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Energy effectiveness of ocean-going cargo ship under various operating conditions

机译:在各种运行条件下远洋货船的能源效率

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摘要

The increasing economic cost and environmental impact of maritime transportation necessitate the reduction of fossil fuel consumption of ocean-going cargo ships. Although fundamental ship propulsion system theory is well-known and is at a mature stage of development, there is still an enormous variety in the assessment methodology of (environmental) transport performance of ships. Furthermore, calibration of ship propulsion system model parameters with testbed, towing tank and full-scale measurement data is rare, as these measurements are both difficult and expensive. Finally, the effects of different power management strategies on the ultimate energy conversion effectiveness of typical cargo ships have rarely been investigated systematically. In this paper these three issues are discussed, addressed and solved for a representative benchmark chemical tanker. This ship was chosen to investigate the so-called energy conversion effectiveness under various propulsion control and electric power generation modes, as ample real ship data is available. The transport performance assessment of the ship's power plant is generalised for hybrid arrangements with either Power-Take-Off or Power-Take-In. The results show that an optimal combination of propulsion control, power management and voyage planning will further reduce the global fuel consumption and CO2 emissions produced by the shipping industry.
机译:海上运输日益增加的经济成本和环境影响使得必须减少远洋货船的化石燃料消耗。尽管基本的船舶推进系统理论是众所周知的,并且处于发展的成熟阶段,但是对船舶(环境)运输性能的评估方法仍存在很大差异。此外,很少有使用试验台,拖船和全尺寸测量数据对船舶推进系统模型参数进行标定的方法,因为这些测量既困难又昂贵。最后,很少有系统地研究不同功率管理策略对典型货船最终能量转换效率的影响。本文针对具有代表性的基准化学品船讨论,解决和解决了这三个问题。选择该船是为了研究在各种推进控制和发电模式下的所谓能量转换效率,因为有足够的实际船上数据。船舶动力装置的运输性能评估一般适用于采用动力起飞或动力起飞的混合动力布置。结果表明,推进控制,动力管理和航行计划的最佳组合将进一步降低航运业产生的全球燃料消耗和二氧化碳排放量。

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