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A Computational framework to design optimally loaded supercavitating hydrofoils by differential evolution algorithm and a new viscous lifting line method

机译:用微分演化算法和新的粘性提升线法设计最优加载超空泡翼的计算框架

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摘要

The engineering design of a three dimensional submerged hydrofoil operating at very high speeds is obtained leveraging a Differential Evolution (DE) approach. The final goal is to identify the optimal load distribution over the span of a super-cavitating hydrofoil by using a design by optimization approach driven by hydrodynamic analysis of complex, turbulent, multi-phase flows. We achieve this goal by modeling the load distribution over the hydrofoil by means of a B-spline curve, which provides a rigorous parametric description of the hydrofoil operating conditions through the points of the load distribution control polygon. The parametric model includes design variables representing the most relevant hydrofoil shape parameters. We predict hydrodynamic performance by means of a Viscous Lifting Line method specifically conceived for the application targeted in the present study. This computational model accounts for the strong non-linear hydrodynamic characteristics of super-cavitating hydrofoils. We demonstrate the validity of the proposed design by optimization framework for high speed super-cavitating hydrofoils showcasing two design applications, namely a fully submerged hydrofoil operating close to a rigid boundary and a surface-piercing hydrofoil with variable dihedral angle. A statistical analysis of DE algorithm is performed to assess its performance on such an engineering design problem.
机译:利用差分进化(DE)方法获得了以很高的速度运行的三维浸没式水翼的工程设计。最终目标是通过使用由复杂,湍流,多相流的水动力分析驱动的优化设计方法,确定超空化水翼跨度的最佳载荷分布。我们通过使用B样条曲线对水翼上的载荷分布进行建模来实现此目标,该曲线通过载荷分布控制多边形的点提供了对水翼运行条件的严格参数描述。参数模型包括代表最相关的水翼形状参数的设计变量。我们通过专门针对本研究目标设计的粘性提升线方法预测流体动力性能。该计算模型考虑了超空化水翼的强非线性水动力特性。我们通过优化框架论证了提出的设计的有效性,该优化框架展示了两种设计应用,即在接近刚性边界的情况下完全浸没的水翼和具有可变二面角的表面穿孔水翼的两种设计应用。对DE算法进行统计分析,以评估其在此类工程设计问题上的性能。

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