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A discontinuous Galerkin finite element model for river bed evolution under shallow flows

机译:浅水条件下河床演化的不连续Galerkin有限元模型

摘要

The accurate representation of morphodynamic processes and the ability to propagate changes in the riverbed over a wide range of space and time scales make the design and implementation of appropriate numerical schemes challenging. In particular, requirements of accuracy and stability for medium and long term simulations are difficult to meet. In this work, the derivation, design, and implementation of a discontinuous Galerkin finite element method (DGFEM) for sediment transport and bed evolution equations are presented. Numerical morphodynamic models involve a coupling between a hydrodynamic flow solver which acts as a driving force and a bed evolution model which accounts for sediment flux and bathymetry changes. A space DGFEM is presented based on an extended approach for systems of partial differential equations with nonconservative products, in combination with two intertwined Runge-Kutta time stepping schemes for the fast hydrodynamic and slow morphodynamic components. The resulting numerical scheme is verified by comparing simulations against (semi--)analytical solutions. These include the evolution of an initially symmetric, isolated bedform; the formation and propagation of a step in a straight channel due to a sudden overload of sediment discharge; the propagation of a travelling diffusive sediment wave in a straight channel; and, the evolution of an initially flat bed in a channel with a contraction. Finally, a comparison is made between numerical model and field data of a trench excavated in the main channel of the Parana river near Parana City, Argentina.
机译:形态动力学过程的精确表示以及在宽广的时空范围内在河床中传播变化的能力使适当的数值方案的设计和实现具有挑战性。特别是,中长期模拟的精度和稳定性要求很难满足。在这项工作中,提出了一种不连续的Galerkin有限元方法(DGFEM)用于泥沙运移和床层演化方程的推导,设计和实现。数值形态动力学模型涉及充当驱动力的水力流动求解器与解释沉积物通量和水深变化的河床演化模型之间的耦合。基于具有非保守乘积的偏微分方程组的扩展方法,提出了一种空间DGFEM,并结合了两个交织的Runge-Kutta时间步长方案,以实现快速流体动力和慢速形态动力分量。通过将模拟与(半)解析解进行比较,可以验证所得的数值方案。这些包括最初对称,孤立的床形的演化;由于沉积物排放的突然超载而在直通道中形成和传播了台阶;传播的扩散性泥沙波在直通道中的传播;在具有收缩的通道中初始平床的演变。最后,在阿根廷巴拉那市附近的巴拉那河主河道开挖的沟渠的数值模型和现场数据之间进行了比较。

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