Submitted:
09 September 2025
Posted:
10 September 2025
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Abstract
Keywords:
1. Introduction
2. Literature Study
2.1. Escalation of IMO Decarbonization Rules and the EEXI/CII Regime
2.2. Efficiency Characteristics and Operating-Mode Studies of CPP
2.3. Structural Issues in the CII Metric and Disadvantages for Short Voyages
3. Methods
3.1. Data Collection and Baseline CII Computation
| Item | Particular |
| Ship name | HANNARA |
| Ship type | Training / education |
| Gross tonnage | 9196 GT |
| Deadweight tonnage | 3671 DWT |
| Length overall (LOA) | 113 m |
| Fuel | MGO |
| Main Engine | Hyundai-MAN B&W 6S40ME-B9.5-LP SCR |
| Speed(MCR) | 146 rpm |
| Maximum continuous rating | 6618 kW (MCR) |
| Propeller | Controllable Pitch Propeller |
- When the time-at-sea fraction (ts) is low, the denominator shrinks, and the CII is overestimated.
- A high share of generator (G/E) and boiler fuel consumption inflates the CII.
- For short-voyage operations and training vessels, the resulting CII can be unrealistic.
3.2. CII Corrections and CPP Simulation
3.2.1. Denominator correction (Sea/Port hybrid model)
3.2.1. Functional Correction (Braidotti Model)
4. Results
4.1. ABLOG-Based Annual Operating Data
4.1. Comparison Between Official and Corrected CII
4.2. Operating Profile: Speed–Time Distribution
4.3. SFOC Curve and Fuel-Consumption Model

4.4. Corrected CII Comparison (2024 Attained vs. 2025 Scenarios)
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- IMO Report of the Marine Environment Protection Committee on Its Eighty-Third Session (MEPC 83/24); International Maritime Organization (IMO);
- IMO 2018 GUIDELINES ON THE METHOD OF CALCULATION OF THE ATTAINED ENERGY EFFICIENCY DESIGN INDEX (EEDI) FOR NEW SHIPS; International Maritime Organization (IMO);
- Braidotti, L.; Bertagna, S.; Rappoccio, R.; Utzeri, S.; Bucci, V.; Marinò, A. On the Inconsistency and Revision of Carbon Intensity Indicator for Cruise Ships. Transp. Res. Part Transp. Environ. 2023, 118, 103662. [CrossRef]
- International Maritime Organization EEXI and CII - Ship Carbon Intensity and Rating System.
- International Maritime Organization Improving the Energy Efficiency of Ships.
- ClassNK Preliminary Report of IMO MEPC 83; NIPPON KAIJI KYOKAI;
- Lee, J.; Dao, V.Q.; Jeong, E.-S.; Noh, J.-H.; Lee, J.-U. Efficiency Comparison and Optimal Voyage Strategy of CPP Combination and Fixed Modes Based on Ship Operational Data. Preprints 2025. [CrossRef]
- Geertsma, R.; Visser, K.; Negenborn, R. Adaptive Pitch Control for Ships with Diesel Mechanical and Hybrid Propulsion. Appl. Energy 2018, 228, 2490–2509. [CrossRef]
- Tian, W.; Lang, X.; Zhang, C.; Yan, S.; Li, B.; Zang, S. Optimization of Controllable-Pitch Propeller Operations for Yangtze River Sailing Ships. J Mar Sci Eng 2024, 12, 1579. [CrossRef]
- Sang-Am Kim; Woo-Gyeong Wang A Study of Engine Performance and Exhaust Emission Characteristics of CPP Propulsion Ship with Operating Mode. J. Power Syst. Eng. 2022, 26, 91–100.
- Moon, J.-S.; Je, M.-A.; Hwang, S.-C. A Study on Performance and Exhaust Emission Characteristics According to the Controllable Pitch Propeller Operation of Two-Stroke Diesel Engine in Sailing Condition. J. Adv. Mar. Eng. Technol. 2024, 48, 384–391. [CrossRef]
- Marcelo Borba Understanding Load Calculation in Thrusters: Fixed Pitch (FPT) and Controllable Pitch Propellers (CPP) - Part 2. LinkedIn.
- Gao, F.; Bloch, F.; Brodtkorb, A.H. Novel Combinator Surface Concept for Efficiency Optimization of Ship Propulsion System. Ocean Eng. 2023, 280, 114489. [CrossRef]
- International Chamber of Shipping ENERGY EFFICIENCY OF SHIPS - Key Drivers of the CII Rating System; International Maritime Organization (IMO), 2025;
- Dagmar Nelissen, Anne Kleijn, Denise Hilster CII and EU Maritime Decarbonisation; CE Delft, 2023;
- Stolt-Nielsen Limited The Carbon Battle: Is CII out of Scope with the Real World?; 2024;
- Kim, H. IMO News Flash MEPC 83. Conv. Legis. Serv. Team.
- Lee, J.-U.; Lee, W.-J.; Jeong, E.-S.; Noh, J.-H.; Kim, J.-S.; Lee, J.-W. Algorithm for Monitoring Emissions Based on Actual Speed of Ships Participating in the Korean Vessel Speed Reduction Program. Energies 2022, 15, 9555. [CrossRef]
- International Maritime Organization Fourth IMO Greenhouse Gas Study (2020); London: International Maritime Organization;









| Year | ‘23 | ‘24 | ‘25 | ‘26 | ‘27 | ‘28 | ‘29 | ‘30 |
| Z | 5% | 7% | 9% | 11% | 13.625% | 16.25% | 18.875% | 21.5% |
| unit | Jan | Feb | Mar | Apr | May | Jun | Jul | Aug | Sep | Oct | Nov | Dec | Total | ||
| Main Engine | fuel | ton | 0.0 | 0.0 | 55.5 | 55.5 | 117.5 | 5.5 | 0.0 | 26.2 | 31.6 | 43.7 | 168.9 | 0.0 | 504.3 |
| time | hr | 0 | 0 | 184 | 181 | 382 | 3 | 0 | 73 | 93 | 137 | 495 | 0 | 1548 | |
| distance | nm | 0 | 0 | 2308 | 2341 | 4697 | 15 | 0 | 933 | 992 | 1697 | 7368 | 0 | 20351 | |
| Generator Engine | fuel | ton | 0.2 | 7.0 | 22.4 | 18.9 | 62.9 | 118.3 | 121.3 | 125.8 | 106.1 | 40.5 | 104.5 | 0.3 | 728.3 |
| time | hr | 24 | 72 | 216 | 192 | 360 | 720 | 744 | 744 | 720 | 360 | 672 | 24 | 4848 | |
| Boiler | fuel | ton | 40.8 | 25.7 | 27.5 | 22.8 | 15.7 | 20.4 | 17.6 | 16.9 | 15.4 | 14.1 | 13.5 | 28.9 | 259.2 |
| time | hr | 744 | 672 | 744 | 648 | 648 | 720 | 744 | 600 | 672 | 672 | 504 | 744 | 8112 |
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