Submitted:
05 September 2025
Posted:
08 September 2025
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Abstract
This study examines the efficiency trade-offs of Controllable Pitch Propeller(CPP) systems by comparing Combination and Fixed operation modes using real ship operational data. The analysis focuses on mechanical efficiency(ηmech), propulsive efficiency expressed through the normalized Relative Propulsive Efficiency Index(RPEInorm), and fuel consumption. Combination mode consistently maintained higher ηmech across all load conditions, with pronounced advantages at low load and low speed(< 50% load, < 12 knots), where both propulsive efficiency and fuel economy improved. In contrast, Fixed mode outperformed Combination mode at high load and high speed, exceeding approximately 50% load and 12 knots, as propeller performance approached its optimal operating point despite some sacrifice in engine efficiency. To integrate these effects, a proxy overall efficiency index (ηoverall,proxy = ηmech × RPEInorm) was introduced, revealing a crossover point at 0.525 load where the efficiency dominance shifted between modes. These findings demonstrate that neither mode is universally superior, but rather their advantages depend on operating conditions. The results provide practical insights for adaptive operational strategies, enabling real-time switching between modes to optimize fuel consumption and overall propulsion performance while supporting compliance with environmental regulations.
Keywords:
1. Introduction
1.1. Background
1.2. Research Necessity and Hypothesis
2. Literature Study
2.1. Comparative Studies on CPP Operating Modes
2.2. Studies on Propulsion System Matching Optimization
2.3. Propeller Design and Performance Optimization
2.4. Propulsive and Transmission Efficiency of Shafting Systems
2.5. Studies on Operating Mode Selection Strategies and Optimization
3. Methodology
3.1. Data and Methodolog
3.2. Performance Indicators
4. Results
4.1. Power vs. Ship Speed
4.2. Ship Speed vs. Load
4.3. Pitch–Torque Relationship
4.4. Relationship Between Ship Speed and Fuel Consumption
4.5. Mechanical Efficiency vs. Load

4.6. Analysis of the Relative Propulsive Efficiency Index (RPEI)
4.7. Overall Efficiency Proxy

5. Discussion and Conclusion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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| Parameter | Description | Parameter | Description |
| Main engine type | HYUNDAI-MAN B&W 6S40ME-B9.5-LP SCR | Propeller shaft part 1 | 330 mm * 1494 mm (Inner Dia. 115 mm) |
| Max. continuous output (Full pitch) | 6618 kW | Propeller shaft part 2 | 380 mm * 3290 mm (Inner Dia. 115 mm) |
| Max. continuous output (Zero pitch) | 726.4 kW | Propeller shaft part 3 | 398 mm * 1876 mm (Inner Dia. 115 mm) |
| Revolution | 146 rpm | No. 1 Intermediate shaft | Φ330 mm * 11,000 mm |
| Cylinder bore | 400 mm | No. 2 Intermediate shaft | Φ330 mm * 11,000 mm |
| Stroke | 1770 mm | No. 3 Intermediate shaft | Φ330 mm * 9,781 mm |
| Number of cylinders | 6 | Number of propeller blades | 4 ea |
| Pmax | 185 bar | Propeller mass | 8346 kg |
| Mean indicated pressure | 21.38 bar | Propeller diameter | 4.0 m |
| Indicator | Definition | Meaning | Application |
| Load | IHP / MCR | Relative engine load level | Classification of operating condition |
| SFC | g/kWh(baseline:173.4) | Fuel efficiency per unit power | Basis for fuel consumption analysis |
| FC | (SFC × IHP) (ton/h) | Fuel consumption per hour | Evaluation of operational economy |
| ηmech | SHP / IHP | Mechanical efficiency | Comparison of engine performance |
| RPEInorm | (V3 / SHP), normalized | Relative propulsive efficiency index | Comparison of propulsive performance by mode |
| ηoverall,proxy | ηmech×RPEInorm | Integrated efficiency index combining engine and propeller | Assessment of overall propulsion efficiency |
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