Chinese Journal of Ship Research, Volume. 17, Issue 6, 22(2022)
A review of shipboard large-scale energy storage systems
[1] [1] United Nations Conference on Trade Development. Review of maritime transpt 2020[EBOL]. https:unctad.gwebflyerreviewmaritimetranspt2020.
[2] [2] United Nations Conference on Trade Development. Review of maritime transpt 2019[EBOL]. https:unctad.gwebflyerreviewmaritimetranspt2019.
[3] [3] FANG S, WANG H. Optimizationbased energy management f multienergy maritime grids [M]. Singape: Springer, 2021.
[4] [4] International Maritime ganization. Revised MARPOL Annex VI: regulations f the prevention of air pollution from ships[R]. London: Marine Environment Protection Committee, 2008.
[5] [5] International Maritime ganization. 2012 guidelines f the development of a ship energy efficiency management plan (SEEMP)[R]. London: Marine Environment Protection Committee, 2012.
[6] [6] International Maritime ganization. Guidelines f voluntary use of the ship energy efficiency operational indicat (EEOI)[R]. London: Marine Environment Protection Committee, 2009.
[12] NI K, HU Y H, LI X H. An overview of design, control, power management, system stability and reliability in electric ships[J]. Power Electronics and Drives, 2, 5-29(2017).
[19] JAUROLA M, HEDIN A, TIKKANEN S et al. Optimising design and power management in energy-efficient marine vessel power systems: a literature review[J]. Proceedings of the Institute of Marine Engineering & Technology, 18, 92-101(2018).
[20] HEIN K, XU Y, WILSON G et al. Coordinated optimal voyage planning and energy management of all-electric ship with hybrid energy storage system[J]. IEEE Transactions on Power Systems, 36, 2355-2365(2021).
[28] HADJIPASCHALIS I, POULLIKKAS A, EFTHIMIOU V. Overview of current and future energy storage technologies for electric power applications[J]. Renewable and Sustainable Energy Review, 13, 1513-1522(2009).
[29] [29] International Electrotechnical Commission (IEC). Electrical energy stage: white paper[EBOL]. https:www.iec.chbasecamppopulate_search=Electrical%20energy%20stage&resource_type[3]=3.
[36] ALAFNAN H, ZHANG M, YUAN W J et al. Stability improvement of DC power systems in an all-electric ship using hybrid SMES/Battery[J]. IEEE Transactions on Applied Superconductivity, 28, 5700306(2018).
[44] [44] U212U214 submarines[EBOL]. [20180827]. https:www.navaltechnology.comprojectstype_212.
[45] [45] Fuel cell ship Alsterwasser[EBOL]. [20180827]. https:www.drewsmarine.comenreferencespassengerferriesfcsalsterwasser.
[46] SYMINGTON W P, BELLE A, NGUYEN H D et al. Emerging technologies in marine electric propulsion[J]. Part M: Journal of Engineering for the Maritime Environment, 230, 187-198(2016).
[47] [47] CARLTON S, ALDWINKLE J, ERSON J. Future ship powering options: expling alternative methods of ship propulsion[M]. London: Royal Academy of Engineering, 2013.
[48] [48] ASH N, SCARBROUGH T. Sailing on solar: could green ammonia decarbonise international shipping[R]. London: Environmental Defense Fund, 2019.
[49] [49] ASH N, CARPENTERLOMAX O. Zerocarbon f shipping: propelling investment in South Central America with hydrogenbased shipping fuels [R]. Washington: Ocean Conservancy, 2020.
[53] [53] Nway electric ferry cuts emissions by 95%, costs by 80%[EBOL]. [20190909]. https:reneweconomy.com.aunwayelectricferrycutsemissions95costs8065811.
[58] [58] VEKSLER A, JOHANSEN T A, SKJETNE R. Thrust allocation with power management functionality on dynamically positioned vessels[C]Proceedings of the 2012 American Control Conference (ACC). Montreal: IEEE, 2012: 14681475.
[63] [63] SCUILLER F. Study of a supercapacit energy stage system designed to reduce frequency modulation on shipboard electric power system[C]IECON 2012 38th Annual Conference on IEEE Industrial Electronics Society. Montreal: IEEE, 2012: 40544059.
[65] FADDEL S, SAAD A A, YOUSSEF T et al. Decentralized control algorithm for the hybrid energy storage of shipboard power system[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 8, 720-731(2019).
[66] [66] KULKARNI S, SANTOSO S. Impact of pulse loads on electric ship power system: with without flywheel energy stage systems[C]2009 IEEE Electric Ship Technologies Symposium. Baltime: IEEE, 2009: 568573.
[76] FANG S D, XU Y. Multi-objective robust energy management for all-electric shipboard microgrid under uncertain wind and wave[J]. International Journal of Electrical Power & Energy Systems, 117, 105600(2020).
[83] [83] Viking Lady offshe supply vessel. [EBOL]. [20180827]. https:www.shiptechnology.comprojectsvikinglady.
[84] [84] PRATT J W, KLEBANOFF L E. Feasibility of the SFBREEZE: a zeroemission, hydrogen fuel cell, highspeed passenger ferry [EBOL].[20180827]. https:www.maritime.dot.govsitesmarad.dot.govfilesdocsinnovationmeta9841sfbreezeferryfeasibilitystudyreptsianationallabaty2.pdf.
[85] [85] Paxell[EBOL]. [20180827]. https:www.e4ships.deenglishmaritimeshippingpaxell2.
[86] [86] METHAPU prototypes methanol SOFC f ships[J]. Fuel Cells Bulletin, 2008, 2008(5): 4–5.
[87] [87] SFC fuel cells f US army, maj der from German military[J]. Fuel Cells Bulletin, 2012, 2012(4): 6.
[88] [88] JAFARZADEH S, SCHJØLBERG I. Emission reduction in shipping using hydrogen fuel cells[C]Proceedings of the ASME 2017 36th International Conference on Ocean, Offshe Arctic Engineering. Trondheim: ASME, 2017: 25–30.
[89] [89] LEITES K, KRUMMRICH S, NEHTER P, et al. SchIBZ – application of solid oxide fuel cells f oceangoing ships[C]5th Conference on Fundamentals Development of Fuel Cells. Karlsruhe, Germany, 2013.
[90] [90] 212A class submarine[EBOL]. [20180827]. http:www.seafces.gmarintGermanNavySubmarineType212Aclass.htm.
[91] [91] SSK S80 class submarine[EBOL]. [20180827]. https:www.navaltechnology.comprojectsssks80classsubmarine.
[103] HU X S, JIANG J C, CAO D P et al. Battery health prognosis for electric vehicles using sample entropy and sparse Bayesian predictive modeling[J]. IEEE Transactions on Industrial Electronics, 63, 2645-2656(2016).
[107] FANG S D, WANG Y, GOU B et al. Toward future green maritime transportation: an overview of seaport microgrids and all-electric ships[J]. IEEE Transactions on Vehicular Technology, 69, 207-219(2019).
Get Citation
Copy Citation Text
Sidun FANG, Hongdong WANG, Junjun ZHANG. A review of shipboard large-scale energy storage systems[J]. Chinese Journal of Ship Research, 2022, 17(6): 22
Category:
Received: Apr. 23, 2021
Accepted: --
Published Online: Mar. 26, 2025
The Author Email: