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Nonlinear interaction and wave breaking with a submerged porous structure

机译:浸入式多孔结构的非线性相互作用和波浪破碎

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Numerical simulations are performed to investigate interactive velocity, streamline, turbulent kinetic energy, and vorticity perturbations in the near-field of a submerged offshore porous triangular structure, as Stokes waves of different heights pass through. The wave-structure interaction and free-surface breaking for the investigated flow situations are established based on solutions of 2D Reynolds Averaged Navier-Stokes equations in a Cartesian grid in combination with K-e turbulent closure and the volume of fluid methodology. The accuracy and stability of the adopted model are ascertained by extensive comparisons of computed data with the existing experimental and theoretical findings and through efficient predictions of the internal physical kinetics. Simulations unfold "clockwise" and "anticlockwise" rotation of fluid below the trough and the crest of the viscous waves, and the penetrated wave energy creates systematic flow perturbation in the porous body. The interfacial growths of the turbulent kinetic energy and the vorticity appear phenomenal, around the apex of the immersed structure, and enhanced significantly following wave breaking. Different values of porosity parameter and two non-porous cases have been examined in combination with varied incident wave height to reveal/analyze the nonlinear flow behavior in regard to local spectral amplification and phase-plane signatures. The evolution of leading harmonics of the undulating free-surface and the vertical velocity exhibits dominating roles of the first and the second modes in inducing the nonlinearity in the post-breaking near-field that penetrates well below the surface layer. The study further suggests the existence of a critical porosity that can substantially enhance the wave-shoaling and interface breaking. Published by AIP Publishing.
机译:进行数值模拟,以研究不同高度的斯托克斯波穿过时,水下近海多孔三角结构在近场中的相互作用速度,流线,湍动能和涡旋扰动。基于笛卡尔网格中二维雷诺平均Navier-Stokes方程的解,结合K-e湍流闭塞和流体体积方法,建立了所研究流动情况下的波结构相互作用和自由表面破坏。通过对计算数据与现有的实验和理论发现进行广泛的比较,以及对内部物理动力学的有效预测,可以确定所采用模型的准确性和稳定性。模拟在粘性波的波谷和波峰下方展开了流体的“顺时针”和“逆时针”旋转,并且渗透的波能量在多孔体内产生了系统的流动扰动。湍动能和涡度的界面增长在浸没结构的顶点附近出现了惊人现象,并在波浪破裂后显着增强。已经结合变化的入射波高度检查了孔隙率参数的不同值和两个无孔情况,以揭示/分析关于局部光谱放大和相平面特征的非线性流动行为。起伏的自由表面和垂直速度的超前谐波的演变表现出第一和第二模式的主导作用,该模式在很远穿透表层以下的破裂后近场中引起非线性。该研究进一步表明存在临界孔隙率,该孔隙率可以显着增强波散度和界面破裂。由AIP Publishing发布。

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