Open Access

Cargo Ships’ Heat Demand - Operational Experiment


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1. A. Balcerski, Marine power plants. Basics of thermodynamics, engines and main drives, auxiliary devices and systems (in Polish), 2007.Search in Google Scholar

2. A. Balcerski, Probabilistic models in the theory of marine diesel power plants design and operation (in Polish), 2007.Search in Google Scholar

3. D. Bocheński, “Method for determining the heat demand on self-propelled dredgers” (in Polish), XXXI Sympozjum Siłowni Okrętowych, 2010.Search in Google Scholar

4. D. Bocheński, The preliminary designing of power plants on dredgers with the use of probabilistic models (in Polish), 2013.Search in Google Scholar

5. D. Bocheński and D. Kreft, “Possibilities of using probabilistic methods and models in the design of ship heating steam installations (in Polish),” Journal of Polish CIMEEAC, 2019.Search in Google Scholar

6. D. Kreft, “Analysis of methods used in the design of marine heating installations (in Polish),” Journal of Polish CIMEEAC, 2018.Search in Google Scholar

7. D. Kreft, “Comparative analysis of design layouts for marine heating systems (in Polish),” Journal of Polish CIMEEAC, 2018.Search in Google Scholar

8. R. Michalski, Marine power plants. Preliminary calculations and general rules for the selection of mechanisms and auxiliary devices (in Polish), 1997.Search in Google Scholar

9. P. Urbański, Ships energy management (in Polish), 1978.Search in Google Scholar

10. D. Watson, Practical ship design, 1998.Search in Google Scholar

11. H. K. Woud, and D. Stapersma, Design of propulsion and electric power generation systems, 2002.Search in Google Scholar

12. M. Grljusic, V. Medica, and N. Racic, “Thermodynamic analysis of a ship power plant operating with waste heat recovery through combined heat and power production,” Energies, 2014. doi:10.3390/en711736810.3390/en7117368Search in Google Scholar

13. T. Cao, H. Lee, Y. Hwang, R. Radermacher, and H. Chun, “Modeling of waste heat powered energy system for container ships,” Energy, 2016. doi: j.energy.2016.03.07210.1016/j.energy.2016.03.072Search in Google Scholar

14. K. Senary, A. Tawfik, E. Hegazy, A. Ali, “Development of a waste heat recovery system onboard LNG carrier to meet IMO regulations,” Alexandria Engineering Journal, 2016. doi: j.aej.2016.07.02710.1016/j.aej.2016.07.027Search in Google Scholar

15. M. Manzan et al., “Potential of thermal storage for hot potable water distribution in cruise ships,” in 73rd Conference of the Italian Thermal Machines Engineering Association ATI 2018.10.1016/j.egypro.2018.08.044Search in Google Scholar

16. F. Baldi, C. Gabrielii, F. Melino, M. Bianchi, “A preliminary study on the application of thermal storage to merchant ships,” in: 7th International Conference on Applied Energy – ICAE2015.10.1016/j.egypro.2015.07.364Search in Google Scholar

17. Y. Yan et al., “Multi-objective design optimization of combined cooling, heating and power system for cruise ship application,” Journal of Cleaner Production, 2019.Search in Google Scholar

eISSN:
2083-7429
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Engineering, Introductions and Overviews, other, Geosciences, Atmospheric Science and Climatology, Life Sciences