论文标题
深水波使用多层浮力板
Deep water wave cloaking using a multi-layered buoyant plate
论文作者
论文摘要
潜在流动状态中表面重力波的轨迹受重力加速,水密度和海床深度的影响。虽然重力加速度和水密度大约恒定,但水深对表面重力波的影响呈指数下降,随着水深的增加。在浅水中,可以通过改变海床地形从表面波中掩盖物体,但是,随着水深度的增加,覆盖物成为一个挑战,因为没有物理参数要设计并随后会影响波浪传播。为了为有限的深度/深水波创建一个全向圆柱盖装置,我们提出了一个多层弹性板,该板在围绕着被夹住的圆柱体周围漂浮在表面上。浮力弹性板由轴对称,均匀和各向同性层制成,可调节工程的自由度并影响波浪的传播。我们首先开发了一种伪柔性方法,以有效地确定多层浮力板的波解。接下来,我们使用实编码的进化算法优化了浮力板的物理参数(即每一层的弹性和质量),以最大程度地减少对象的散射波的能量。我们表明,对目标波数的优化斗篷可将散射波的能量降低到99.2%。我们还量化了在结构上施加的波漂移力,并表明浮力板将施加的力减少了99.9%。
Trajectory of surface gravity waves in potential flow regime is affected by the gravitational acceleration, water density, and seabed depth. While the gravitational acceleration and water density are approximately constant, the effect of water depth on surface gravity waves exponentially decreases as the water depth increases. In shallow water, cloaking an object from surface waves by varying the seabed topography is possible, however, as the water depth increases, cloaking becomes a challenge since there is no physical parameter to be engineered and subsequently affects the wave propagation. In order to create an omnidirectional cylindrical cloaking device for finite-depth/deep-water waves, we propose a multi-layered elastic plate that floats on the surface around a to-be-cloaked cylinder. The buoyant elastic plate is made of axisymmetric, homogeneous, and isotropic layers which provides adjustable degrees of freedom to engineer and affect the wave propagation. We first develop a pseudo-spectral method to efficiently determine the wave solution for a multi-layered buoyant plate. Next, we optimize the physical parameters of the buoyant plate (i.e. elasticity and mass of every layer) using a real-coded evolutionary algorithm to minimize the energy of scattered-waves from the object. We show that the optimized cloak reduces the energy of scattered-waves as high as 99.2% for the target wave number. We also quantify the wave drift force exerted on the structures and show that the buoyant plate reduces the exerted force by 99.9%.