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Experimental and numerical FSI study of compliant hydrofoils

机译:顺应水翼的实验和数值FSI研究

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摘要

A propulsion system based on tandem hydrofoils is studied experimentally and numerically. An experimental measurement system is developed to extract hydrodynamic loads on the foils and capture their twisting deformation during operation. The measured data allowed us to assess the efficiency of the propulsion system as a function of travel speed and stroke frequency. The numerical simulation of the propulsion system is also presented and involves 3D, full-scale fluid-structure interaction (FSI) computation of a single (forward) foil. The foil is modeled as a combination of the isogeometric rotation-free Kirchhoff-Love shell and bending-stabilized cable, while the hydrodynamics makes use of the finite-element-based arbitrary Lagrangian-Eulerian variational multiscale formulation. The large added mass is handled through a quasi-direct FSI coupling technique. The measurement data collected is used in the validation of the FSI simulation, and excellent agreement is achieved between the predicted and measured hydrodynamic loads and foil twisting motion.
机译:通过实验和数值方法研究了基于串联水翼的推进系统。建立了一种实验测量系统,用于提取箔片上的流体动力载荷并捕获其在运行过程中的扭曲变形。测量数据使我们能够评估推进系统的效率与行进速度和冲程频率的关系。还介绍了推进系统的数值模拟,涉及单个(正向)翼的三维全尺寸流固耦合 (FSI) 计算。箔片被建模为等几何无旋转基尔霍夫-洛夫壳和弯曲稳定电缆的组合,而流体动力学则利用基于有限元的任意拉格朗日-欧拉变分多尺度公式。通过准直接FSI耦合技术处理大量增加的质量。收集的测量数据用于FSI模拟的验证,预测和测量的流体动力载荷与箔扭转运动之间取得了良好的一致性。

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