An evaluation of methanol engine utilization regarding economic and upcoming regulatory requirements for a container ship

被引:30
作者
Bayraktar, Murat [1 ]
Yuksel, Onur [1 ]
Pamik, Murat [2 ]
机构
[1] Zonguldak Bulent Ecevit Univ, Maritime Fac, Zonguldak, Turkiye
[2] Dokuz Eylul Univ, Maritime Fac, Izmir, Turkiye
关键词
Retrofitting; Methanol engine; Marine diesel engine; Oceangoing container vessel; EEXI; CII; Economic analysis; FUEL; EMISSIONS;
D O I
10.1016/j.spc.2023.05.029
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Examining the effects of converting marine diesel engines to methanol engines in terms of economics, the environment, and forthcoming regulatory requirements is the aim of this study. The article stands out by using an assessment that looks at how the retrofit application affects meeting Energy Efficiency Existing Ship Index (EEXI) and Carbon Intensity Indicator (CII) criteria as well as an economic and environmental analysis of retrofitting a ship with a methanol engine based on present circumstances and projections for the future. An oceangoing container ship's noon reports for a forty-day cruise have been obtained to perform the analysis. Two different methanol engine retrofit scenarios having smaller (ME1) and larger (ME2) power outputs have been evaluated. Results demonstrated that both ME1 and ME2 engines have considerably reduced operational carbon dioxide (CO2) emissions and their CII values are 9.893 and 9.674 respectively. The ME1 with a 12.259 value has great performance in terms of EEXI which is quite significant since the EEXI of the reference container is 21.272. The usage of renewable (RN) methanol is found highly critical in terms of lifetime (LT) emissions. Despite falling behind in the electricity production cost (EPC) metric, ME1 generally outperformed ME2 in economic comparison, and the payback period (PBP) is calculated at 9.63 years with 2023 prices. The economic model forecast that PBP can be reduced to 4.44 years for the same scenario with the possible developments in methanol production and distribution technologies by 2050.
引用
收藏
页码:345 / 356
页数:12
相关论文
共 62 条
[11]   Methanol fuel production, utilization, and techno-economy: a review [J].
Deka, Tanmay J. ;
Osman, Ahmed I. ;
Baruah, Debendra C. ;
Rooney, David W. .
ENVIRONMENTAL CHEMISTRY LETTERS, 2022, 20 (06) :3525-3554
[12]   Environmental and economical assessment of alternative marine fuels [J].
Deniz, Cengiz ;
Zincir, Burak .
JOURNAL OF CLEANER PRODUCTION, 2016, 113 :438-449
[13]   Performance and emissions of a high-speed marine dual-fuel engine operating with methanol-water blends as a fuel [J].
Dierickx, Jeroen ;
Dejaegere, Quinten ;
Peeters, Jens ;
Sileghem, Louis ;
Verhelst, Sebastian .
FUEL, 2023, 333
[14]  
DNV, 2022, Alternative fuels for containerships
[15]  
DNV, 2022, METHANOL ALTERNATIVE
[16]  
European Commission, 2023, Fourth Annual Report from the European Commission on CO2 Emissions from Maritime Transport
[17]   The Impact of Alternative Fuels on Ship Engine Emissions and Aftertreatment Systems: A Review [J].
Feng, Shuo ;
Xu, Shirui ;
Yuan, Peng ;
Xing, Yuye ;
Shen, Boxiong ;
Li, Zhaoming ;
Zhang, Chenguang ;
Wang, Xiaoqi ;
Wang, Zhuozhi ;
Ma, Jiao ;
Kong, Wenwen .
CATALYSTS, 2022, 12 (02)
[18]   Measurements of Emissions to Air from a Marine Engine Fueled by Methanol [J].
Fridell, Erik ;
Salberg, Hakan ;
Salo, Kent .
JOURNAL OF MARINE SCIENCE AND APPLICATION, 2021, 20 (01) :138-143
[19]   Assessment of full life-cycle air emissions of alternative shipping fuels [J].
Gilbert, Paul ;
Walsh, Conor ;
Traut, Michael ;
Kesieme, Uchenna ;
Pazouki, Kayvan ;
Murphy, Alan .
JOURNAL OF CLEANER PRODUCTION, 2018, 172 :855-866
[20]  
Gomez Vilchez J.J., 2022, FRONT ENERGY RES, V10, P628, DOI [10.3389/FENRG.2022.904500/BIBTEX, DOI 10.3389/FENRG.2022.904500/BIBTEX]