Path: blob/main/src/equations/laplace_diffusion_2d.jl
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@doc raw"""1LaplaceDiffusion2D(diffusivity, equations)23`LaplaceDiffusion2D` represents a scalar diffusion term ``\nabla \cdot (\kappa\nabla u))``4with diffusivity ``\kappa`` applied to each solution component defined by `equations`.5"""6struct LaplaceDiffusion2D{E, N, T} <: AbstractLaplaceDiffusion{2, N}7diffusivity::T8equations_hyperbolic::E9end1011function LaplaceDiffusion2D(diffusivity, equations_hyperbolic)12LaplaceDiffusion2D{typeof(equations_hyperbolic), nvariables(equations_hyperbolic),13typeof(diffusivity)}(diffusivity, equations_hyperbolic)14end1516function varnames(variable_mapping, equations_parabolic::LaplaceDiffusion2D)17varnames(variable_mapping, equations_parabolic.equations_hyperbolic)18end1920function flux(u, gradients, orientation::Integer, equations_parabolic::LaplaceDiffusion2D)21dudx, dudy = gradients22if orientation == 123return SVector(equations_parabolic.diffusivity * dudx)24else # if orientation == 225return SVector(equations_parabolic.diffusivity * dudy)26end27end2829# TODO: parabolic; should this remain in the equations file, be moved to solvers, or live in the elixir?30# The penalization depends on the solver, but also depends explicitly on physical parameters,31# and would probably need to be specialized for every different equation.32function penalty(u_outer, u_inner, inv_h, equations_parabolic::LaplaceDiffusion2D,33dg::ViscousFormulationLocalDG)34return dg.penalty_parameter * (u_outer - u_inner) * equations_parabolic.diffusivity35end3637# General Dirichlet and Neumann boundary condition functions are defined in `src/equations/laplace_diffusion_1d.jl`.383940