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A Numerical Tool for the Design/Analysis of Dual-Cavitating Propellers

机译:用于双空螺旋桨设计/分析的数值工具

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The motivation of this work is to develop a numerical tool to explore a new propellerdesign with dual-cavitating characteristics, i.e., one that is capable of operating efficiently at low speeds in subcavitating (fully wetted) mode and at high speeds in the supercavitating mode. To compute the hydrodynamic performance, a three-dimensional (3D) potential-based boundary element method (BEM) is presented. The BEM is able to predict complex cavitation patterns and blade forces on fully submerged and partially submerged propellers in subcavitating, partially cavitating, fully cavitating, and ventilated conditions. To study the hydroelastic characteristic of potential designs, the 3D BEM is coupled with a 3D finite element method (FEM) to compute the blade stresses, deflections, and dynamic characteristics. An overview of the formulation for both the BEM and FEM is presented. The numerical predictions are compared to experimental measurements for the well-known Newton Rader (NR) three-bladed propeller series with varying pitch and blade area ratios. Comparison of the performance of the Newton Rader blade section to conventional blade sections is presented.
机译:这项工作的目的是开发一种数值工具,以探索一种具有双气穴特性的新型螺旋桨设计,即能够在子气穴(完全润湿)模式下以低速高效运行,在超气穴模式下以高速进行高效运行的螺旋桨设计。为了计算流体力学性能,提出了一种基于三维(3D)势能的边界元方法(BEM)。 BEM能够预测在空化,部分空化,完全空化和通风情况下完全淹没和部分浸没的螺旋桨上的复杂空化模式和叶片力。为了研究潜在设计的水弹性特性,将3D BEM与3D有限元方法(FEM)结合使用以计算叶片应力,挠度和动态特性。概述了BEM和FEM的公式。将数值预测值与具有不同螺距和叶片面积比的著名牛顿Rader(NR)三叶螺旋桨系列的实验测量结果进行比较。提出了牛顿拉德叶片截面与常规叶片截面的性能比较。

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