Path: blob/main/examples/t8code_2d_dgsem/elixir_advection_basic.jl
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# The same setup as tree_2d_dgsem/elixir_advection_basic.jl1# to verify the StructuredMesh implementation against TreeMesh23using OrdinaryDiffEqLowStorageRK4using Trixi56###############################################################################7# semidiscretization of the linear advection equation89advection_velocity = (0.2, -0.7)10equations = LinearScalarAdvectionEquation2D(advection_velocity)1112# Create DG solver with polynomial degree = 3 and (local) Lax-Friedrichs/Rusanov flux as surface flux13solver = DGSEM(polydeg = 3, surface_flux = flux_lax_friedrichs)1415coordinates_min = (-1.0, -1.0) # minimum coordinates (min(x), min(y))16coordinates_max = (1.0, 1.0) # maximum coordinates (max(x), max(y))1718trees_per_dimension = (8, 8)1920mesh = T8codeMesh(trees_per_dimension, polydeg = 3,21coordinates_min = coordinates_min, coordinates_max = coordinates_max,22initial_refinement_level = 1)2324# A semidiscretization collects data structures and functions for the spatial discretization25semi = SemidiscretizationHyperbolic(mesh, equations, initial_condition_convergence_test,26solver)2728###############################################################################29# ODE solvers, callbacks etc.3031# Create ODE problem with time span from 0.0 to 1.032ode = semidiscretize(semi, (0.0, 1.0))3334# At the beginning of the main loop, the SummaryCallback prints a summary of the simulation setup35# and resets the timers36summary_callback = SummaryCallback()3738# The AnalysisCallback allows to analyse the solution in regular intervals and prints the results39analysis_callback = AnalysisCallback(semi, interval = 100)4041# The StepsizeCallback handles the re-calculation of the maximum Δt after each time step42stepsize_callback = StepsizeCallback(cfl = 1.6)4344# Create a CallbackSet to collect all callbacks such that they can be passed to the ODE solver45callbacks = CallbackSet(summary_callback, analysis_callback, stepsize_callback)4647###############################################################################48# run the simulation4950# OrdinaryDiffEq's `solve` method evolves the solution in time and executes the passed callbacks51sol = solve(ode, CarpenterKennedy2N54(williamson_condition = false);52dt = 1.0, # solve needs some value here but it will be overwritten by the stepsize_callback53ode_default_options()..., callback = callbacks);545556