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Design of Efficient Propellers Using Variable-Fidelity Aerodynamic Analysis and Multilevel Optimization

机译:基于变保真空气动力学分析和多级优化的高效螺旋桨设计

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摘要

A multilevel design optimization framework was developed for the aerodynamic design of an electric aerial vehicle propeller in cruise conditions. The objective was to determine the optimum propeller shape to minimize torque at a given required thrust level and thus maximize overall propeller efficiency. A key concept of the design is the sequential application of a three-dimensional planform and two-dimensional section designs iteratively to make the best use of the complementary characteristics of gradient-free and gradient-based optimization strategies and the corresponding parameterization of the design space. Variable-fidelity aerodynamic analyses of blade element momentum theory and Navier-Stokes solutions were used to achieve computational efficiency and high accuracy. First, the optimal planform shape was determined by adjusting radius, twist angle, and chord lengths of the blade. Subsequently, the sectional airfoil design was performed at several spanwise locations. Given the new airfoil sections, the planform was redesigned to consider three-dimensional flow effects. The final optimized propeller design was validated using three-dimensional Navier-Stokes flow solvers and was tested in a wind-tunnel facility. Propeller efficiency was found to be improved by 5.7%. Finally, the fluid-structure interaction was analyzed to confirm that a required safety factor was ensured.
机译:开发了多级设计优化框架,用于巡航条件下电动飞行器螺旋桨的空气动力学设计。目的是确定最佳的螺旋桨形状,以在给定的所需推力水平下最大程度地减小扭矩,从而使总体螺旋桨效率最大化。设计的一个关键概念是依次应用三维平面图和二维截面设计,以充分利用无梯度和基于梯度的优化策略的互补特性以及设计空间的相应参数化。叶片元素动量理论和Navier-Stokes解决方案的可变保真空气动力学分析用于实现计算效率和高精度。首先,通过调整叶片的半径,扭转角和弦长来确定最佳的平面形状。随后,在几个翼展方向的位置进行了分段翼型设计。考虑到新的机翼截面,对平面图进行了重新设计,以考虑三维流动效应。使用三维Navier-Stokes流量求解器对最终优化的螺旋桨设计进行了验证,并在风洞设施中进行了测试。发现螺旋桨效率提高了5.7%。最后,分析了流固耦合,以确保所需的安全系数得以确保。

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  • 来源
    《Journal of propulsion and power》 |2015年第4期|1057-1072|共16页
  • 作者单位

    Korea Advanced Institute of Science and Technology, Daejeon 305-701, Republic of Korea;

    Korea Advanced Institute of Science and Technology, Daejeon 305-701, Republic of Korea;

    Korea Advanced Institute of Science and Technology, Daejeon 305-701, Republic of Korea;

    Korea Aerospace Research Institute, Daejeon 169-84, Republic of Korea;

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