Impact of Hull Condition and Propeller Surface Maintenance on Fuel Efficiency of Ocean-Going Vessels

Tien Anh Tran, Do Kyun Kim
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Abstract

The fuel consumption of marine diesel engines holds paramount importance in contemporary maritime transportation and shapes energy efficiency strategies of ocean-going vessels. Nonetheless, a noticeable gap in knowledge prevails concerning the influence of ship hull conditions and propeller roughness on fuel consumption. This study bridges this gap by utilizing artificial intelligence techniques in Matlab, particularly convolutional neural networks (CNNs) to comprehensively investigate these factors. We propose a time-series prediction model that was built on numerical simulations and aimed at forecasting ship hull and propeller conditions. The model's accuracy was validated through a meticulous comparison of predictions with actual ship-hull and propeller conditions. Furthermore, we executed a comparative analysis juxtaposing predictive outcomes with navigational environmental factors encompassing wind speed, wave height, and ship loading conditions by the fuzzy clustering method. This research's significance lies in its pivotal role as a foundation for fostering a more intricate understanding of energy consumption within the realm of maritime transport.
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船体状态和螺旋桨表面维修对远洋船舶燃油效率的影响
船用柴油机的燃料消耗在当代海上运输中占有至关重要的地位,并决定着远洋船舶的能源效率策略。然而,关于船体条件和螺旋桨粗糙度对燃料消耗的影响,知识普遍存在明显的差距。本研究通过利用Matlab中的人工智能技术,特别是卷积神经网络(cnn)来全面研究这些因素,从而弥补了这一差距。提出了一种建立在数值模拟基础上的时间序列预测模型,用于船体和螺旋桨状态的预测。通过将预测结果与实际船体和螺旋桨状况进行细致的比较,验证了模型的准确性。此外,我们通过模糊聚类方法将预测结果与包括风速、浪高和船舶装载条件在内的航海环境因素并置进行了比较分析。这项研究的重要意义在于,它为促进对海上运输领域内能源消耗的更复杂理解奠定了基础。
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