改进了一艘1800teu集装箱船的船体形状,以减少在役条件下的燃油消耗

IF 2.3 3区 工程技术 Q2 ENGINEERING, MARINE International Journal of Naval Architecture and Ocean Engineering Pub Date : 2023-01-01 DOI:10.1016/j.ijnaoe.2023.100520
Yurim Cho , Seung Myun Hwangbo , Jin-Won Yu , Jonghyeon Lee , Yechang Park , Woo-Hyuk Jang , Inwon Lee
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引用次数: 1

摘要

为了降低实际运行工况下的燃油消耗,本文对一艘1800teu集装箱船的船体形式进行了研究。与传统的船体外形设计实践在平海性能方面不同,本研究的船体外形设计旨在提高船舶在役状态下的性能,而这与波浪产生的附加阻力密切相关。为了减少由于波浪增加的阻力,船首的船体形式被修改为有更锋利的入口,垂直之间的长度增加。这使得波浪能够更平稳地跟随船头。通过一系列的CFD模拟,在波长λ/Lpp=0.5 ~ 2.0的规则波浪中预测了开发船体的附加阻力。采用频率积分法计算了不规则波处的附加阻力。随后,根据运行路线上的波浪统计数据计算每日燃油消耗量(DFOC)。本文研究的意义在于,采用规则波存在下的自由面CFD模拟进行了性能评价。最后通过一系列模型试验进行性能验证。结果发现,在服役条件下,最佳船体形状的DFOC和每日二氧化碳排放量减少了7.65%。此外,平海DFOC和CO2排放量也提高了3.43%。
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Improvement of hull form for an 1,800 TEU containership toward reduced fuel consumption under in-service conditions

In the present study, the hull form of an 1,800 TEU containership was developed to reduce fuel consumption under real operation conditions. Contrary to the conventional hull form design practice in terms of the calm-sea performance, the hull form design in this study was aimed at improving the performance of a ship under in-service condition, which is closely associated with the added resistance due to waves. In order to reduce the added resistance due to waves, the bow hull form was modified to have sharper entrance with increased length between perpendicular. This enabled the waves to follow the bow part more smoothly. The added resistance of the developed hull was predicted by means of a series of CFD simulations in regular waves with wavelengths λ/Lpp=0.52.0. The added resistance at irregular waves was calculated by frequency integration. The Daily Fuel Oil Consumption (DFOC) was subsequently calculated based on the wave statistics on the operating route. The significance of the present study lies in the point that the performance evaluation was carried out by means of the free-surface CFD simulation in the presence of regular waves. Final performance verification was made through a series of model tests. The resulting DFOC and daily CO2 emission for the optimal hull form under the in-service conditions was found to be reduced by 7.65%. Furthermore, the calm-sea DFOC and CO2 emission were also improved by 3.43%.

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来源期刊
CiteScore
4.90
自引率
4.50%
发文量
62
审稿时长
12 months
期刊介绍: International Journal of Naval Architecture and Ocean Engineering provides a forum for engineers and scientists from a wide range of disciplines to present and discuss various phenomena in the utilization and preservation of ocean environment. Without being limited by the traditional categorization, it is encouraged to present advanced technology development and scientific research, as long as they are aimed for more and better human engagement with ocean environment. Topics include, but not limited to: marine hydrodynamics; structural mechanics; marine propulsion system; design methodology & practice; production technology; system dynamics & control; marine equipment technology; materials science; underwater acoustics; ocean remote sensing; and information technology related to ship and marine systems; ocean energy systems; marine environmental engineering; maritime safety engineering; polar & arctic engineering; coastal & port engineering; subsea engineering; and specialized watercraft engineering.
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