Effect of flap angle on transom stern flow of a High speed displacement Surface combatant

IF 0.7 Q4 ENGINEERING, OCEAN Ocean Systems Engineering-An International Journal Pub Date : 2020-03-01 DOI:10.12989/OSE.2020.10.1.001
Y. H. Kumar, R. Vijayakumar
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引用次数: 8

Abstract

Hydrodynamic Drag of Surface combatants pose significant challenges with regard to fuel efficiency and exhaust emissions. Stern flaps have been used widely as an energy saving device, particularly by the US Navy (Hemanth et al. 2018a, Hemanth Kumar and Vijayakumar 2018b). In the present investigation the effect of flap turning angle on drag reduction is numerically and experimentally studied for a high-speed displacement surface combatant fitted with a stern flap in the Froude number range of 0.17-0.48. Parametric investigations are undertaken for constant chord length & span and varying turning angles of 5 10 & 15. Experimental resistance values in towing tank tests were validated with CFD. Investigations revealed that pressure increased as the flow velocity decreased with an increase in flap turning angle which was due to the centrifugal action of the flow caused by the induced concave curvature under the flap. There was no significant change in stern wave height but there was a gradual increase in the stern wave steepness with flap angle. Effective length of the vessel increased by lengthening of transom hollow. In low Froude number regime, flow was not influenced by flap curvature effects and pressure recovery was marginal. In the intermediate and high Froude number regimes pressure recovery increased with the flap turning angle and flow velocity.
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襟翼角对高速排水量水面舰艇尾流的影响
水面战舰的水动力阻力对燃油效率和废气排放提出了重大挑战。船尾襟翼已被广泛用作节能装置,特别是在美国海军(Hemanth et al. 2018a, Hemanth Kumar and Vijayakumar 2018b)。本文对高速排水量水面舰艇在弗劳德数0.17 ~ 0.48范围内安装尾翼时,尾翼转角对减阻的影响进行了数值和实验研究。参数调查进行了恒定的弦长和跨度和不同的转角5 - 10和15。利用CFD对拖曳槽试验的阻力值进行了验证。研究表明,随着襟翼转角的增大,流速减小,压力增大,这是由于襟翼下的凹曲率引起气流的离心作用。尾波高度变化不明显,但尾波陡度随桨叶角度的增加而逐渐增大。通过延长尾梁中空,增加了容器的有效长度。在低弗劳德数状态下,流动不受襟翼曲率影响,压力恢复很小。在中、高弗劳德数工况下,压力恢复随襟翼转角和流速的增大而增大。
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期刊介绍: The OCEAN SYSTEMS ENGINEERING focuses on the new research and development efforts to advance the understanding of sciences and technologies in ocean systems engineering. The main subject of the journal is the multi-disciplinary engineering of ocean systems. Areas covered by the journal include; * Undersea technologies: AUVs, submersible robot, manned/unmanned submersibles, remotely operated underwater vehicle, sensors, instrumentation, measurement, and ocean observing systems; * Ocean systems technologies: ocean structures and structural systems, design and production, ocean process and plant, fatigue, fracture, reliability and risk analysis, dynamics of ocean structure system, probabilistic dynamics analysis, fluid-structure interaction, ship motion and mooring system, and port engineering; * Ocean hydrodynamics and ocean renewable energy, wave mechanics, buoyancy and stability, sloshing, slamming, and seakeeping; * Multi-physics based engineering analysis, design and testing: underwater explosions and their effects on ocean vehicle systems, equipments, and surface ships, survivability and vulnerability, shock, impact and vibration; * Modeling and simulations; * Underwater acoustics technologies.
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