Numerical algorithms for water waves with background flow over obstacles and topography

Author:

Ambrose David M.,Camassa Roberto,Marzuola Jeremy L.,McLaughlin Richard M.,Robinson Quentin,Wilkening JonORCID

Abstract

AbstractWe present two accurate and efficient algorithms for solving the incompressible, irrotational Euler equations with a free surface in two dimensions with background flow over a periodic, multiply connected fluid domain that includes stationary obstacles and variable bottom topography. One approach is formulated in terms of the surface velocity potential while the other evolves the vortex sheet strength. Both methods employ layer potentials in the form of periodized Cauchy integrals to compute the normal velocity of the free surface, are compatible with arbitrary parameterizations of the free surface and boundaries, and allow for circulation around each obstacle, which leads to multiple-valued velocity potentials but single-valued stream functions. We prove that the resulting second-kind Fredholm integral equations are invertible, possibly after a physically motivated finite-rank correction. In an angle-arclength setting, we show how to avoid curve reconstruction errors that are incompatible with spatial periodicity. We use the proposed methods to study gravity-capillary waves generated by flow around several elliptical obstacles above a flat or variable bottom boundary. In each case, the free surface eventually self-intersects in a splash singularity or collides with a boundary. We also show how to evaluate the velocity and pressure with spectral accuracy throughout the fluid, including near the free surface and solid boundaries. To assess the accuracy of the time evolution, we monitor energy conservation and the decay of Fourier modes and compare the numerical results of the two methods to each other. We implement several solvers for the discretized linear systems and compare their performance. The fastest approach employs a graphics processing unit (GPU) to construct the matrices and carry out iterations of the generalized minimal residual method (GMRES).

Funder

national science foundation

office of naval research

u.s. department of energy

Publisher

Springer Science and Business Media LLC

Subject

Applied Mathematics,Computational Mathematics

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Inviscid water-waves and interface modeling;Quarterly of Applied Mathematics;2024-01-19

2. Spatially quasi-periodic water waves of finite depth;Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences;2023-04

3. Free surface in two-dimensional potential flow: singularities, invariants and virtual fluid;Journal of Fluid Mechanics;2022-11-28

4. A unified approach towards the impossibility of finite time vanishing depth for incompressible free boundary flows;Proceedings of the American Mathematical Society;2022-10-19

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