(Publisher of Peer Reviewed Open Access Journals)

International Journal of Advanced Technology and Engineering Exploration (IJATEE)

ISSN (Print):2394-5443    ISSN (Online):2394-7454
Volume-9 Issue-92 July-2022
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Paper Title : Harnessing solar energy during preferential tripping to supply non-essential loads in luxury vessels
Author Name : Midhu Paulson and Mariamma Chacko
Abstract :

This paper presents a ship electrical power system architecture that integrates solar photovoltaic (PV) energy for supplying the non-essential loads at the instant of preferential tripping. The shipping industry has to create and apply innovative measures for making the ship ‘greener’ to comply with the increasing standards and regulations made by an international maritime organisation (IMO). A popular green shipping strategy is using renewable energy resources (RER) and solar energy plays an important role in making ships more eco-friendly. Despite this, the expectations of comfort and luxury are high for the passengers when they board a cruise ship or a luxury vessel. Therefore, maintaining indoor air quality and cabin comfort is very imperative. Hence continuous electrical supply for different non-essential loads such as air conditioning, several other entertainment and comfort equipment is significant in these vessels. Even though numerous projects that utilized solar energy that meet different energy needs of the ship are available, utilizing solar energy at the instant of preferential tripping of non-essential loads has not been done yet. A standalone solar PV system that meets the electrical demands of non-essential loads has been designed. A typical ship has been chosen with 5130-meter square (m2) of useful area for installing solar panels. For supplying the non-essential loads of 1312 kW during the period of preferential tripping requires installation of 196 solar panels occupying 372.4 m2 which are only 7.2% of total useful area that the ship can accommodate. It is also found that the weight of the total solar panels installed for preserving the non-essential loads is about 5.8 tons which are only 0.21% of the deadweight of the ship. Also, the weight of the associated 1295 battery packs for the designed PV system comes nearly 132 tons, which is about 6.46% of the ship’s deadweight. The simulation results validate the proposed approach and are found to be feasible and satisfactory. The functioning of the proposed system can be integrated into the power management systems onboard. This paper also tackles some research possibilities and requirements in the area of onboard PV vessels.

Keywords : Green shipping, Preferential tripping, Non-essential loads, Renewable energy systems, Ship photovoltaic power system, Stand-alone photovoltaic system.
Cite this article : Paulson M, Chacko M. Harnessing solar energy during preferential tripping to supply non-essential loads in luxury vessels . International Journal of Advanced Technology and Engineering Exploration. 2022; 9(92):854-867. DOI:10.19101/IJATEE.2021.875537.
References :
[1]http://www.imo.org/en/OurWork/Environment/PollutionPrevention/AirPollution/Pages/Air-Pollution.aspx. Accessed 20 January 2020.
[2]https://www.chevronmarineproducts.com/content/dam/chevron-marine/Brochures/Chevron_EverythingYouNeed. Accessed 02 June 2022.
[3]Xing H, Stuart C, Spence S, Chen H. Fuel cell power systems for maritime applications: progress and perspectives. Sustainability. 2021; 13(3):1-34.
[Crossref] [Google Scholar]
[4]Atilhan S, Park S, El-halwagi MM, Atilhan M, Moore M, Nielsen RB. Green hydrogen as an alternative fuel for the shipping industry. Current Opinion in Chemical Engineering. 2021.
[Crossref] [Google Scholar]
[5]Tan EC, Hawkins TR, Lee U, Tao L, Meyer PA, Wang M, et al. Biofuel options for marine applications: technoeconomic and life-cycle analyses. Environmental Science & Technology. 2021; 55(11):7561-70.
[Crossref] [Google Scholar]
[6]Xing H, Stuart C, Spence S, Chen H. Alternative fuel options for low carbon maritime transportation: pathways to 2050. Journal of Cleaner Production. 2021.
[Crossref] [Google Scholar]
[7]Bach H, Mäkitie T, Hansen T, Steen M. Blending new and old in sustainability transitions: technological alignment between fossil fuels and biofuels in Norwegian coastal shipping. Energy Research & Social Science. 2021.
[Crossref] [Google Scholar]
[8]Cassar MP, Dalaklis D, Ballini F, Vakili S. Liquefied natural gas as ship fuel: a maltese regulatory gap analysis. Transactions on Maritime Science. 2021; 10(1):247-59.
[Google Scholar]
[9]Balcombe P, Staffell I, Kerdan IG, Speirs JF, Brandon NP, Hawkes AD. How can LNG-fuelled ships meet decarbonisation targets? an environmental and economic analysis. Energy. 2021.
[Crossref] [Google Scholar]
[10]Ayvali T, Tsang SE, Van VT. The position of ammonia in decarbonising maritime industry: an overview and perspectives: part ii: costs, safety and environmental performance and the future prospects for ammonia in shipping. Johnson Matthey Technology Review. 2021; 65(2).
[Google Scholar]
[11]Mallouppas G, Yfantis EA. Decarbonization in shipping industry: a review of research, technology development, and innovation proposals. Journal of Marine Science and Engineering. 2021; 9(4):1-40.
[Crossref] [Google Scholar]
[12]Zhang R, Liang H. Application of solar energy in ship power field. In Asia-pacific conference on image processing, electronics and computers 2022 (pp. 1588-90). IEEE.
[Crossref] [Google Scholar]
[13]http://www.theverge.com/2013/6/22/4454980/ms-turanor-planetsolar-solar-powered-boat-photo-essay. Accessed 05 June 2020.
[14]https://www.marineinsight.com/types-of-ships/auriga-leader-the-worlds-first-partiallypropelled-cargo-ship/. Accessed 05 June 2020.
[15]Atkinson GM. Analysis of marine solar power trials on blue star delos. Journal of Marine Engineering & Technology. 2016; 15(3):115-23.
[Crossref] [Google Scholar]
[16]https://www.mol.co.jp/en/pr/2012/12035.html. Accessed 20 October 2020.
[17]Tang R, Wu Z, Fang Y. Configuration of marine photovoltaic system and its MPPT using model predictive control. Solar Energy. 2017; 158:995-1005.
[Crossref] [Google Scholar]
[18]Faturachman D, Yandri E, Pujiastuti ET, Anne O, Setyobudi RH, Yani Y, et al. Techno-Economic analysis of photovoltaic utilization for lighting and cooling system of ferry Ro/Ro ship 500 GT. In E3S web of conferences 2021. EDP Sciences.
[Crossref] [Google Scholar]
[19]Stonier AA, Murugesan S, Samikannu R, Krishnamoorthy V, Subburaj SK, Chinnaraj G, et al. Fuzzy logic control for solar PV fed modular multilevel inverter towards marine water pumping applications. IEEE Access. 2021; 9:88524-34.
[Crossref] [Google Scholar]
[20]Gaber M, El-banna SH, Hamad MS, Eldabah M. Performance enhancement of ship hybrid power system using photovoltaic arrays. In PES/IAS power Africa 2020 (pp. 1-5). IEEE.
[Crossref] [Google Scholar]
[21]Eastlack E, Faiss E, Sauter R, Klingenberg S, Witt M, Szymanski S, et al. Zero emission super-yacht. In fourteenth international conference on ecological vehicles and renewable energies 2019 (pp. 1-8). IEEE
[Crossref] [Google Scholar]
[22]Ghenai C, Al-ani I, Khalifeh F, Alamaari T, Hamid AK. Design of solar PV/fuel cell/diesel generator energy system for Dubai ferry. In advances in science and engineering technology international conferences 2019 (pp. 1-5). IEEE.
[Crossref] [Google Scholar]
[23]Khresna R. Installation of hybrid power system in ro-ro passenger vessel. In international conference on innovative research and development 2019 (pp. 1-3). IEEE.
[Crossref] [Google Scholar]
[24]Margaritou MD, Tzannatos E. A multi-criteria optimization approach for solar energy and wind power technologies in shipping. FME Transactions. 2018; 46(3):374-80.
[Google Scholar]
[25]Tang R, Li X, Lai J. A novel optimal energy-management strategy for a maritime hybrid energy system based on large-scale global optimization. Applied Energy. 2018; 228:254-64.
[Crossref] [Google Scholar]
[26]Tang R, Wu Z, Li X. Optimal power flow dispatching of maritime hybrid energy system using model predictive control. Energy Procedia. 2019; 158:6183-8.
[Crossref] [Google Scholar]
[27]Tang R, Wu Z, Li X. Optimal operation of photovoltaic/battery/diesel/cold-ironing hybrid energy system for maritime application. Energy. 2018; 162:697-714.
[Crossref] [Google Scholar]
[28]Ghenai C, Bettayeb M, Brdjanin B, Hamid AK. Hybrid solar PV/PEM fuel cell/diesel generator power system for cruise ship: a case study in Stockholm, Sweden. Case Studies in Thermal Engineering. 2019.
[Crossref] [Google Scholar]
[29]Zapałowicz Z, Zeńczak W. The possibilities to improve ships energy efficiency through the application of PV installation including cooled modules. Renewable and Sustainable Energy Reviews. 2021.
[Crossref] [Google Scholar]
[30]Schwager P, Gehrke K, Vehse M. Applicability of standard photovoltaic modules for an increased share of renewable energies on board cruise ships. In sixteenth international conference on ecological vehicles and renewable energies 2021 (pp. 1-5). IEEE.
[Crossref] [Google Scholar]
[31]Wei L, Wang Q, Wang Z, Zhou Z. Research on hydrogen-light ship power system. In Asia-pacific conference on image processing, electronics and computers 2021 (pp. 836-40). IEEE.
[Crossref] [Google Scholar]
[32]Igder MA, Rafiei M, Boudjadar J, Khooban MH. Reliability and safety improvement of emission-free ships: systemic reliability-centered maintenance. IEEE Transactions on Transportation Electrification. 2020; 7(1):256-66.
[Crossref] [Google Scholar]
[33]https://www.marinetraffic.com. Accessed 20 October 2017.
[34]Koumentakos AG. Developments in electric and green marine ships. Applied System Innovation. 2019; 2(4):1-21.
[Crossref] [Google Scholar]
[35]Roselyn JP, Ravi A, Devaraj D, Venkatesan R. Optimal SoC estimation considering hysteresis effect for effective battery management in shipboard batteries. IEEE Journal of Emerging and Selected Topics in Power Electronics. 2020; 9(5):5533-41.
[Crossref] [Google Scholar]
[36]https://www.leonics.com/support/article2_12j/articles2_12j_en.php. Accessed 15 June 2020.
[37]Photovoltaics DG, Storage E. IEEE guide for array and battery sizing in stand-alone photovoltaic (PV) systems.
[Crossref] [Google Scholar]
[38]https://www.ecomarinepower.com/en/aquarius-marine -solar-power/8-products-services-and-consulting/110-energy-storage-and-batteries. Accessed 26 September 2021.
[39]https://www.ship-technology.com/features/electric-ships-the-world-top-five-projects-by-battery-capacity/ Accessed 26 September 2021.
[40]https://spectrum.ieee.org/first-battery-powered-tanker-coming-to-tokyo. Accessed 30 September 2021.
[41]Verma J, Kumar D. Recent developments in energy storage systems for marine environment. Materials Advances. 2021.
[Crossref] [Google Scholar]
[42]Kobougias I, Tatakis E, Prousalidis J. PV systems installed in marine vessels: technologies and specifications. Advances in Power Electronics. 2013.
[Google Scholar]
[43]Wen S, Zhang C, Lan H, Xu Y, Tang Y, Huang Y. A hybrid ensemble model for interval prediction of solar power output in ship onboard power systems. IEEE Transactions on Sustainable Energy. 2019; 12(1):14-24.
[Crossref] [Google Scholar]
[44]https://www.fwave.co.jp/en. Accessed 16 June 2022.
[45]Sivagami P, Jamunarani D, Abirami P, Harikrishnan R, Pushpavalli M, Geetha V. Review on soiling implications and cleaning methodology for photovoltaic panels. In international conference on innovative computing, intelligent communication and smart electrical systems (ICSES) 2021 (pp. 1-10). IEEE.
[Crossref] [Google Scholar]
[46]Zakaria NG, Rahman S. Energy efficiency design index (EEDI) for inland vessels in Bangladesh. Procedia Engineering. 2017; 194:362-9.
[Crossref] [Google Scholar]
[47]Paulson M, Chacko M. Marine photovoltaics: a review of research and developments challenges and future trends. International Journal of Scientific and Technology Research. 2019; 8:1479-88.
[Google Scholar]