在开阔水域条件下运行的水面穿孔推进器的实验数据集

IF 2.3 3区 工程技术 Q2 ENGINEERING, MARINE International Journal of Naval Architecture and Ocean Engineering Pub Date : 2024-01-01 DOI:10.1016/j.ijnaoe.2024.100625
Jeongsoo Ha , Jaeheon Kim , Shin Hyung Rhee
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引用次数: 0

摘要

本实验数据集提供了各种工作条件下水面推进器的开水性能特征。开水试验是在拖曳槽中进行的,考虑了不同的螺距比、浸入比、轴倾角和弗劳德数。模型螺旋桨采用了两种不同桨距比的改进型 841-B。对每种条件下的推力、扭矩和效率进行了测量和计算。使用高速摄像机观察了螺旋桨周围的通风腔。数据集包括对用于改变轴倾角的楔形支撑块和用于消除表面穿孔条件下喷雾对数据采集系统影响的喷雾防护罩的详细描述。此外,还介绍了流线型水下套管和旨在防止水流影响推进性能的拍摄技术。这些数据集可用于加深了解工作条件对表面穿孔螺旋桨推进性能的影响。这些数据集将作为预测水面推进器开放水域性能的基准数据。
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Experimental datasets of surface piercing propellers operating in open-water conditions
The present experimental datasets provide the open-water performance characteristics of surface-piercing propellers under various operating conditions. The open-water tests were conducted in a towing tank, considering various pitch ratios, immersion ratios, shaft inclination angles, and Froude numbers. The model propellers were of two different modified shapes of the Model-841-B with different pitch ratios. Thrust, torque, and efficiency were measured and calculated for each condition. A high-speed camera was used to observe the ventilated cavity around the propeller. The datasets included a detailed description of wedge-shaped support blocks to vary shaft inclination angles and a spray shield to eliminate the effects of spray on the data acquisition system under surface-piercing conditions. Descriptions were provided for a streamlined underwater casing and filming techniques designed to prevent the flow from affecting propulsion performance. The datasets can be used to enhance the understanding of the effects of operating conditions on the propulsion performance of surface-piercing propellers. The datasets will serve as benchmark data for predicting the open-water performance of surface-piercing propellers.
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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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