Fully implicit local time-stepping methods for advection-diffusion problems in mixed formulations

被引:4
|
作者
Hoang, Thi-Thao-Phuong [1 ]
机构
[1] Auburn Univ, Dept Math & Stat, Auburn, AL 36849 USA
基金
美国国家科学基金会;
关键词
Heterogeneous problems; Advection-diffusion; Mixed formulations; Time-dependent Steklov-Poincar; Optimized Schwarz waveform relaxation; Local time-stepping; WAVE-FORM RELAXATION; DOMAIN DECOMPOSITION METHODS; FINITE-ELEMENT METHODS; DIRICHLET-NEUMANN; FETI-DP; PRECONDITIONER; BDDC; ALGORITHM; EQUATIONS;
D O I
10.1016/j.camwa.2022.05.022
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
This paper is concerned with numerical solution of transport problems in heterogeneous porous media. A semi-discrete continuous-in-time formulation of the linear advection-diffusion equation is obtained by using a mixed hybrid finite element method, in which the flux variable represents both the advective and diffusive flux, and the Lagrange multiplier arising from the hybridization is used for the discretization of the advective term. Based on global-in-time and nonoverlapping domain decomposition, we propose two implicit local time-stepping methods to solve the semi-discrete problem. The first method uses the time-dependent Steklov-Poincare type operator and the second uses the optimized Schwarz waveform relaxation (OSWR) with Robin transmission conditions. For each method, we formulate a space-time interface problem which is solved iteratively. Each iteration involves solving the subdomain problems independently and globally in time; thus, different time steps can be used in the subdomains. The convergence of the fully discrete OSWR algorithm with nonmatching time grids is proved. Numerical results for problems with various Peclet numbers and discontinuous coefficients, including a prototype for the simulation of the underground storage of nuclear waste, are presented to illustrate the performance of the proposed local time-stepping methods.
引用
收藏
页码:248 / 264
页数:17
相关论文
共 50 条
  • [31] ANALYSIS OF A TIME-STEPPING SCHEME FOR TIME FRACTIONAL DIFFUSION PROBLEMS WITH NONSMOOTH DATA
    Li, Binjie
    Luo, Hao
    Xie, Xiaoping
    SIAM JOURNAL ON NUMERICAL ANALYSIS, 2019, 57 (02) : 779 - 798
  • [32] ON THE AVERAGING METHOD IN NEARLY TIME-PERIODIC ADVECTION-DIFFUSION PROBLEMS
    KROL, MS
    SIAM JOURNAL ON APPLIED MATHEMATICS, 1991, 51 (06) : 1622 - 1637
  • [33] Primal and mixed upwind finite element approximations of control advection-diffusion problems
    Alduncin, G.
    Computational Mechanics, 1993, 11 (2-3) : 93 - 106
  • [34] Stability of time-stepping methods for abstract time-dependent parabolic problems
    Gonzalez, C
    Palencia, C
    SIAM JOURNAL ON NUMERICAL ANALYSIS, 1998, 35 (03) : 973 - 989
  • [35] A fully implicit finite difference scheme based on extended cubic B-splines for time fractional advection-diffusion equation
    Mohyud-Din, Syed Tauseef
    Akram, Tayyaba
    Abbas, Muhammad
    Ismail, Ahmad Izani
    Ali, Norhashidah H. M.
    ADVANCES IN DIFFERENCE EQUATIONS, 2018,
  • [36] Analysis for implicit and implicit-explicit ADER and DeC methods for ordinary differential equations, advection-diffusion and advection-dispersion equations
    Oeffner, Philipp
    Petri, Louis
    Torlo, Davide
    APPLIED NUMERICAL MATHEMATICS, 2025, 212 : 110 - 134
  • [37] Multilevel and local time-stepping discontinuous Galerkin methods for magma dynamics
    Tirupathi, S.
    Hesthaven, J. S.
    Liang, Y.
    Parmentier, M.
    COMPUTATIONAL GEOSCIENCES, 2015, 19 (04) : 965 - 978
  • [38] SPACE-TIME SPECTRAL ELEMENT METHODS FOR ONE-DIMENSIONAL NONLINEAR ADVECTION-DIFFUSION PROBLEMS
    BARYOSEPH, P
    MOSES, E
    ZRAHIA, U
    YARIN, AL
    JOURNAL OF COMPUTATIONAL PHYSICS, 1995, 119 (01) : 62 - 74
  • [39] PRIMAL DUAL MIXED FINITE ELEMENT METHODS FOR INDEFINITE ADVECTION-DIFFUSION EQUATIONS
    Burman, Erik
    He, Cuiyu
    SIAM JOURNAL ON NUMERICAL ANALYSIS, 2019, 57 (06) : 2785 - 2811
  • [40] Multilevel and local time-stepping discontinuous Galerkin methods for magma dynamics
    S. Tirupathi
    J. S. Hesthaven
    Y. Liang
    M. Parmentier
    Computational Geosciences, 2015, 19 : 965 - 978