Non-Hydrostatic Discontinuous/Continuous Galerkin Model for Wave Propagation, Breaking and Runup

被引:3
|
作者
Calvo, Lucas [1 ]
De Padova, Diana [2 ]
Mossa, Michele [2 ]
Rosman, Paulo [3 ]
机构
[1] Univ Tecnol Panama, Ctr Invest Hidraul & Hidrotecn, Panama City 081907289, Panama
[2] Polytech Univ Bari, DICATECh Dept Civil Environm Land Bldg Engn & Che, Via E Orabona 4, I-70125 Bari, Italy
[3] Univ Fed Rio de Janeiro, Dept Recursos Hidricos & Meio Ambiente DRHIMA, BR-21941901 Rio De Janeiro, RJ, Brazil
关键词
depth-integrated; discontinuous galerkin finite element method; non-hydrostatic; wave breaking; wave propagation; wave runup; NUMERICAL-SIMULATION; HYDRODYNAMICS; ALGORITHM; SOLVER; FLOWS;
D O I
10.3390/computation9040047
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
This paper presents a new depth-integrated non-hydrostatic finite element model for simulating wave propagation, breaking and runup using a combination of discontinuous and continuous Galerkin methods. The formulation decomposes the depth-integrated non-hydrostatic equations into hydrostatic and non-hydrostatic parts. The hydrostatic part is solved with a discontinuous Galerkin finite element method to allow the simulation of discontinuous flows, wave breaking and runup. The non-hydrostatic part led to a Poisson type equation, where the non-hydrostatic pressure is solved using a continuous Galerkin method to allow the modeling of wave propagation and transformation. The model uses linear quadrilateral finite elements for horizontal velocities, water surface elevations and non-hydrostatic pressures approximations. A new slope limiter for quadrilateral elements is developed. The model is verified and validated by a series of analytical solutions and laboratory experiments.
引用
收藏
页数:25
相关论文
共 50 条
  • [1] Non-hydrostatic Galerkin Model with Quadratic Pressure for Wave Propagation
    Calvo, Lucas
    De Padova, Diana
    Mossa, Michele
    PROCEEDINGS OF THE 39TH IAHR WORLD CONGRESS, 2022, : 4140 - 4147
  • [2] A GPU-accelerated continuous and discontinuous Galerkin non-hydrostatic atmospheric model
    Abdi, Daniel S.
    Wilcox, Lucas C.
    Warburton, Timothy C.
    Giraldo, Francis X.
    INTERNATIONAL JOURNAL OF HIGH PERFORMANCE COMPUTING APPLICATIONS, 2019, 33 (01): : 81 - 109
  • [3] Multi-scale calibration of a non-hydrostatic model for wave runup simulation
    Amini, Erfan
    Marsooli, Reza
    OCEAN ENGINEERING, 2023, 285
  • [4] A depth-integrated non-hydrostatic model for nearshore wave modelling based on the discontinuous Galerkin method
    Ran, Guoquan
    Zhang, Qinghe
    Li, Longxiang
    OCEAN ENGINEERING, 2021, 232
  • [5] A Discontinuous Galerkin Method for Non-hydrostatic Shallow Water Flows
    Jeschke, Anja
    Vater, Stefan
    Behrens, Joern
    FINITE VOLUMES FOR COMPLEX APPLICATIONS VIII-HYPERBOLIC, ELLIPTIC AND PARABOLIC PROBLEMS, 2017, 200 : 247 - 255
  • [6] Two-Layer Non-Hydrostatic Scheme for Simulations of Wave Runup
    Ginting, M. A.
    Pudjaprasetya, S. R.
    Adytia, D.
    JOURNAL OF EARTHQUAKE AND TSUNAMI, 2019, 13 (5-6)
  • [7] Simulation of wave breaking based on non-hydrostatic equations
    Zou G.
    Zhang Q.
    Zhang N.
    1600, Shanghai Jiaotong University (50): : 437 - 442
  • [8] Modelling Wave Breaking across Coral Reefs Using a Non-Hydrostatic Model
    Shi, Jian
    Zhang, Chi
    Zheng, Jinhai
    Tong, Chaofeng
    Wang, Peng
    Chen, Songgui
    JOURNAL OF COASTAL RESEARCH, 2018, : 501 - 505
  • [9] The comparisons on wave breaking captured by non-hydrostatic model with or without turbulent dissipation
    He, Dongbin
    He, Yanli
    Mao, Hongfei
    Li, Junyu
    FRONTIERS IN MARINE SCIENCE, 2025, 12
  • [10] Depth-induced wave breaking in a non-hydrostatic, near-shore wave model
    Smit, Pieter
    Zijlema, Marcel
    Stelling, Guus
    COASTAL ENGINEERING, 2013, 76 : 1 - 16