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Hydrodynamic Performance Analysis of a Collective and Cyclic Pitch Propeller under Bollard Pull Condition through Numerical Evaluation of Two-Dimensional Pitching Hydrofoils

机译:通过二维变桨水翼的数值评估,对在拉紧状态下​​集体循环桨的水动力性能进行分析

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摘要

Propulsion and maneuvering of autonomous underwater vehicles require a combination of effective and efficient operation at both high and low speeds. The collective and cyclic pitch propeller (CCPP) is a novel system designed to provide the required operational flexibility through control of the propeller's blade pitch. Collective pitch control governs the forward generated thrust, whereas cyclic pitch control governs the generated maneuvering force(s)/side-force(s). In this article, a numerical analysis into the CCPP's hydrodynamic performance at bollard pull is set-up, reducing the complex three-dimensional flow problem to a two-dimensional problem. Through a force break-down model, the CCPP's hydrodynamic performance is related and matched to the operation of a pitching hydrofoil. Analysis of the two-dimensional numerical results can thereby provide insights into the performance of the three-dimensional CCPP. First, the performance of the pitching hydrofoils is investigated as such, relating the generated lift, drag, and moment to the occurrence of dynamic stall. Next, the methodology's applicability and limitations are discussed by comparing the umerical results with recent experiment CCPP work to allow the model to be used for a numerical evaluation of the CCPP's performance. Under the evaluated conditions, testing a range of collective and cyclic pitch angles under bollard pull, the side-force generation by the CCPP is shown to be highly dependent on the generated drag force at higher collective pitch angles. At low pitch angles, the side-force generation is controlled by the lift produced over the pitching blades, and efficient but not highly effective. As the collective pitch is increased, the generated drag affects both the effectiveness of the side-force and the side-force efficiency, defined by the large resulting side-force orientation. At larger collective pitch angles, the lift forces are overtaken by the drag generation, resulting in effective but inefficient side-force generation.
机译:自主水下航行器的推进和操纵需要高速和低速下有效和高效操作的结合。集体和周期性螺距螺旋桨(CCPP)是一种新颖的系统,旨在通过控制螺旋桨的桨距来提供所需的操作灵活性。集体变桨控制控制着向前产生的推力,而周期性变桨控制控制着产生的操纵力/侧向力。在本文中,建立了对CCPP系船柱拉动时水动力性能的数值分析,从而将复杂的三维流动问题简化为二维问题。通过力分解模型,CCPP的水动力性能与俯仰水翼的运行相关并相匹配。二维数值结果的分析从而可以提供对三维CCPP性能的深入了解。首先,照此研究俯仰水翼的性能,将产生的升力,阻力和力矩与动态失速的发生联系起来。接下来,通过将数值结果与最近的CCPP实验工作进行比较,讨论该方法的适用性和局限性,以允许该模型用于CCPP性能的数值评估。在评估的条件下,在系船柱拉动下测试一定范围的集体俯仰角和周期性俯仰角时,表明CCPP产生的侧向力高度依赖于更高的集体俯仰角时产生的阻力。在低俯仰角时,侧向力的产生是由俯仰叶片上产生的升力控制的,虽然有效,但不是很有效。随着总螺距的增加,所产生的阻力会同时影响侧向力的有效性和侧向力效率,而侧向力效率则由较大的侧向力定向定义。在较大的总俯仰角处,产生的阻力会抵消提升力,从而产生有效但效率低的侧向力。

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