovery with a heat pump. Energy Build. 2011, 43, 879–886. [CrossRef] 11. Liu, L.; Fu, L.; Jiang, Y. Application of an exhaust heat recovery system for domestic hot water. Energy 2010, 35, 1476–1481. [CrossRef] 12. Chen, W.; Liang, S.; Guo, Y.; Cheng, K.; Gui, X.; Tang, D. Investigation on the thermal performance and optimization of a heat pump water heater assisted by shower waste water. Energy Build. 2013, 64, 172–181. [CrossRef] 13. Baek, N.; Shin, U.; Yoon, J. A study on the design and analysis of a heat pump heating system using wastewater as a heat source. Sol. Energy 2005, 78, 427–440. [CrossRef] 14. Mekdache, A.; Zoughaib, A.; Clodic, D. Heat Pump Driven by a Gas Engine for Heating and Domestic Hot Water Generation Heat Pump Driven by a Gas Engine for Heating and Domestic Hot Water Generation. In Proceedings of the International Conference in Refrigeration and Air Conditioning, Purdue, IN, USA, 11–17 July 2016; paper 2277. 15. Bertrand, A.; Aggoune, R.; Maréchal, F. In-building waste water heat recovery: An urban-scale method for the characterisation of water streams and the assessment of energy savings and costs. Appl. Energy 2017, 192, 110–125. [CrossRef] 16. Nehm, G.; Palandre, L.; Clodic, D.F. High Efficiency Heat Pump for Domestic Hot Water Generation. 2008. Available online: http://docs.lib.purdue.edu/iracc%0Ahttp://docs.lib.purdue.edu/iracc/953 (accessed on 1 December 2020). 17. Thorsen, J.; Thorsen, J.E.; Markussen, W.B.; Elmegaard, B. Performance of ultra low temperature district heating systems with utility plant and booster heat pumps. Energy 2017, 137, 544–555. [CrossRef] 18. Østergaard, P.A.; Andersen, A.N. Economic feasibility of booster heat pumps in heat pump-based district heating systems. Energy 2018, 155, 921–929. [CrossRef] 19. Mugaguren, M.L.; Martínez, R.G.; Zabala, V.S.; Østergaard, K.K.; Caramaschi, M. Triple function substation and high-efficiency micro booster heat pump for Ultra Low Temperature District Heating. In IOP Conference Series: Materials Science and Engineering; IOP Publishing: Bristol, UK, 2019; Volume 609, p. 052008. 20. Østergaard, P.A.; Andersen, A.N. Booster heat pumps and central heat pumps in district heating. Appl. Energy 2016, 184, 1374–1388. [CrossRef] 21. Floss, A.; Hofmann, S. Optimized integration of storage tanks in heat pump systems and adapted control strategies. Energy Build. 2015, 100, 10–15. [CrossRef] 22. Fischer, D.; Toral, T.R.; Lindberg, K.; Wille-Haussmann, B.; Madani, H. Investigation of Thermal Storage Operation Strategies with Heat Pumps in German Multi Family Houses. Energy Procedia 2014, 58, 137–144. [CrossRef] 23. Ghaddar, N. Stratified storage tank influence on performance of solar water heating system tested in Beirut. Renew. Energy 1994, 4, 911–925. [CrossRef] 24. Han, Y.; Wang, R.; Dai, Y. Thermal stratification within the water tank. Renew. Sustain. Energy Rev. 2009, 13, 1014–1026. [CrossRef] 25. Haller, M.Y.; Haberl, R.; Mojic, I.; Frank, E. Hydraulic Integration and Control of Heat Pump and Combi-storage: Same Components, Big Differences. Energy Procedia 2014, 48, 571–580. [CrossRef] 26. Liu, F.; Zhu, W.; Cai, Y.; Groll, E.A.; Ren, J.; Lei, Y. Experimental performance study on a dual-mode CO2 heat pump system with thermal storage. Appl. Therm. Eng. 2017, 115, 393–405. [CrossRef]

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