An Analysis of Fuel Cell Systems for Maritime Applications

Authors

  • Parmeshwar Kumawat Assistant Professor, Department of Electrical Engineering, Vivekananda Global University, Jaipur, India ( Author

Keywords:

Cell, Emissions, Fuel, Gas, Ship

Abstract

Limits on contamination emanations are  being fixed, constraining boat proprietors to decrease their  activities' ecological effect. Energy components might be  a suitable arrangement since they are eco-friendly and  discharge not many destructive mixtures. There are an  assortment of energy component frameworks and  calculated energizes to look over, and it's indistinct which  have the best possibilities for oceanic use. An outline of  energy component types and fuel handling hardware is  given, and the effectiveness, gravimetric and volumetric  thickness, dynamic conduct, ecological effect, wellbeing,  and financial aspects of oceanic power devices are talked  about. Low temperature power devices utilizing condensed  hydrogen are displayed to give a conservative answer for  ships with refueling time periods to several hours, however  may bring about complete framework sizes up to multiple  times bigger than high temperature energy components and  more energy thick energizes for ships with longer mission  prerequisites. The developing foundation for condensed  petroleum gas and the ebb and flow level of examination  for flammable gas fuelled energy component frameworks  might make it more straightforward to present vaporous  energizes and power devices to ships. Subjects for future  examination incorporate power module consolidated  cycles, hybridization with assistant energy stockpiling  frameworks, and overt repetitiveness improvements. 

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References

L. van Biert, M. Godjevac, K. Visser, and P. V. Aravind, “A review of fuel cell systems for maritime applications,” Journal of Power Sources. 2016, doi: 10.1016/j.jpowsour.2016.07.007.

“Hyon wins DNV GL approval for maritime use of PowerCell module-based fuel cell solutions,” Fuel Cells Bull., 2018, doi: 10.1016/s1464- 2859(18)30187-1.

C. Santoro, C. Arbizzani, B. Erable, and I. Ieropoulos, “Microbial fuel cells: From fundamentals to applications. A review,” J. Power Sources, 2017, doi: 10.1016/j.jpowsour.2017.03.109.

N. Sazali, W. N. W. Salleh, A. S. Jamaludin, and M. N. M. Razali, “New perspectives on fuel cell

technology: A brief review,” Membranes. 2020, doi: 10.3390/membranes10050099.

S. Tanaka, K. Nagumo, M. Yamamoto, H. Chiba, K. Yoshida, and R. Okano, “Fuel cell system for Honda CLARITY fuel cell,” eTransportation. 2020, doi: 10.1016/j.etran.2020.100046.

Y. Manoharan et al., “Hydrogen fuel cell vehicles; Current status and future prospect,” Applied Sciences (Switzerland). 2019, doi: 10.3390/app9112296.

J. J. Minnehan and J. W. Pratt, “Practical Application Limits of Fuel Cells and Batteries for Zero Emission Vessels,” Sandia Unltd. Release, 2017.

D. R. Dekel, “Review of cell performance in anion exchange membrane fuel cells,” J. Power Sources, 2018, doi: 10.1016/j.jpowsour.2017.07.117.

T. B. Ferriday and P. H. Middleton, “Alkaline fuel cell technology - A review,” International Journal of Hydrogen Energy. 2021, doi: 10.1016/j.ijhydene.2021.02.203.

O. Bethoux, “Hydrogen fuel cell road vehicles: State of the art and perspectives,” Energies, 2020, doi: 10.3390/en13215843.

Y. Wang, D. Y. C. Leung, J. Xuan, and H. Wang, “A review on unitized regenerative fuel cell technologies, part B: Unitized regenerative alkaline fuel cell, solid oxide fuel cell, and microfluidic fuel cell,” Renewable and Sustainable Energy Reviews. 2017, doi: 10.1016/j.rser.2016.11.054.

D. J. Palmer, G. D. Sachs, and W. J. Sembler, “A Solar-Hydrogen Fuel-Cell Home and research platform,” J. Fuel Cell Sci. Technol., 2009, doi: 10.1115/1.3006309.

S. Jafarzadeh and I. Schjølberg, “Emission reduction in shipping using hydrogen and fuel cells,” 2017, doi: 10.1115/OMAE2017-61401.

A. Boveri et al., “Innovative energy systems: Motivations, challenges and possible solutions in the cruise ship arena,” 2018, doi: 10.3233/978-1-61499- 870-9-71.

M. Sharma, R. B. Garg, and S. Dwivedi, “Comparative analysis of NPN algorithm & des Algorithm,” 2015, doi: 10.1109/ICRITO.2014.7014688.

C. The Phan et al., “Controlling environmental pollution: dynamic role of fiscal decentralization in CO2 emission in Asian economies,” Environ. Sci. Pollut. Res., 2021, doi: 10.1007/s11356-021-15256-9.

Using Different Physicochemical Parameters: A Study of Yamuna River,” Front. Environ. Sci., 2020, doi: 10.3389/fenvs.2020.581591.

G. L. Se, “Fuel Cells in Maritime Applications Challenges , Chances and Experiences,” 4th Int. Conf. Hydrog. Saf., 2011.

N. T. T. Van et al., “The role of human–machine interactive devices for post-COVID-19 innovative sustainable tourism in Ho Chi Minh City, Vietnam,” Sustain., 2020, doi: 10.3390/su12229523.

N. T. Duy, S. R. Mondal, N. T. T. Van, P. T. Dzung, D. X. H. Minh, and S. Das, “A study on the role of web 4.0 and 5.0 in the sustainable tourism ecosystem of Ho Chi Minh City, Vietnam,” Sustain., 2020, doi: 10.3390/su12177140.

V. Jain, M. Goyal, and M. S. Pahwa, “Modeling the relationship of consumer engagement and brand trust on social media purchase intention-a confirmatory factor experimental technique,” Int. J. Eng. Adv. Technol., 2019, doi: 10.35940/ijeat.F1163.0986S319.

Fuel Cells (SOFCS) power systems,” 2005. [23]marine transportation,” in Compendium of Hydrogen Energy, 2016.

fuel cell system operated by Kerosene to Vessel,” in Renewable Energy in the Service of Mankind, 2015.

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Published

2020-05-05

How to Cite

An Analysis of Fuel Cell Systems for Maritime Applications . (2020). International Journal of Innovative Research in Computer Science & Technology, 8(3), 293–297. Retrieved from https://acspublisher.com/journals/index.php/ijircst/article/view/13327