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Bibliography (43 entries)

  1. [29] Zou, L.; Zhang, X.; Zheng, Q.: Research progress on preparation of binary ice by vacuum flash evaporation: A review, International Journal of Refrigeration Bd. 121, Elsevier BV, 2021, S. 72-85. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  2. [19] Hawlader, M.N. A.; Wahed, M.A.: Analyses of ice slurry formation using direct contact heat transfer, Applied Energy, Bd. 86, Elsevier BV, 2009, Nr. 7-8, S. 1170-1178. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  3. [20] Zhang, X.; Zheng, K.; Wang, L.; Wang, W.; Jiang, M.; Zhao, S.: Analysis of ice slurry production by direct contact heat transfer of air and water solution, Journal of Zhejiang University SCIENCE A, Bd. 14, Zhejiang University Press, 2013, Nr. 8, S. 583-588. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  4. [21] Thongwik, S.; Vorayos, N.; Kiatsiriroat, T.; Nuntaphan, A.: Thermal analysis of slurry ice production system using direct contact heat transfer of carbon dioxide and water mixture, International Communications in Heat and Mass Transfer Bd. 35, Elsevier BV, 2008, Nr. 6, S. 756-761. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  5. [22] Stephan, K.; Stopka, K.-D.: Direct contact heat transfer during evaporation of immiscible liquid mixtures, International Journal of Refrigeration, Bd. 4, 1981, Nr. 2, S. 91-96. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  6. [23] Zhang, Y.; Su, L.; Dong, K.; Liu, T.: Experimental study of ice slurry production system using direct contact heat transfer of RC318 and water in a horizontal pipe, Energy Procedia, Bd. 158, Elsevier BV, 2019, S. 4495-4501. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  7. [24] Kiatsiriroat, T.; Thalang, K. N.; Dabbhasuta, S.: Ice formation around a jet stream of refrigeran, Energy Conversion and Management Bd. 41, Elsevier BV, 2000, Nr. 3, S. 213-221. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  8. [25] Kiatsiriroat, T.; Vithayasai, S.; Vorayos, N.; Nuntaphan, A.; Vorayos, N.: Heat transfer prediction for a direct contact ice thermal energy storage, Energy Conversion and Management, Bd. 44, Elsevier BV, 2003, Nr. 4, S. 497-508. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  9. [26] Thitipatanapong, R.; Limmeechokchai, B.: An experimental study of the direct contact heat exchanger for ice slurry production, Science & Technology Asia, Bd. 10, 2005, Nr. 1, S. 57-64. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  10. [27] Kauffeld, M.: Handbook on ice slurries: fundamentals and engineering, Paris, International Institute of Refrigeration, 2005, ISBN 2-913149-44-8. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  11. [28] Hayder, S.; Hassan Danook, S.; Sultan, H.: Direct-contact evaporation using different refrigerants: A review, Basrah Journal for Engineering Science, Bd. 20, 2020, Nr. 2, S. 34-47. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  12. [18] Wahed, M. A.; Hawlader, M.N.A.: An Analysis of a direct contact ice slurry generator, Heat Transfer: Vol. 1, ASMEDC, 2008. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  13. [30] Safarik, M.; Honke, M.; Steffan, C.: Flüssigeis zur Kälte- und Wärmeversorgung, Institut für Luft- und Kältetechnik Dresden gGmbH, 2017. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  14. [31] Steffan, C.; Heinrich, C.; Safarik, M.; Honke, M.: Highest efficiency ice storage for solar cooling systems – Experiences with a vacuum ice slurry cold thermal energy storage, Proceedings of SWC2017/SHC2017, International Solar Energy Society, 2017. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  15. [32] Ophir, A.; Rojanskiy, H.; Siluk, R.; Kanievski, A.; Kanievski, L.: Schutzrecht US 2009/0100857, Compact Heat pump using water as refrigerant, 2009. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  16. [33] Kim, B.-S.; Lee, Y.-P.; Yoon, S.-Y.; Lee, J.-H.: A study on ice slurry production by water spray, International Journal of Air-Conditioning and Refrigeration Bd. 6, 1998, S. 45-55. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  17. [34] Shin, H. T.; Lee, Y. P.; Jurng, J.: Spherical-shaped ice particle production by spraying water in a vacuum chamber, Applied Thermal Engineering, Bd. 20, Elsevier BV, 2000, Nr. 5, S. 439-454. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  18. [35] Schaaf, J.; Kauffeld, M.: Ice aluminum debonding with induction heating, Journal of Adhesion Science and Technology, Bd. 32, Informa UK Limited, 2018, Nr. 19, S. 2111-2127. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  19. [36] Meewisse, J. W.; Ferreira, C. A. I.: Validation of the use of heat transfer models in liquid/solid fluidized beds for ice slurry generation, International Journal of Heat and Mass Transfer, Bd. 46, Elsevier BV, 2003, Nr. 19, S. 3683-3695. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  20. [37] Meewisse, J.: Fluidized bed ice slurry generator for enhanced secondary cooling systems, S.l: s.n, 2004, ISBN 90-90-18122-9. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  21. [38] Urbaneck, T.; Matthes, M.; Richter; M. et al.: www.ketec.online, Internetseite Verbundvorhaben KETEC Forschungsplattform Kälte- und Energietechnik, zuletzt abgerufen am 19. 07. 2022. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  22. [39] Urbaneck, T.; Uhlig, U.; Göschel, T.: Große Kaltwasserspeicher – Stand der Technik in Deutschland, ki – Kälte-, Luft- und Klimatechnik, Hüthig, 55. Jg. 2019, H. 12 S. 48-53. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  23. [8] Li, Y.-T.; Yundt, A. P.; Ho, I.-C.; Huang, H.: Schutzrecht US5363660A, Orbital type freezing apparatus and method, 1994. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  24. [3] Bundesministerium für Wirtschaft und Klimaschutz: 65 Prozent erneuerbare Energien beim Einbau von neuen Heizungen ab 2024, 14.7.2022, https://www.bmwk.de/ Redaktion/DE/Downloads/Energie/65- prozent-erneuerbare-energien-beim- einbau-von-neuen-heizungen-ab-2024.pdf? __blob=publicationFile&v=6 Open Google Scholar doi.org/10.37544/1436-5103-2023-03-46
  25. [4] Arbeitsgemeinschaft für sparsamen und umweltfreundlichen Energieverbrauch (ASUE) e. V.: Marktübersicht Gaswärmepumpen 2020, Dezember 2020. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-46
  26. [5] Umweltbundesamt: CO2-Emissionsfaktoren für fossile Brennstoffe, Reihe Climate Change, 27/2016, Juni 2016. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-46
  27. [2] Kilpper, R.; Wintgens, C.: Dampfenergie optimal ausgenutzt. In: Die Kälte und Klimatechnik, Gentner Verlag, Stuttgart 7/2020. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-53
  28. [2] Han, Z.; Ma, Q.; Fang, Y.; Hua, L.; Jin, C.; Huang, J.: Progress and innovations of ice slurry generation based on scraped-surface method, Journal of Physics: Conference Series Bd. 1550, IOP Publishing, 2020, Nr. 1550 04202. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  29. [3] Hekmatsyar, D. F.; Rayhan, F. A.; Pamitran, A. S.: Optimization of ice slurry generator with scraper blade coated by teflon for fishery industry, AIP Conference Proceedings, 2019. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  30. [4] Martínez, D. S.; Solano, J. P.; Illán, F.; Viedma, A.: Analysis of heat transfer phenomena during ice slurry production in scraped surface plate heat exchangers, International Journal of Refrigeration, Bd. 48, Elsevier BV, 2014, S. 221-232. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  31. [5] Pascual, M. R.; Derksen, J. J.; Rosmalen, G. M. V.; Witkamp, G. J.: Flow and particle motion in scraped heat exchanger crystallizers, Chemical Engineering Science, Bd. 64, Elsevier BV, 2009, Nr. 24, S. 5153-5161. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  32. [6] Zhang, P.; Ma, Z. W.: An overview of fundamental studies and applications of phase change material slurries to secondary loop refrigeration and air conditioning systems, Renewable and Sustainable Energy Reviews, Bd. 16, Elsevier BV, 2012, Nr. 7, S. 5021-5058. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  33. [7] Zou, L.; Zhang, X.; Zheng, Q.: Research progress on preparation of binary ice by vacuum flash evaporation: A review, International Journal of Refrigeration, Bd. 121, Elsevier BV, 2021, S. 72-85. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  34. [2] Bundesministerium für Wirtschaft und Klimaschutz: Überblickspapier Osterpaket, 6.4.2022, https://www.bmwk.de/Redaktion/ DE/Downloads/Energie/0406_ueberblicks papier_osterpaket.pdf?__blob=publication- File&v=12 Open Google Scholar doi.org/10.37544/1436-5103-2023-03-46
  35. [9] Gladis, S. P.; Marciniak, M.; O’Hanlon, J. B.; Yundt, B.: Ice crystal slurry tes system using the orbital rod evaporator. In: EPRI International Conference on sustainable thermal energy storage (TES). Conference Proceedings, 1996. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  36. [10] Oechsle, U.; Spindler, K.: Investigation of micro- and nanostructured coatings for heat exchanger surfaces in an ice store, Journal of Physics: Conference Series Bd. 745, IOP Publishing, 2016, Nr. 032135, S. 1-8. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  37. [11] Faucheux, M.; Muller, G.; Havet, M.; LeBail, A.: Influence of surface roughness on the supercooling degree: Case of selected water/ethanol solutions frozen on aluminium surfaces, International Journal of Refrigeration, Bd. 29, Elsevier BV, 2006, Nr. 7, S. 1218-1224. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  38. [12] Inaba, H.; Takeya, K.; Nozu, S.: Fundamental study on continuous ice making using flowing supercooled water, JSME International Journal Series B Bd. 37, Japan Society of Mechanical Engineers, 1994, Nr. 2, S. 385-393. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  39. [13] Inada, T.; Zhang, X.; Yabe, A.; Kozawa, Y.: Active control of phase change from supercooled water to ice by ultrasonic vibration 1. Control of freezing temperature, International Journal of Heat and Mass Transfer, Bd. 44, Elsevier BV, 2001, Nr. 23, S. 4523-4531. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  40. [14] Kauffeld, M.; Gund, S.: Ice slurry – History, current technologies and future developments, International Journal of Refrigeration, Bd. 99, Elsevier BV, 2019, S. 264-271. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  41. [15] Bédécarrats, J.-P.; David, T.; Castaing-Lasvignottes, J.: Ice slurry production using supercooling phenomenon. In: International Journal of Refrigeration, Bd. 33, Elsevier BV, 2010, Nr. 1, S. 196-204. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  42. [16] Wang, H.; Feng, R.; Duan, H.; Chen, A.: Investigation into the ice generator with double supercooled heat exchangers,Applied Thermal Engineering Bd. 98, Elsevier BV, 2016, S. 380-386. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56
  43. [17] Wijeysundera, N. E.; Hawlader, M.N. A.; Andy, C. W. B.; Hossain, M. K.: Ice-slurry production using direct contact heat transfer, International Journal of Refrigeration, Bd. 27, Elsevier BV, 2004, Nr. 5, S. 511-519. Open Google Scholar doi.org/10.37544/1436-5103-2023-03-56

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