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Structural response of oscillating foil in water

机译:水中振荡箔的结构响应

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Harmonic oscillations of NACA 0012 airfoils in water are numerically simulated to assess the corresponding structural loads due to the generated forces. An appropriately devised procedure estimates the unsteady effect caused by the foil acceleration, i.e. the added mass effect This is found to play a very important role as the resulting inertia forces are largely enhanced in the range of analysed parameters. The influence of the wing mass is investigated and it is found that light wings generate forces larger than those generated by heavy wings, as light wings accelerate more than heavy wings. The resulting bending stresses and unsteady deflections are calculated by modelling the wings as elastic cantilevers with uniform distributed loads. The maximum unsteady deflection is found to be about 1% of the wing span, that is, the fluid-structure interaction problem can be considered decoupled in the present analysis. It is also shown that heavy, rigid wings appear to be more suitable for the swimming mode corresponding to steady cruise, as the applied stresses result smaller than those obtained for light, flexible wings. The added mass effect could instead be exploited when required, by using lighter propulsors, which generate larger forces.
机译:数值模拟了NACA 0012机翼在水中的谐波振荡,以评估由于产生的力而产生的相应结构载荷。适当设计的程序可以估计由箔片加速度引起的不稳定影响,即附加的质量效应。由于在分析参数范围内所产生的惯性力大大增强,因此,这起着非常重要的作用。研究了机翼质量的影响,发现轻机翼比重机翼产生的力更大,因为轻机翼比重机翼的加速度更大。通过将机翼建模为具有均匀分布载荷的弹性悬臂,可以计算出产生的弯曲应力和非稳态挠度。发现最大的非定常挠度约为机翼跨度的1%,也就是说,在本分析中可以将流固耦合问题视为解耦。还显示出,沉重的刚性机翼似乎更适合于与稳定巡航相对应的游泳模式,因为所施加的应力结果要小于轻质柔性机翼所获得的应力。当需要时,可以通过使用产生更大力的更轻的推进器来利用增加的质量效应。

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