Abstract
Emissions generated during ship manoeuvring in ports represent a critical source of local air pollution although this has received limited attention due to its short duration. In this research 45 berthing manoeuvres were conducted in a full-mission bridge simulator by 15 maritime pilots for bulk-carrier, Ro-Ro and container-ship scenarios. Using a hybrid bottom-up approach integrating Entec and EPA methodologies, emissions from both the own-ship and tugs were quantified. Total emissions varied between 112.91 and 306.98 kg, 127.01–195.06 kg, and 307.35–369.98 kg for the three vessel types, corresponding to 2.71, 1.54, and 1.20-fold differences, respectively. To explain this variability two experiential coefficients C1-C2 representing pilot familiarity with similar vessels were introduced and used as inputs in the MATLAB Regression-Learner-Toolbox. Linear and stepwise regression models yielded the most reliable predictive performance with R2 values of 0.70, 0.79 and 0.76 respectively. Complementary regression equations further enable straightforward estimation of emissions as a simplified and operational extension of the simulation results by substituting C1-C2 values, with negative coefficients confirming that greater pilot familiarity and experience reduce emissions. The framework demonstrates a cost-effective and transferable method for predicting manoeuvring emissions that can support the development of emission conscious training practices and greener port operations.
| Original language | English |
|---|---|
| Article number | 124280 |
| Journal | Ocean Engineering |
| Volume | 350 |
| DOIs | |
| Publication status | Published - 30 Mar 2026 |
Bibliographical note
Publisher Copyright:© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
Keywords
- Bottom-up methodologies
- Bridge simulator
- Decarbonisation
- Emission prediction model
- Manoeuvring emissions
- Sustainable port operations
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