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地面效应中滚动和俯仰摆动翼推进。

Rolling and pitching oscillating foil propulsion in ground effect.

机构信息

Ocean Engineering Department, University of Rhode Island, Narragansett, RI 02882 United States of America.

出版信息

Bioinspir Biomim. 2017 Nov 27;13(1):016003. doi: 10.1088/1748-3190/aa8a12.

DOI:10.1088/1748-3190/aa8a12
PMID:28869422
Abstract

In this paper, we investigate the effect of operating near a solid boundary on the forces produced by harmonically oscillating thrust-generating foils. A rolling and pitching foil was towed in a freshwater tank in a series of experiments with varying kinematics. Hydrodynamic forces and torques were measured in the freestream and at varying distances from a solid boundary, and changes in mean lift and thrust were found when the foil approached the boundary. The magnitude of this ground effect exhibited a strong nonlinear dependence on the distance between the foil and the boundary. Significant effects were found within three chord lengths of the boundary, and ground effect can be induced at greater distances from the boundary by biasing the tip of the foil toward the boundary. Lift coefficients changed by as much as [Formula: see text] at the closest approach to the ground, with changes [Formula: see text] [Formula: see text] for all cases across Strouhal numbers ranging from [Formula: see text] to [Formula: see text], and nominal maximum angle of attack ranging from [Formula: see text] to [Formula: see text]. The ubiquity of the ground effect in high thrust kinematics suggests that the ground effect can provide a passive obstacle avoidance capability for foil propelled vehicles. By comparison with previous experimental work, we find that the ground effect experienced by a high-aspect ratio rolling and pitching foil is a fully three-dimensional phenomenon, as it is not accurately predicted when two-dimensional flow and/or two-dimensional kinematics are enforced. While two-dimensional foil kinematics are more easily modeled for numerical studies, three-dimensional foil kinematics may be more practical for real world implementation in underwater vehicles.

摘要

在本文中,我们研究了在靠近固体边界操作对谐波振荡推力产生翼型产生的力的影响。在一系列具有不同运动学的实验中,滚动和俯仰翼型在淡水箱中被拖曳。在自由流中和距固体边界不同距离处测量了水动力和扭矩,当翼型接近边界时,发现平均升力和推力发生了变化。这种地面效应的大小表现出与翼型和边界之间距离的强烈非线性依赖关系。在边界三个弦长范围内发现了显著的影响,并且通过使翼型的尖端向边界倾斜,可以在距边界更远的距离处产生地面效应。在最接近地面的情况下,升力系数变化高达[Formula: see text],而在所有情况下,从斯特劳哈尔数[Formula: see text]到[Formula: see text],名义最大迎角从[Formula: see text]到[Formula: see text],变化[Formula: see text] [Formula: see text]。在高推力运动学中地面效应的普遍性表明,地面效应可为翼型推进车辆提供被动避障能力。与以前的实验工作相比,我们发现,高纵横比滚动和俯仰翼型所经历的地面效应是完全三维的现象,因为当强制二维流动和/或二维运动学时,无法准确预测。虽然二维翼型运动学更便于数值研究建模,但对于水下车辆的实际应用,三维翼型运动学可能更实用。

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Rolling and pitching oscillating foil propulsion in ground effect.地面效应中滚动和俯仰摆动翼推进。
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Biomimetics (Basel). 2025 Mar 30;10(4):212. doi: 10.3390/biomimetics10040212.
2
Comparative Analysis of the Self-Propelled Locomotion of a Pitching Airfoil near the Flat and Wavy Ground.平坦和波浪形地面附近俯仰翼型自推进运动的对比分析
Biomimetics (Basel). 2022 Dec 12;7(4):239. doi: 10.3390/biomimetics7040239.
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Numerical investigation on the aerodynamic efficiency of bio-inspired corrugated and cambered airfoils in ground effect.
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Sci Rep. 2022 Nov 9;12(1):19117. doi: 10.1038/s41598-022-23590-2.
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The Ground Effect in Anguilliform Swimming.鳗鲡形游泳中的地面效应
Biomimetics (Basel). 2020 Mar 3;5(1):9. doi: 10.3390/biomimetics5010009.