Investigation of 3D Printed Underwater Thruster Propellers Using CFD and Structural Simulations

Krisztián Kiss-Nagy, G. Simongáti, Péter Ficzere
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Abstract

Unmanned Surface Vehicles (USV) and Autonomous or Remotely Operated Underwater vehicles (AUV, ROV) are developing and spreading rapidly in various industries. A common feature of these vehicles is that they are propelled by small plastic (or metal) propellers in most cases. Additive manufacturing can offer an excellent opportunity for rapid prototyping and the development of new models. This paper aims to investigate the fundamental aspects to be considered in the geometric design and manufacturing of small (diameter less than 100 mm) PLA (Polylactic acid) propellers 3D-printed using Fused Filament Fabrication (FFF) technology. In-service deformation of 3D-printed PLA ducted propellers with average geometry was investigated to determine the effect on the thrust and torque on the blades. For this purpose, one-directional FSI (Fluid Solid Interaction) simulations were performed using CFD (Computational Fluid Dynamics) and structural simulations. The propeller CAD geometries were generated using an in-house MATLAB script. The variable parameters of each version are the thickness, skew, and rake of the propeller blades. For the structural simulations, it was considered that the material properties of PLA parts printed with FFF technology depend on the print orientation. The results of the simulations show that except for extreme geometries (e.g., thin blades, skew, or rake more than 10°), the deformation of small PLA ducted propellers is not significant. CFD studies of the deformed geometries have shown that the resulting deformation has no significant effect on the thrust and torque of the propeller and thruster.
利用 CFD 和结构模拟研究 3D 打印水下推进器螺旋桨
无人水面航行器(USV)和自主或遥控水下航行器(AUV、ROV)正在各行各业迅速发展和普及。这些飞行器的共同特点是在大多数情况下由小型塑料(或金属)螺旋桨推进。增材制造为快速原型制作和新模型开发提供了绝佳机会。本文旨在研究使用熔融长丝制造(FFF)技术 3D 打印小型(直径小于 100 毫米)聚乳酸(PLA)螺旋桨的几何设计和制造过程中需要考虑的基本问题。研究了具有平均几何形状的 3D 打印聚乳酸管道螺旋桨的在役变形,以确定其对叶片推力和扭矩的影响。为此,使用 CFD(计算流体动力学)和结构模拟进行了单向 FSI(流固相互作用)模拟。螺旋桨 CAD 几何图形是使用内部 MATLAB 脚本生成的。每个版本的可变参数为螺旋桨叶片的厚度、倾斜度和斜度。在结构模拟中,考虑到使用 FFF 技术打印的聚乳酸部件的材料属性取决于打印方向。模拟结果表明,除了极端几何形状(如薄叶片、倾斜度或斜度超过 10°)外,小型聚乳酸管道螺旋桨的变形并不明显。对变形几何形状的 CFD 研究表明,由此产生的变形对螺旋桨和推进器的推力和扭矩没有明显影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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