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Oscillating Hydrofoil Propulsion for Human-Powered Watercraft Applications

机译:摆动翼型推进器,用于人力船舶应用

摘要

Unlike conventional propellers, flapping wings may generate large amplitude oscillating forces, which can make them difficult to incorporate into a craft design. This is particularly true for a single, vertically oscillating hydrofoil, as part of a surface water craft where the cyclic lift of the hydrofoil disrupts the craft stability. This thesis begins by reviewing the history of human-powered watercraft with a focus on those having flapping foil propellers. This review combined with a review of the literature provides a balanced overview on how flapping wing propellers are currently designed. Current literature shows that although the mean performance of an oscillating foil has been determined in terms of the Strouhal number and the angle of attack, relatively little describes performance directly in terms of the foil motion. Hence, predicting temporal hydrodynamic forces acting on an oscillating foil is difficult. This provides motivation for research investigating the temporal performance of an oscillating foil directly in terms of its motion.In this thesis, experimental equipment designed to measure the hydrodynamic forces on a heaving object is presented. Key features of the equipment are analysed to show how measurement accuracy is maintained. Experimental measurements of unsteady hydrodynamic forces acting on a heaving cylinder, flat plate, symmetrical foil, and an asymmetrical foil are analysed with respect to the heaving motion. Firstly, the object motion is limited to one degree of freedom; pure heaving with zero forward velocity, to investigate the start-up conditions of the oscillating hydrofoil propeller. Secondly, these results are expanded on by adding a steady forward velocity component to the object motion to investigate how the hydrodynamic forces on the object are affected by the cross-flow. Experimental temporal hydrodynamic force measurements presented in this thesis show how the relative composition of hydrodynamic drag and inertia forces change with oscillating frequency, and forward velocity, affecting the phase, magnitude, and profile of the force cycles. This composition is also influenced by the cross-section of the oscillating object and the presence of a free surface. Current marine engineering equations for unsteady hydrodynamic forces on an object in an oscillating flow are validated for a cylinder. However, they are found to contain significant error when predicting the unsteady hydrodynamic forces on an oscillating hydrofoil. Contributions of this thesis link oscillating foil propulsion research to common marine engineering equations with the intent of making flapping wing propeller design more accessible to the general engineering community.
机译:与常规螺旋桨不同,襟翼可能会产生较大的振幅振荡力,这可能会使它们难以融入飞机设计中。对于作为地表水船一部分的单个垂直振动的水翼而言尤其如此,其中水翼的周期性升力破坏了船的稳定性。本论文首先回顾了人类水运工具的历史,重点是那些具有拍翼式螺旋桨的人。这份综述与文献综述相结合,提供了有关当前如何设计襟翼式螺旋桨的均衡概述。当前的文献表明,尽管已经根据斯特劳哈尔数和攻角确定了振荡箔片的平均性能,但是很少有人直接描述箔片的运动性能。因此,很难预测作用在振荡箔片上的时间流体动力。这为直接研究振动箔片的时态性能提供了动力。本文提出了一种设计用于测量起伏物体上流体动力的实验设备。对设备的关键功能进行了分析,以显示如何保持测量精度。相对于起伏运动,分析了作用在起伏圆筒,平板,对称箔和不对称箔上的非稳态流体动力的实验测量值。首先,物体运动被限制为一个自由度。以零前向速度进行纯沉沉,以研究摆动水翼式螺旋桨的启动条件。其次,通过将稳定的前进速度分量添加到对象运动中来扩展这些结果,以研究错流如何影响对象上的流体动力。本文提出的实验性临时水动力力测量结果表明,水动力阻力和惯性力的相对组成如何随振荡频率和前进速度而变化,从而影响力循环的相位,大小和轮廓。该成分还受到振荡物体的横截面和自由表面的存在的影响。对于气缸,验证了当前海洋工程方程式对振荡流中的对象上的非恒定流体动力的影响。但是,在预测振荡水翼上的不稳定流体动力时,发现它们包含重大误差。本论文的贡献在于将振动箔推进研究与常见的海洋工程方程式联系起来,目的是使襟翼式螺旋桨设计更容易为一般工程界所用。

著录项

  • 作者

    Fernandez Rajan;

  • 作者单位
  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 en
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