The Application of Hybrid Energy system (Hydrogen Fuel cell, wind, and solar) in shipping

Renewable Energy Focus - Tập 46 - Trang 197-206 - 2023
Saeid Hassankhani Dolatabadi1, Aykut I. Ölçer1, Seyedvahid Vakili1
1Maritime Energy Management, World Maritime University, Fiskehamnsgatan 1, 201 24 Malmö, Sweden

Tài liệu tham khảo

Al-Enazi, 2021, A review of cleaner alternative fuels for maritime transportation, Energy Rep., 7, 1962, 10.1016/j.egyr.2021.03.036 A. Anisie, F. Boshell, J. Sesma, Innovation Landscape for a Renewable-Powered Future: Solutions to Integrate Variable Renewables, in: International Renewable Energy Agency (IRENA), 2019. Aspirin wing sails project, 2020. Available online: http://aspiringwingsails.eu/project/. Ballard power system, 2021. Available online: https://www.ballard.com/fuel-cell-solutions/fuel-cell-power-products/marine-modules. Becker and Wallenius Marine project, 2023. Available online: https://www.becker-marine-systems.com/news-media/becker-develops-new-sail-technology.html. Bound4blue project, 2021. Available online: https://bound4blue.com/en/wingsail. Bukar, 2019, A review on stand-alone photovoltaic-wind energy system with fuel cell: System optimization and energy management strategy, J. Clean. Prod., 221, 73, 10.1016/j.jclepro.2019.02.228 Burkhardt, 2012, Life cycle greenhouse gas emissions of trough and tower concentrating solar power electricity generation: Systematic review and harmonization, J. Ind. Ecol., 16, S93, 10.1111/j.1530-9290.2012.00474.x Carlson, 2014 Chek project, 2020. Available online: https://www.projectchek.eu/technologies/wind-sails. Chiong, 2021, Challenges and opportunities of marine propulsion with alternative fuels, Renew. Sustain. Energy Rev., 149, 10.1016/j.rser.2021.111397 Christodoulou, 2022, Potential alternative fuel pathways for compliance with the ‘FuelEU Maritime Initiative’, Transp. Res. Part D: Transp. Environ., 112, 10.1016/j.trd.2022.103492 Deka, 2022, Methanol fuel production, utilization, and techno-economy: a review, Environ. Chem. Lett., 1 Djelailia, 2019, Energy hybridization photovoltaic/diesel generator/pump storage hydroelectric management based on online optimal fuel consumption per kWh, Sustain. Cities Soc., 44, 1, 10.1016/j.scs.2018.09.037 DOE, U, Multi-Year Research, Development and Demonstration Plan: Planned Program Activities for 2005-2015. US Department of Energy, Office of Energy Efficiency and Renewable Energy, Hydrogen, Fuel Cells and Infrastructure Technologies Program (HFCIT), 2010, 1-34. EMDAT, FDA/CRED International Disaster Database, Université catholique de Louvain - Brussels – Belgium, 2020. Ejder, 2022, Evaluation of ammonia fueled engine for a bulk carrier in marine decarbonization pathways, J. Clean. Prod., 379, 10.1016/j.jclepro.2022.134688 El Hammoumi, 2022, Solar PV energy: From material to use, and the most commonly used techniques to maximize the power output of PV systems: A focus on solar trackers and floating solar panels, Energy Rep., 8, 11992, 10.1016/j.egyr.2022.09.054 Fernández-Ríos, 2022, Environmental sustainability of alternative marine propulsion technologies powered by hydrogen - a life cycle assessment approach, Sci. Total Environ., 820, 10.1016/j.scitotenv.2022.153189 Gartland, 2022, Marine Biofuels Costs and Emissions Study for the European Supply Chain Till 2030, Front. Energy Res., 10, 10.3389/fenrg.2022.894555 GloMEEP, The report of Global maritime energy efficiency partnerships, GloMEEP project, 2021. Available online: https://glomeep.imo.org/technology/solar-panels/. Guha-Sapir, 2015 D.S. Hassankhani, I. Budinská, Z. Balogh, J. Moižiš, D.S. Hassankhani, Prediction of Photovoltaic Energy Production Using Machine Learning Methods in the RapidMiner Application, in: 2022 IEEE 26th International Conference on Intelligent Engineering Systems (INES), IEEE, 2022, pp. 000021-000026. Herdzik, 2021, Decarbonization of marine fuels—The future of shipping, Energies, 14, 4311, 10.3390/en14144311 Huang, 2021, Renewable energy storage and sustainable design of hybrid energy powered ships: A case study, J. Energy Storage, 43, 103266, 10.1016/j.est.2021.103266 Joung, 2020, The IMO initial strategy for reducing Greenhouse Gas (GHG) emissions, and its follow-up actions towards 2050, J. Int. Maritime Saf., Environ. Affairs, Shipping, 4, 1, 10.1080/25725084.2019.1707938 Kannan, 2006, Life cycle assessment study of solar PV systems: an example of a 2.7 kWp distributed solar PV system in Singapore, Sol. Energy, 80, 555e563, 10.1016/j.solener.2005.04.008 Karatuğ, 2020, Design of a solar photovoltaic system for a Ro-Ro ship and estimation of performance analysis: a case study, Sol. Energy, 207, 1259, 10.1016/j.solener.2020.07.037 Lafond, 2018, How well do experience curves predict technological progress? A method for making distributional forecasts, Technol. Forecast. Soc. Chang., 128, 104, 10.1016/j.techfore.2017.11.001 Lin, 2018, Hull form design optimization of twin-skeg fishing vessel for minimum resistance based on surrogate model, Adv. Eng. Softw., 123, 38, 10.1016/j.advengsoft.2018.05.010 Linde engineering, 2020. Available online: https://www.linde-gas.com/en/processes/energy_storage/hydrogen_energy_storage/index.html. V. Line, Viking Glory will be one of the most climate-smart passenger ships in the world, 2021. Ling-Chin, 2016, A comparative life cycle assessment of marine power systems, Energ. Conver. Manage., 127, 477, 10.1016/j.enconman.2016.09.012 Ma, 2021, Fuel cell-battery hybrid systems for mobility and off-grid applications: A review, Renew Sustain Energy Rev, 135, 10.1016/j.rser.2020.110119 Madsen, 2020, Feasibility of the Zero-V: A zero-emissions hydrogen fuel-cell coastal research vessel, Int. J. Hydrogen Energy, 45, 25328, 10.1016/j.ijhydene.2020.06.019 Masodzadeh, 2022, A review on barriers to and solutions for shipping decarbonization: What could be the best policy approach for shipping decarbonization?, Mar. Pollut. Bull., 184 MEPC.1/Circ.815, Guidance on treatment of innovative energy efficiency technologies for calculation and verification of the attained EEDI, 2013. IMO MEPC.1/Circ.815, adopted on 17 June 2013. Available online: https://wwwcdn.imo.org/localresources/en/OurWork/Environment/Documents/Circ-815.pdf. E. Mobron, Improving the performance of a sail-assisted cargo vessel+ Appendices.Student Thesis, Attached files: Appendices, Confidential, Report SDPO. 14.011. m, 2014. Nyanya, 2021, Wind and solar assisted ship propulsion optimisation and its application to a bulk carrier, Sustain. Energy Technol. Assess., 47 Oceanbird project, 2022. Available online: https://www.theoceanbird.com. Ölçer, 2018, Introduction to maritime energy management, 1 Pan, 2021, Research progress on ship power systems integrated with new energy sources: A review, Renew. Sustain. Energy Rev., 144, 10.1016/j.rser.2021.111048 Luigi Pascali, The Wind of Change: Maritime Technology, Trade and Economic Development, University of Warwick, CAGE, Pompeu Fabra University and Barcelona GSE, 2014. Perčić, 2022, Application of fuel cells with zero-carbon fuels in short-sea shipping, Appl. Energy, 309, 10.1016/j.apenergy.2021.118463 Podeur, 2018, Fuel economy assessment tool for auxiliary kite propulsion of merchant ship, La Houille Blanche, 104, 5, 10.1051/lhb/2018001 Romanos, 2018, Local Pressure of Supercritical Adsorbed Hydrogen in Nanopores, Materials, 11, 2235, 10.3390/ma11112235 R.E. Schnurr, T.R. Walker, Marine transportation and energy use.Reference Module in Earth Systems and Environmental Sciences; Elsevier: Amsterdam, The Netherlands, 2019, 1-9. Doi: 10.1016/B978-0-12-409548-9.09270-8. Schönborn, 2022, Combination of propulsive thrust and rotational power for ships from a cyclic pitch Darrieus rotor sail, Sustain. Energy Technol. Assess., 52 Sindagi, 2021, Experimental investigation on ship’s model in carrying out energy economics of BDR/ALS methodology, Ships Offshore Struct., 1 Bengt Sundén, Chapter 3 - Hydrogen, Editor(s): Bengt Sundén, Hydrogen, Batteries and Fuel Cells, Academic Press, 2019, Pages 37-55, ISBN 9780128169506, Doi: 10.1016/B978-0-12-816950-6.00003-8. Sürer, 2022, Advancements and current technologies on hydrogen fuel cell applications for marine vehicles, Int. J. Hydrogen Energy, 47, 19865, 10.1016/j.ijhydene.2021.12.251 Talluri, 2018, Techno economic and environmental assessment of Flettner rotors for marine propulsion, Ocean Eng., 10.1016/j.oceaneng.2018.02.020 Tang, 2018, Optimal operation of photovoltaic/battery/diesel/cold- ironing hybrid energy system for maritime application, Energy, 162, 697, 10.1016/j.energy.2018.08.048 Tide solar, 2019. Available online: https://www.enfsolar.com/pv/panel-datasheet/crystalline/49093?utm_source=ENF&utm_medium=panel_deals&utm_campaign=enquiry_company_directory&utm_content=76664. V. Thomas, R. López, Global increase in climate-related disasters. Asian Development Bank Economics Working Paper Series, 2015, (466). Eric C. Tupper, Chapter 4 - Flotation, Editor(s): Eric C. Tupper, Introduction to Naval Architecture (Fifth Edition), Butterworth-Heinemann, 2013, Pages 47-62, ISBN 9780080982373, Doi: 10.1016/B978-0-08-098237-3.00004-7. Vakili, 2021, The development of a transdisciplinary policy framework for shipping companies to mitigate underwater noise pollution from commercial vessels, Mar. Pollut. Bull., 171, 112687, 10.1016/j.marpolbul.2021.112687 Vakili, 2022, Techno-economic feasibility of photovoltaic, wind and hybrid electrification systems for stand-alone and grid-connected shipyard electrification in Italy, J. Clean. Prod., 366, 132945, 10.1016/j.jclepro.2022.132945 Y. Wang, X. Zhang, S. Lin, Z. Qiang, J. Hao, Y. Qiu, Analysis on the Development of Wind-assisted Ship Propulsion Technology and Contribution to Emission Reduction, in: IOP Conference Series: Earth and Environmental Science, Vol. 966, No. 1, IOP Publishing, 2022, , p. 012012. A.J.M. Wijk, van, E., van der, Roest., J. Boere, Solar power to the people. IOS Press, Amsterdam, 2018. ISBN 978-1- 61499-831-0. WISAMO project, 2021. Available online: https://www.michelin.com/en/press-releases/michelin-continues-to-develop-wisamo-in-partnership-with-compagnie-maritime-nantaise-mn/. Yang, 2021