Journal is indexed in following databases:



2022 Journal Impact Factor - 0.6
2022 CiteScore - 1.7



HomePage
 




 


 

ISSN 2083-6473
ISSN 2083-6481 (electronic version)
 

 

 

Editor-in-Chief

Associate Editor
Prof. Tomasz Neumann
 

Published by
TransNav, Faculty of Navigation
Gdynia Maritime University
3, John Paul II Avenue
81-345 Gdynia, POLAND
www http://www.transnav.eu
e-mail transnav@umg.edu.pl
Effectiveness of Current Technology in GHG Reduction – A literature Survey
1 University of Tasmania, Launceston, Australia
ABSTRACT: In 2018 during the 72nd session of the Maritime Environmental Protection Committee (MEPC) IMO adopted its initial strategy for the reduction of greenhouse gas emissions (GHG) from the ships to meet the Paris Agreement Goals, 2015. This is considered as a major milestone in formulizing a clear strategy by IMO towards its objective of reducing the global GHG emissions from the ships. The strategy had two primary objectives: the first was to decrease total annual GHG emissions by at least 50% by 2050 compared to 2008 levels. The second objective was to promote the phasing out of GHG emissions entirely. In 2020, the International Maritime Organization (IMO) conducted a study which revealed that greenhouse gas (GHG) emissions from shipping had increased by 9.6%. The rise in global maritime trade was identified as the main factor behind this increase. IMO's 2020 study also concluded that reducing GHG emissions by focusing only on energy-saving technologies and ship speed reduction would not be enough to meet the IMO's 2050 GHG reduction target. Therefore, greater attention needs to be given to the use of low-carbon alternative fuels. To understand the effectiveness of currently available technologies in reducing GHG emissions from ships, a literature survey was conducted in this study. The survey examined a range of related articles published between 2018 and 2022. This study aimed to identify the current stage and the quantity of literature available on various technologies and, more importantly, serve as a decision-making support tool for selecting a technology under specific circumstances in a quantitative manner. The technologies were divided into four groups: those that utilize fossil fuels, those that use renewable energy, those that use fuel cells, and those that use low-carbon or alternative fuels. The literature survey was conducted using Web of Science (WoS) and Google Scholar. The results of this study will also help to identify clear research gaps in comparing the effectiveness of various available technologies to reduce GHG emissions. Ultimately, the aim is to develop a comprehensive strategy that can be used to reduce GHG emissions from shipping and contribute to the global fight against climate change.
REFERENCES
Romano, A & Yang, Z 2021, 'Decarbonisation of shipping: A state of the art survey for 2000–2020', Ocean & Coastal Management, vol. 214, p. 105936. - doi:10.1016/j.ocecoaman.2021.105936
Wang, H.B., Zhou, P.L., Wang, Z.C., 2017. Reviews on current carbon emission reduction technologies and projects and their feasibilities on ships. J. Mar. Sci. Appl. 16 (2), 129–136. - doi:10.1007/s11804-017-1413-y
IMO 2018, UN body adopts climate change strategy for shipping, IMO, .
Ayudhia P Gusti, Semin, A.B Dinariyana, Mohammad I.Irawan, Masao Furusho, 2019: Reduction in Ship Fuel Consumption And Emission By Sailing at Slow Speed
Psaraftis, HN 2019, 'The Energy Efficiency Design Index (EEDI).
NK, C 2016, 'Procedure for calculation and verification of the Energy Efficiency Design Index.
TRANSPORTATION, ICCT 2020, 'The climate implications of using LNG as a marine fuel.
Gabbar, HA, Adham, MI & Abdussami, MR 2021, 'Analysis of nuclear-renewable hybrid energy system for marine ships', Energy Reports, vol. 7, pp. 2398-2417. - doi:10.1016/j.egyr.2021.04.030
Yunlong Wang, Xin Zhang, Shaochuan Lin, Zhaoxin Qiang, Jinfeng Hao, Yan Qiu, 2022 - Analysis on the Development of Wind-assisted Ship Propulsion Technology and Contribution to Emission Reduction - doi:10.1088/1755-1315/966/1/012012
D.-S. C. Donghyun Oh, Dae-Seung Cho , 2022 : Design and evaluation of hybrid propulsion ship powered by fuel cell and bottoming cycle.
Peng Cheng, TP, Ruiye Li, Ning Lian 2021, 'Research on optimal matching of renewable energy power generation system and ship power system'. - doi:10.1049/rpg2.12470
Guan, LCaW 2021, 'Safety Design and Engineering Solution of Fuel Cell Powered Ship in Inland Waterway of China'.
Xiaobing Maod, RY, Yupeng Yuan, FengLi, Boyang Shenb 2021, 'Simulation and analysis of hydrogen leakage and explosion behaviors in various compartments on a hydrogen fuel cell ship'.
M. Cavo, EG, D. Rattazzii, M. Rivarolo, L. Magistri 2021, 'Dynamic analysis of PEM fuel cells and metal hydrides on a zero-emission ship: A model-based approach'. - doi:10.1016/j.ijhydene.2021.07.104
Francesco Baldi, AAFM 2019, 'From renewable energy to ship fuel: ammonia as an energy vector and mean for energy storage'. - doi:10.1016/B978-0-12-818634-3.50292-7
Al-Aboosi, FY, El-Halwagi, MM, Moore, M & Nielsen, RB 2021, 'Renewable ammonia as an alternative fuel for the shipping industry', Current Opinion in Chemical Engineering, vol. 31. - doi:10.1016/j.coche.2021.100670
Hansson, J, Brynolf, S, Fridell, E & Lehtveer, M 2020, 'The Potential Role of Ammonia as Marine Fuel-Based on Energy Systems Modeling and Multi-Criteria Decision Analysis', Sustainability, vol. 12, no. 8. - doi:10.3390/su12083265
Kim, K, Roh, G, Kim, W & Chun, K 2020, 'A Preliminary Study on an Alternative Ship Propulsion System Fueled by Ammonia: Environmental and Economic Assessments', Journal of Marine Science and Engineering, vol. 8, no. 3. - doi:10.3390/jmse8030183
Pham, V, Kim, H, Choi, JH, Nyongesa, AJ, Kim, J, Jeon, H & Lee, WJ 2022, 'Effectiveness of the Speed Reduction Strategy on Exhaust Emissions and Fuel Oil Consumption of a Marine Generator Engine for DC Grid Ships', Journal of Marine Science and Engineering, vol. 10, no. 7. - doi:10.3390/jmse10070979
Feng, S, Xu, SR, Yuan, P, Xing, YY, Shen, BX, Li, ZM, Zhang, CG, Wang, XQ, Wang, ZZ, Ma, J & Kong, WW 2022, 'The Impact of Alternative Fuels on Ship Engine Emissions and Aftertreatment Systems: A Review', Catalysts, vol. 12, no. 2. - doi:10.3390/catal12020138
Lindstad, E, Lagemann, B, Rialland, A, Gamlem, GM & Valland, A 2021, 'Reduction of maritime GHG emissions and the potential role of E-fuels', Transportation Research Part D-Transport and Environment, vol. 101. - doi:10.1016/j.trd.2021.103075
Aksoyoglu, S, Jiang, JH, Ciarelli, G, Baltensperger, U & Prevot, ASH 2020, 'Role of ammonia in European air quality with changing land and ship emissions between 1990 and 2030', Atmospheric Chemistry and Physics, vol. 20, no. 24, pp. 15665-15680. - doi:10.5194/acp-20-15665-2020
Sui, CB, de Vos, P, Stapersma, D, Visser, K & Ding, Y 2020, 'Fuel Consumption and Emissions of Ocean-Going Cargo Ship with Hybrid Propulsion and Different Fuels over Voyage', Journal of Marine Science and Engineering, vol. 8, no. 8. - doi:10.3390/jmse8080588
Cheng, P, Liang, N, Li, RY, Lan, H & Cheng, Q 2020, 'Analysis of Influence of Ship Roll on Ship Power System with Renewable Energy', Energies, vol. 13, no. 1. - doi:10.3390/en13010001
Ye, MN, Sharp, P, Brandon, N & Kucernak, A 2022, 'System-level comparison of ammonia, compressed and liquid hydrogen as fuels for polymer electrolyte fuel cell powered shipping', International Journal of Hydrogen Energy, vol. 47, no. 13, pp. 8565-8584. - doi:10.1016/j.ijhydene.2021.12.164
Stamatakis, ME & Ioannides, MG 2021, 'State Transitions Logical Design for Hybrid Energy Generation with Renewable Energy Sources in LNG Ship', Energies, vol. 14, no. 22. - doi:10.3390/en14227803
Citation note:
Klakeel T., Anantharaman M., Islam R., Garaniya V.: Effectiveness of Current Technology in GHG Reduction – A literature Survey. TransNav, the International Journal on Marine Navigation and Safety of Sea Transportation, Vol. 17, No. 1, doi:10.12716/1001.17.01.18, pp. 171-176, 2023
Authors in other databases:
Tom Klakeel:

Other publications of authors:

M. Anantharaman, R. Islam, F. Khan, V. Garaniya, B. Lewarn

File downloaded 96 times








Important: TransNav.eu cookie usage
The TransNav.eu website uses certain cookies. A cookie is a text-only string of information that the TransNav.EU website transfers to the cookie file of the browser on your computer. Cookies allow the TransNav.eu website to perform properly and remember your browsing history. Cookies also help a website to arrange content to match your preferred interests more quickly. Cookies alone cannot be used to identify you.
Akceptuję pliki cookies z tej strony