State-of-the-art technologies, measures, and potential for reducing GHG emissions from shipping – A review
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AEsoy, V., et al., 2011. LNG-Fuelled Engines and Fuel Systems for Medium-Speed Engines in Maritime Applications. SAE Technical Paper. JSAE 20119212(SAE 2011–01-1998).
Álvarez, 2009, Joint routing and deployment of a fleet of container vessels, Maritime Econ. Logist., 11, 186, 10.1057/mel.2009.5
Alvik, S., et al., 2010. Pathways to Low Carbon Shipping-Abatement Potential Towards 2030, DNV, Editor. Høvik.
Anderson, 2012, Executing a Scharnow turn: reconciling shipping emissions with international commitments on climate change, Carbon Manage., 3, 615, 10.4155/cmt.12.63
Archer, 2009, Atmospheric lifetime of fossil fuel carbon dioxide, Ann. Rev. Earth Planet. Sci., 37, 117, 10.1146/annurev.earth.031208.100206
B9Shipping, 2016. <http://www.b9energy.com/B9Shipping/tabid/4036/language/en-US/Default.aspx> [Cited 2016 March, 1st 2016]
Baldi, F., 2013. Improving ship energy efficiency through a systems perspective. In: Department of Shipping and Marine Technology. Chalmers University of Technology, p. 78.
Baldi, 2015, A feasibility analysis of waste heat recovery systems for marine applications, Energy, 80, 654, 10.1016/j.energy.2014.12.020
Baldi, F., Bengtsson, S., Andersson, K., 2013. The influence of propulsion system design on the carbon footprint of different marine fuels. In: Low Carbon Shipping Conference. London.
Balland, 2015, Optimized selection of vessel air emission controls—moving beyond cost-efficiency, Maritime Policy Manage., 42, 362, 10.1080/03088839.2013.872311
Bausch, 1998, Scheduling short-term marine transport of bulk products, Maritime Policy Manage., 25, 335, 10.1080/03088839800000057
Bengtsson, S., 2011. Life cycle assessment of present and future marine fuels. In: Department of Shipping and Marine Technology. Chalmers University of Technology, Gothenburg, p. 71.
Bengtsson, 2012, Environmental assessment of two pathways towards the use of biofuels in shipping, Energy Policy, 44, 451, 10.1016/j.enpol.2012.02.030
Bengtsson, 2014, Fuels for short sea shipping: a comparative assessment with focus on environmental impact, Proc. Inst. Mech. Eng. Part M: J. Eng. Maritime Environ., 228, 44
Bergqvist, R., Cullinane, K., 2013. SECA regulations, modal shift and transport system effects. In: T.A. Logistics and Transport Consultants (Ed.), Gothenburg.
Bittner, 2012, Impacts of Panama Canal expansion on US greenhouse gas emissions, Transport. Res. Rec.: J. Transport. Res. Board, 2273, 38, 10.3141/2273-05
Bond, 2013, Bounding the role of black carbon in the climate system: a scientific assessment, J. Geophys. Res.: Atmosph., 118, 5380, 10.1002/jgrd.50171
Brynolf, 2014, Environmental assessment of marine fuels: liquefied natural gas, liquefied biogas, methanol and bio-methanol, J. Clean. Prod., 74, 86, 10.1016/j.jclepro.2014.03.052
Brynolf, 2014, Compliance possibilities for the future ECA regulations through the use of abatement technologies or change of fuels, Transport. Res. Part D: Transport Environ., 28, 6, 10.1016/j.trd.2013.12.001
Buhaug, 2009
Carr, 2015, Ship compliance in emission control areas: technology costs and policy instruments, Environ. Sci. Technol., 49, 9584, 10.1021/acs.est.5b02151
CCNR, 2012. Possibilities for Reducing Fuel Consumption and Greenhouse Gas Emissions from Inland Navigation. Report by the Inspection Regulations Committee for the 2012 Autumn Meeting. Annex 2 to protocol 2012-II-4 of the Central Commission for the Navigation of the Rhine.
Chatzinikolaou, 2013, Assessment of ship emissions in a life cycle perspective
Cherubini, 2013, Global climate impacts of forest bioenergy: what, when and how to measure?, Environ. Res. Lett., 8, 014049, 10.1088/1748-9326/8/1/014049
Choi, 2013, Theoretical study on fuel savings of marine diesel engine by exhaust-gas heat-recovery system of combined cycle, Trans. Korean Soc. Mech. Eng. B, 37, 171, 10.3795/KSME-B.2013.37.2.171
Choi, 2013, Thermodynamic analysis of a dual loop heat recovery system with trilateral cycle applied to exhaust gases of internal combustion engine for propulsion of the 6800 TEU container ship, Energy, 58, 404, 10.1016/j.energy.2013.05.017
Chryssakis, C., et al., 2014. Alternative fuels for shipping, Vol. Position Paper 1-2014. Høvik, Norway, DNV GL. p. 28.
Clauss, G., Sickmann, H., Tampier, B., 2007. Simulation of the operation of wind-assisted cargo ships. In: 102. Hauptversammlung der Shiffbautechnischen Gesellschaft. Berlin, Germany.
CNSS, 2011. A Review of Present Technological Solutions for Clean Shipping. Clean North Sea Shipping.
Corbett, 2009, The effectiveness and costs of speed reductions on emissions from international shipping, Transport. Res. Part D: Transport Environ., 14, 593, 10.1016/j.trd.2009.08.005
Cotorcea, A., et al., 2014. Present and future of renewable energy sources onboard ships. Case study: solar-thermal systems. Sci. Bull. “Mircea cel Batran” Naval Acad. 17(1), 35.
Cui, 2015, An empirical study on the influencing factors of transportation carbon efficiency: evidences from fifteen countries, Appl. Energy, 141, 209, 10.1016/j.apenergy.2014.12.040
Cullinane, S., 2014. Mitigating the negative environmental impacts of long haul freight transport. In: Macharis, C., et al. (Eds.), Sustainable Logistics. Emerald Group Publishing Limited, pp. 31–61.
Cullinane, 2014, Emission control areas and their impact on maritime transport, Transport. Res. Part D: Transport Environ., 28, 1, 10.1016/j.trd.2013.12.004
Cullinane, 2000, Economies of scale in large containerships: optimal size and geographical implications, J. Transport Geogr., 8, 181, 10.1016/S0966-6923(00)00010-7
Dadd, 2011, Determination of kite forces using three-dimensional flight trajectories for ship propulsion, Renew. Energy, 36, 2667, 10.1016/j.renene.2011.01.027
Davidson, M.D., Faber, J., 2012. Market-based instruments to reduce greenhouse gas emissions from ships. In: Asariotis, R., Benamara, H., (Eds.), Maritime Transport and the Climate Change Challenge. Abingdon, Earthscan, pp. 148–164.
Deniz, 2015, Thermodynamic and environmental analysis of low-grade waste heat recovery system for a ship power plant, Int. J. Energy Sci., 5, 23, 10.12783/ijes.2015.0501.04
Dnv, 2014
Doulgeris, 2012, Techno-economic and environmental risk analysis for advanced marine propulsion systems, Appl. Energy, 99, 1, 10.1016/j.apenergy.2012.04.026
Ecoliner, 2016. Ecoliner. <http://www.ecoliners.eu/> [Cited March, 1st 2016].
Eide, 2011, Future cost scenarios for reduction of ship CO2 emissions, Maritime Policy Manage., 38, 11, 10.1080/03088839.2010.533711
Eide, 2013, CO2 abatement potential towards 2050 for shipping, including alternative fuels, Carbon Manage., 4, 275, 10.4155/cmt.13.27
Eide, 2013, Reducing CO2 from shipping-do non-CO2 effects matter?, Atmosph. Chem. Phys., 13, 4183, 10.5194/acp-13-4183-2013
Einang, P.M., 2007. Gas-fuelled ships. In: 25th CIMAC World Congress on Combustion Engine Technology. Vienna.
Einang, P.M., 2009. New emerging energy sources and systems. In: NorShipping, 2009. Lillestrøm.
EMEC, 2010. Green Ship Technology Book. Brussels, European Marine Equipment Council.
Eskeland, 2016, Environmental taxation of transport, Int. J. Green Growth Dev., 2, 51
Eyring, 2010, Transport impacts on atmosphere and climate: Shipping, Atmosph. Environ., 44, 4735, 10.1016/j.atmosenv.2009.04.059
Faber, 2009
Faber, J., et al., 2010. Going Slow to Reduce Emissions: Can the Current Surplus of Maritime Transport Capacity be Turned into an Opportunity to Reduce GHG Emissions? Seas at Risk, Delft, p. 29.
Faber, J., et al., 2011. Marginal abatement costs and cost effectiveness of energy-efficiency measures. In: Organization, I.M., (Ed.). The Society of Naval Architects and Marine Engineers (SNAME). London.
Fagerholt, 2001, Ship scheduling with soft time windows: an optimisation based approach, Euro. J. Oper. Res., 131, 559, 10.1016/S0377-2217(00)00098-9
Fagerholt, 2009, Fleet deployment in liner shipping: a case study, Maritime Policy Manage., 36, 397, 10.1080/03088830903187143
Fagerholt, 2010, Reducing fuel emissions by optimizing speed on shipping routes, J. Oper. Res. Soc., 61, 523, 10.1057/jors.2009.77
Franc, P., 2014. Mitigating maritime transport emissions: diversified effects between European short sea and deep sea shipping. In: Transport Research Arena (TRA) 5th Conference: Transport Solutions from Research to Deployment. Paris, France.
Fuglestvedt, 2014, Climate penalty for shifting shipping to the arctic, Environ. Sci. Technol., 48, 13273, 10.1021/es502379d
Future, G.S.O.T., 2012. Waste Heat Recovery Systems. In: Future, G.S.O.T. (Ed.).
Gilbert, 2014, From reductionism to systems thinking: how the shipping sector can address sulphur regulation and tackle climate change, Marine Policy, 43, 376, 10.1016/j.marpol.2013.07.009
Gilbert, 2014, Technologies for the high seas: meeting the climate challenge, Carbon Manage., 5, 447, 10.1080/17583004.2015.1013676
Glykas, 2010, Application and cost-benefit analysis of solar hybrid power installation on merchant marine vessels, Ocean Eng., 37, 592, 10.1016/j.oceaneng.2010.01.019
Grahn, M., et al., 2013. Cost-effective choices of marine fuels under stringent carbon dioxide targets. In: Proceedings of 3rd International Conference on Technologies, Operations, Logistics and Modelling in Low Carbon Shipping, University College London.
Gucwa, 2013, The impact of scale on energy intensity in freight transportation, Transport. Res. Part D: Transport Environ., 23, 41, 10.1016/j.trd.2013.03.008
Guerra, A., Jenssen, M.M., 2014. Multi Criteria Decision Analysis (MCDA) in the norwegian maritime sector: adding environmental criteria in maritime decision support systems. In: Faculty of Social Sciences and Technology Management. MSc Dissertation, Norwegian University of Science and Technology, Trondheim, February, 2nd.
Halfdanarson, J., Snåre, M.W., 2015. Implementation and application of an integrated framework for economic and environmental assessment of maritime transport vessels. In: Department of Energy and Process Engineering. MSc Dissertation, Norwegian University of Science and Technology, Trondheim, Norway.
Heitmann, 2014, The potential contribution of the shipping sector to an efficient reduction of global carbon dioxide emissions, Environ. Sci. Policy, 42, 56, 10.1016/j.envsci.2014.05.001
Hertzberg, T., 2009. LASS, Lightweight Construction Applications at Sea, SP Report. 2009, SP Technical Research Institute of Sweden: Borås. p. 221.
Hoffmann, 2002, Globalisation – the maritime nexus, 35
Hoffmann, 2012, Effect of proposed CO2 emission reduction scenarios on capital expenditure, Maritime Policy Manage., 39, 443, 10.1080/03088839.2012.690081
IPCC, Climate Change, 2007. Synthesis Report. Contribution of Working Groups I, II and III to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change. 2007, [Core Writing Team, Pachauri, R.K., Reisinger, A., (Eds.)]. IPCC, Geneva, Switzerland. p. 104.
Jacobson, 2010, Short-term effects of controlling fossil-fuel soot, biofuel soot and gases, and methane on climate, arctic ice, and air pollution health, J. Geophys. Res.: Atmosph., 115, 10.1029/2009JD013795
Jafarzadeh, 2014, A framework to bridge the energy efficiency gap in shipping, Energy, 69, 603, 10.1016/j.energy.2014.03.056
Jafarzadeh, S., Ellingsen, H., Utne, I.B., 2012. Emission reduction in the Norwegian fishing fleet: towards LNG. In: Second International Symposium on Fishing Vessel Energy Efficiency (E-Fishing). Vigo, Spain.
Johnson, 2015, Increased energy efficiency in short sea shipping through decreased time in port, Transport. Res. Part A: Policy Pract., 71, 167
Kesicki, 2011, Marginal abatement cost (MAC) curves: confronting theory and practice, Environ. Sci. Policy, 14, 1195, 10.1016/j.envsci.2011.08.004
Kollamthodi, S., et al., 2013. Support for the Impact Assessment of a Proposal to Address Maritime Transport Greenhouse Gas Emissions, Report for European Commission – DG Climate Action. Ricardo-AEA/R/ED56985.
Kontovas, 2014, The Green Ship Routing and Scheduling Problem (GSRSP): a conceptual approach, Transport. Res. Part D: Transport Environ., 31, 61, 10.1016/j.trd.2014.05.014
Kontovas, 2016, Transportation emissions: some basics, 41
Kotb, M., et al., 2013. Marine applications of Fuel Cell as alternative power plant: case study. In: Alexandria, E. (Ed.), International Marine and Offshore Engineering Conference (IMOC 2013).
Kristensen, 2012, Energy demand and exhaust gas emissions of marine engines, Clean Shipp. Curr., 1, 18
Lack, 2012, Black carbon from ships: a review of the effects of ship speed, fuel quality and exhaust gas scrubbing, Atmosph. Chem. Phys., 12, 3985, 10.5194/acp-12-3985-2012
Lauer, 2007, Global model simulations of the impact of ocean-going ships on aerosols, clouds, and the radiation budget, Atmosph. Chem. Phys., 7, 5061, 10.5194/acp-7-5061-2007
Lee, 2013, Economy-wide impact analysis of a carbon tax on international container shipping, Transport. Res. Part A: Policy Pract., 58, 87
Lin, S., 2012. Greenhouse gas mitigation strategies: a ship operator’s perspective in the container shipping industry. In: OAPS (CEE). Nanyang Technological University. Singapore.
Lindstad, 2013, Strategies and measures for reducing maritime CO2 emissions
Lindstad, 2015, Hydrogen the next maritime fuel
Lindstad, 2015, Low carbon maritime transport: how speed, size and slenderness amounts to substantial capital energy substitution, Transport. Res. Part D: Transport Environ., 41, 244, 10.1016/j.trd.2015.10.006
Lindstad, H., Sandaas, I., 2014. Emission and fuel reduction for offshore support vessels through hybrid technology. In: SNAME 2014.
Lindstad, H.E., Sandaas, I., 2016. Emission and fuel reduction for offshore support vessels through hybrid technology. J. Ship Product. Des. January, 11th 2016.
Lindstad, 2011, Reductions in greenhouse gas emissions and cost by shipping at lower speeds, Energy Policy, 39, 3456, 10.1016/j.enpol.2011.03.044
Lindstad, 2012, The importance of economies of scale for reductions in greenhouse gas emissions from shipping, Energy Policy, 2012, 386, 10.1016/j.enpol.2012.03.077
Lindstad, 2013, Reductions in cost and greenhouse gas emissions with new bulk ship designs enabled by the Panama Canal expansion, Energy Policy, 59, 341, 10.1016/j.enpol.2013.03.046
Lindstad, 2013, Assessment of profit, cost and emissions by varying speed as a function of sea conditions and freight market, Transport. Res. Part D: Transport Environ., 19, 5, 10.1016/j.trd.2012.11.001
Lindstad, 2014, Assessment of profit, cost, and emissions for slender bulk vessel designs, Transport. Res. Part D: Transport Environ., 2014, 32, 10.1016/j.trd.2014.04.001
Lindstad, H., et al., 2015. GHG Emission Reduction Potential of EU-Related Maritime Transport and on its Impacts. European Commission, CLIMA.B.3/ETU/2013/0015, TNO 2014 R11601.
Lindstad, 2015, Maritime shipping and emissions: a three-layered, damage-based approach, Ocean Eng., 110, 94, 10.1016/j.oceaneng.2015.09.029
Lindstad, 2015, Assessment of cost as a function of abatement options in maritime emission control areas, Transport. Res. Part D: Transport Environ., 2015, 41, 10.1016/j.trd.2015.04.018
Lindstad, 2016, Economic savings linked to future Arctic shipping trade are at odds with climate change mitigation, Transport Policy, 45, 24, 10.1016/j.tranpol.2015.09.002
Lindstad, 2016, Opportunities for increased profit and reduced cost and emissions by service differentiation within container liner shipping, Maritime Policy Manage., 43, 280, 10.1080/03088839.2015.1038327
Lock, 2013
Ludvigsen, K.B., Ovrum, E., 2012. Fuel Cells for Ships, Høvik, Norway, Det Norske Veritas.
Ma, 2012, Well-to-wake energy and greenhouse gas analysis of SOX abatement options for the marine industry, Transport. Res. Part D: Transport Environ., 17, 301, 10.1016/j.trd.2012.01.005
Maddox Consulting, 2012. Analysis of Market Barriers to Cost Effective GHG Emission Reductions in the Maritime Transport Sector. CLIMA.B.3/SER/2011/0014, London.
Mastrandrea, M.D., et al., 2010. Guidance Note for Lead Authors of the IPCC Fifth Assessment Report on Consistent Treatment of Uncertainties. Intergovernmental Panel on Climate Change (IPCC). <http://www.ipcc.ch>.
McCord, 1999, Ship routing through altimetry-derived ocean currents, Transport. Sci., 33, 49, 10.1287/trsc.33.1.49
Miola, 2011, Designing a climate change policy for the international maritime transport sector: market-based measures and technological options for global and regional policy actions, Energy Policy, 39, 5490, 10.1016/j.enpol.2011.05.013
Myhre, 2013, Anthropogenic and natural radiative forcing, 659
Nikolakaki, 2013, Economic incentives for maritime shipping relating to climate protection, WMU J. Maritime Aff., 12, 17, 10.1007/s13437-012-0036-z
Norlund, 2013, Reducing emissions through speed optimization in supply vessel operations, Transport. Res. Part D: Transport Environ., 23, 105, 10.1016/j.trd.2013.04.007
Norstad, 2011, Tramp ship routing and scheduling with speed optimization, Transport. Res. Part C: Emerg. Technol., 19, 853, 10.1016/j.trc.2010.05.001
Nuttall, P.R., 2013. Sailing for Sustainability: The Potential of Sail Technology as an Adaptation Tool for Oceania. A Voyage of Inquiry and Interrogation Through the Lens of a Fijian Case Study. Ph.D. Dissertation, Victoria University of Wellington.
Pauli, 2016, Emissions and inland navigation, 479
Paxian, 2010, Present-day and future global bottom-up ship emission inventories including polar routes, Environ. Sci. Technol., 44, 1333, 10.1021/es9022859
Pélerin, E., Tincelin, T., 2010. EOSEAS green cruise ship concept. In: 7th Annual Green Ship Technology Conference. Copenhagen, March, 16th.
Poulsen, 2015, Achieving energy efficient ship operations under third party management: how do ship management models influence energy efficiency?, Res. Transport. Bus. Manage., 17, 41, 10.1016/j.rtbm.2015.10.001
Psaraftis, 2012, Market-based measures for greenhouse gas emissions from ships: a review, WMU J. Maritime Aff., 11, 211, 10.1007/s13437-012-0030-5
Psaraftis, 2016, Green maritime transportation: market based measures, 267
Psaraftis, 2013, Speed models for energy-efficient maritime transportation: a taxonomy and survey, Transport. Res. Part C: Emerg. Technol., 26, 331, 10.1016/j.trc.2012.09.012
Qiu, 2015, Review on the application and research progress of photovoltaics-ship power system
Ranheim, E., Hallet, G., 2010. Virtual Arrival – A Way to Reduce Greenhouse Gas (GHG) Emissions. INTERTANKO and OCIMF, ER-17652/19081.
Rialland, 2014, Performance-based ship management contracts using the Shipping KPI standard, WMU J. Maritime Aff., 13, 191, 10.1007/s13437-014-0058-9
Rojon, 2014, Blowin' in the wind? Drivers and barriers for the uptake of wind propulsion in international shipping, Energy Policy, 67, 394, 10.1016/j.enpol.2013.12.014
Russell, B.A., Wang, H., Zeinali, M., 2010. Marginal abatement costs of CO2 emissions reduction and market-based mechanisms and the pricing of credits. In: Climate Change and Ships: Increasing Energy Efficiency. Linthicum H., Maryland, February, 16–17.
Sánchez-Heres, L.F., 2015. Opportunities for Weight Reduction in Composite Marine Structures. Ph.D. Dissertation, Chalmers University of Technology, Gothenburg, Sweden.
Schmitz, 2015, Economic viability of kite-based wind energy powerships with CAES or hydrogen storage, Energy Proc., 75, 704, 10.1016/j.egypro.2015.07.497
Sciberras, 2015, Electric auxiliary propulsion for improved fuel efficiency and reduced emissions, Proc. Inst. Mech. Eng. Part M: J. Eng. Maritime Environ., 229, 36
Seddiek, 2015, An overview: environmental and economic strategies for improving quality of ships exhaust gases, Trans. RINA, Int. J. Marit Eng., 157, 53
Shipping & Marine, 2015. Breakthrough in Composite Approval. Schofield Publishing Ltd.
Sjöbom, 2014, Energieffektivisering ombord M/S Sydfart: Med hjälp av solceller
SkySails, 2015. SkySails Propulsion System. <http://www.skysails.info/fileadmin/user_upload/Downloads/130829_EN_SkySails_Product_Brochure.pdf> [March, 1st 2016].
Smith, T., et al., 2013. Analysis techniques for evaluating the fuel savings associated with wind assistance. In: Low Carbon Shipping Conference. London.
Smith, 2014
Solem, 2015, Optimization of diesel electric machinery system configuration in conceptual ship design, J. Marine Sci. Technol., 20, 406, 10.1007/s00773-015-0307-4
Stott, 2011, Opportunities for improved efficiency and reduced CO2 emissions in dry bulk shipping stemming from the relaxation of the Panamax beam constraint, Int. J. Maritime Eng., 153, A215
Styhre, L., 2010. Capacity utilisation in short sea shipping. In: Department of Technology Management and Economics. Ph.D. Dissertation, Chalmers University of Technology, Gothenburg.
Sys, 2008, In search of the link between ship size and operations, Transport. Plan. Technol., 31, 435, 10.1080/03081060802335109
Taljegard, 2014, Cost-effective choices of marine fuels in a carbon-constrained world: results from a global energy model, Environ. Sci. Technol., 48, 12986, 10.1021/es5018575
Teeter, J.L., Cleary, S.A., 2014. Decentralized oceans: sail-solar shipping for sustainable development in SIDS. In: Natural Resources Forum. Wiley Online Library, pp. 182–192.
Tillig, 2015
Traut, 2014, Propulsive power contribution of a kite and a Flettner rotor on selected shipping routes, Appl. Energy, 113, 362, 10.1016/j.apenergy.2013.07.026
Ulstein (Ed.), 2009. ULSTEIN X-BOW® - A Vision Turned into Reality. Ulstein Design AS, Ulsteinvik, Norway.
Wang, H., Lutsey, N., 2013. Long-term potential for increased shipping efficiency through the adoption of industry-leading practices. In: International Council on Clean Transportation, September 30th.
Wang, H., et al., 2010. Marginal abatement costs and cost effectiveness of energy-efficiency measures. In: Organization, I.M. (Ed.), The Society of Naval Architects and Marine Engineers (SNAME). London.
Wärtsila, 2009. Boosting energy efficiency: energyefficiency catalogue. In: Energy Efficiency Catalogue/Ship Power R&D. Wärtsila.
Welaya, 2013, Thermodynamic analysis of a combined gas turbine power plant with a solid oxide fuel cell for marine applications, Int. J. Naval Architect. Ocean Eng., 5, 529, 10.2478/IJNAOE-2013-0151
Woo, 2014, The effects of slow steaming on the environmental performance in liner shipping, Maritime Policy Manage., 41, 176, 10.1080/03088839.2013.819131
Wu, 2015, Productivity growth, scale economies, ship size economies and technical progress for the container shipping industry in Taiwan, Transport. Res. Part E: Logist. Transport. Rev., 73, 1, 10.1016/j.tre.2014.10.011
Yin, 2014, Slow steaming of liner trade: its economic and environmental impacts, Maritime Policy Manage., 41, 149, 10.1080/03088839.2013.821210
Zöllner, J., 2009. Strömungstechnische Möglichkeiten zur Reduzierung des Kraftstoffverbrauchs und der CO2-Emissionen von Binnenschiffen. Vortrag beim ZKR Kongress “Rheinschifffahrt und Klimawandel“. Bonn, June 24–25th.