corrected results output, E is 0 all the time everywhere??

This commit is contained in:
Vasco C. B. Ferreira
2026-03-14 18:34:48 +01:00
parent 70e67e2702
commit eadf717dfc
3 changed files with 316 additions and 58 deletions
+59 -1
View File
@@ -27,7 +27,10 @@ public:
void run();
double eval_rho(unsigned int n, double x, const double *E_coeffs, unsigned int Nv = Parameters::NV);
double eval_ftilda(unsigned int n, double x, double u, const double *E_coeffs);
void save_ftilda(unsigned int n, const double *E_coeffs, unsigned int Nx_out, unsigned int Nv_out, const std::string &filename);
void save_rho(unsigned int n, const double *E_coeffs, unsigned int Nx_out, const std::string &filename);
void save_Efield(unsigned int n, const double *E_coeffs, unsigned int Nx_out, const std::string &filename);
private:
@@ -165,6 +168,60 @@ inline void NuFISolver::save_ftilda(unsigned int n,
file.close();
}
inline void NuFISolver::save_rho(unsigned int n,
const double *E_coeffs,
unsigned int Nx_out,
const std::string &filename)
{
std::ofstream file(filename);
double xmin = Parameters::X_DOMAIN_LEFT;
double xmax = Parameters::X_DOMAIN_RIGHT;
double dx = (xmax - xmin) / Nx_out;
file << Nx_out << "\n";
file << xmin << " " << xmax << "\n";
for (unsigned int i = 0; i < Nx_out; ++i, xmin += dx)
{
double val = eval_rho(n, xmin, E_coeffs);
file << val;
file << "\n";
}
file.close();
}
inline void NuFISolver::save_Efield(unsigned int n,
const double *E_coeffs,
unsigned int Nx_out,
const std::string &filename)
{
std::ofstream file(filename);
double xmin = Parameters::X_DOMAIN_LEFT;
double xmax = Parameters::X_DOMAIN_RIGHT;
double dx = (xmax - xmin) / Nx_out;
// select from E_coeffs
const size_t stride_x = 1;
const size_t stride_t = stride_x*(Parameters::SPLINE_NX + Parameters::SPLINE_ORDER - 1);
const double *c;
c = E_coeffs + n*stride_t;
file << Nx_out << "\n";
file << xmin << " " << xmax << "\n";
for (unsigned int i = 0; i < Nx_out; ++i, xmin += dx)
{
double val = -eval<1>(xmin, c);
file << val;
file << "\n";
}
file.close();
}
inline void NuFISolver::run()
{
std::cout << "Building E_sline\n\n";
@@ -220,7 +277,8 @@ inline void NuFISolver::run()
{
std::cout << "Saving results... \n\n";
save_ftilda(it, coeffs.get(), 128, 128, "results/ftilda_" + std::to_string(it) + ".dat");
poisson.output_results(it);
save_rho(it, coeffs.get(), 128, "results/rho_" + std::to_string(it) + ".dat");
save_Efield(it, coeffs.get(), 128, "results/field_" + std::to_string(it) + ".dat");
}
}
+257
View File
@@ -0,0 +1,257 @@
#ifndef POISSON_NON_PERIODIC_HPP
#define POISSON_NON_PERIODIC_HPP
#include "parameters.hpp"
#include <deal.II/base/point.h>
#include <deal.II/grid/tria.h>
#include <deal.II/dofs/dof_handler.h>
#include <deal.II/grid/grid_generator.h>
#include <deal.II/fe/fe_q.h>
#include <deal.II/dofs/dof_tools.h>
#include <deal.II/fe/fe_values.h>
#include <deal.II/base/quadrature_lib.h>
#include <deal.II/base/function.h>
#include <deal.II/numerics/vector_tools.h>
#include <deal.II/numerics/matrix_tools.h>
#include <deal.II/lac/vector.h>
#include <deal.II/lac/full_matrix.h>
#include <deal.II/lac/sparse_matrix.h>
#include <deal.II/lac/dynamic_sparsity_pattern.h>
#include <deal.II/lac/solver_cg.h>
#include <deal.II/lac/precondition.h>
#include <deal.II/numerics/data_out.h>
#include <fstream>
#include <iostream>
using namespace dealii;
template<int dim>
class Poisson_non_periodic
{
public:
Poisson_non_periodic ();
void run();
void initialize();
void solve_step();
void set_rhs_function(std::unique_ptr<Function<dim>> rhs_function);
const Vector<double> &get_solution() const { return solution; }
const DoFHandler<dim> &get_dof_handler() const { return dof_handler; }
std::vector<double> sample_electric_field(const Poisson_non_periodic<dim> &problem, // sampling to save as spline
unsigned int Nx,
double x_min,
double x_max);
void output_results(unsigned int n);
private:
void make_grid();
void setup_system();
void assemble_system();
void solve();
void output_results() const;
Triangulation<1> triangulation;
const FE_Q<1> fe;
DoFHandler<1> dof_handler;
SparsityPattern sparsity_pattern;
SparseMatrix<double> system_matrix;
Vector<double> solution;
Vector<double> system_rhs;
std::unique_ptr<const Function<dim>> rhs_function;
};
template<int dim>
Poisson_non_periodic<dim>::Poisson_non_periodic()
: fe(/* polynomial degree = */ 1)
, dof_handler(triangulation)
{}
template <int dim>
void Poisson_non_periodic<dim>::set_rhs_function(std::unique_ptr<Function<dim>> rhs)
{
rhs_function = std::move(rhs);
}
template<int dim>
void Poisson_non_periodic<dim>::make_grid()
{
Point<dim, double> x0 = Parameters::X_DOMAIN_RIGHT;
Point<dim, double> x1 = Parameters::X_DOMAIN_RIGHT;
GridGenerator::hyper_rectangle(triangulation, x0, x1);
triangulation.refine_global(Parameters::GLOBAL_REFINEMENT);
std::cout << "Number of active cells: " << triangulation.n_active_cells()
<< std::endl;
}
template<int dim>
void Poisson_non_periodic<dim>::setup_system()
{
dof_handler.distribute_dofs(fe);
std::cout << "Number of degrees of freedom: " << dof_handler.n_dofs()
<< std::endl;
DynamicSparsityPattern dsp(dof_handler.n_dofs());
DoFTools::make_sparsity_pattern(dof_handler, dsp);
sparsity_pattern.copy_from(dsp);
system_matrix.reinit(sparsity_pattern);
solution.reinit(dof_handler.n_dofs());
system_rhs.reinit(dof_handler.n_dofs());
}
template<int dim>
void Poisson_non_periodic<dim>::assemble_system()
{
const QGauss<1> quadrature_formula(fe.degree + 1);
FEValues<1> fe_values(fe,
quadrature_formula,
update_values | update_gradients | update_JxW_values);
const unsigned int dofs_per_cell = fe.n_dofs_per_cell();
FullMatrix<double> cell_matrix(dofs_per_cell, dofs_per_cell);
Vector<double> cell_rhs(dofs_per_cell);
std::vector<types::global_dof_index> local_dof_indices(dofs_per_cell);
for (const auto &cell : dof_handler.active_cell_iterators())
{
fe_values.reinit(cell);
cell_matrix = 0;
cell_rhs = 0;
for (const unsigned int q_index : fe_values.quadrature_point_indices())
{
const double rho = rhs_function->value(fe_values.quadrature_point(q_index));
for (const unsigned int i : fe_values.dof_indices())
for (const unsigned int j : fe_values.dof_indices())
cell_matrix(i, j) +=
(fe_values.shape_grad(i, q_index) * // grad phi_i(x_q)
fe_values.shape_grad(j, q_index) * // grad phi_j(x_q)
fe_values.JxW(q_index)); // dx
for (const unsigned int i : fe_values.dof_indices())
cell_rhs(i) += (fe_values.shape_value(i, q_index) * // phi_i(x_q)
rho * // f(x_q)
fe_values.JxW(q_index)); // dx
}
cell->get_dof_indices(local_dof_indices);
for (const unsigned int i : fe_values.dof_indices())
for (const unsigned int j : fe_values.dof_indices())
system_matrix.add(local_dof_indices[i],
local_dof_indices[j],
cell_matrix(i, j));
for (const unsigned int i : fe_values.dof_indices())
system_rhs(local_dof_indices[i]) += cell_rhs(i);
}
std::map<types::global_dof_index, double> boundary_values;
VectorTools::interpolate_boundary_values(dof_handler,
types::boundary_id(0),
Functions::ZeroFunction<1>(),
boundary_values);
MatrixTools::apply_boundary_values(boundary_values,
system_matrix,
solution,
system_rhs);
}
template<int dim>
void Poisson_non_periodic<dim>::solve()
{
SolverControl solver_control(1000, 1e-6 * system_rhs.l2_norm());
SolverCG<Vector<double>> solver(solver_control);
solver.solve(system_matrix, solution, system_rhs, PreconditionIdentity());
std::cout << solver_control.last_step()
<< " CG iterations needed to obtain convergence." << std::endl;
}
template <int dim>
void Poisson_non_periodic<dim>::output_results(unsigned int n)
{
// --- extract DoF coordinates ---
std::vector<Point<dim>> support_points(dof_handler.n_dofs());
Vector<double> x_coordinate(dof_handler.n_dofs());
for (unsigned int i = 0; i < support_points.size(); ++i)
x_coordinate[i] = support_points[i][0]; // x-component in 1D
//---- Output density ----
ChargeDensity<dim> rho(Parameters::EPS, Parameters::WAVE_NR, Parameters::NV);
DataOut<dim> data_out_rho;
data_out_rho.attach_dof_handler(dof_handler);
Vector<double> density(solution.size());
VectorTools::interpolate(dof_handler, rho, density);
data_out_rho.add_data_vector(density, "density");
data_out_rho.add_data_vector(x_coordinate, "x_coordinate");
data_out_rho.build_patches();
std::ofstream out1("results/density_" + std::to_string(n) + ".vtk");
data_out_rho.write_vtk(out1);
//---- Output electric field & potential ----
DataOut<dim> data_out_E;
data_out_E.attach_dof_handler(dof_handler);
ElectricFieldPostprocessor<dim> electric_field;
Vector<double> dummy(solution.size() * dim);
data_out_E.add_data_vector(solution, "potential");
data_out_E.add_data_vector(solution, electric_field);
data_out_E.add_data_vector(x_coordinate, "x_coordinate");
data_out_E.build_patches();
std::ofstream out2("results/electric_field_"+ std::to_string(n)+".vtk");
data_out_E.write_vtk(out2);
}
template <int dim>
void Poisson_non_periodic<dim>::initialize()
{
make_mesh(); // build grid
setup_system(); // distribute DoFs and matrices
}
template <int dim>
void Poisson_non_periodic<dim>::solve_step()
{
assemble_system();
solve();
}
#endif
-57
View File
@@ -39,7 +39,6 @@
#include <vector>
#include "parameters.hpp"
#include "fields.hpp"
using namespace dealii;
@@ -64,8 +63,6 @@ public:
unsigned int Nx,
double x_min,
double x_max);
void output_results(unsigned int n);
private:
void create_mesh();
@@ -284,57 +281,6 @@ void PoissonProblem<dim>::solve()
constraints.distribute(solution);
}
template <int dim>
void PoissonProblem<dim>::output_results(unsigned int n)
{
// --- extract DoF coordinates ---
std::vector<Point<dim>> support_points(dof_handler.n_dofs());
DoFTools::map_dofs_to_support_points(mapping,
dof_handler,
support_points);
Vector<double> x_coordinate(dof_handler.n_dofs());
for (unsigned int i = 0; i < support_points.size(); ++i)
x_coordinate[i] = support_points[i][0]; // x-component in 1D
//---- Output density ----
ChargeDensity<dim> rho(Parameters::EPS, Parameters::WAVE_NR, Parameters::NV);
DataOut<dim> data_out_rho;
data_out_rho.attach_dof_handler(dof_handler);
Vector<double> density(solution.size());
VectorTools::interpolate(dof_handler, rho, density);
data_out_rho.add_data_vector(density, "density");
data_out_rho.add_data_vector(x_coordinate, "x_coordinate");
data_out_rho.build_patches();
std::ofstream out1("results/density_" + std::to_string(n) + ".vtk");
data_out_rho.write_vtk(out1);
//---- Output electric field & potential ----
DataOut<dim> data_out_E;
data_out_E.attach_dof_handler(dof_handler);
ElectricFieldPostprocessor<dim> electric_field;
Vector<double> dummy(solution.size() * dim);
data_out_E.add_data_vector(solution, "potential");
data_out_E.add_data_vector(solution, electric_field);
data_out_E.add_data_vector(x_coordinate, "x_coordinate");
data_out_E.build_patches();
std::ofstream out2("results/electric_field_"+ std::to_string(n)+".vtk");
data_out_E.write_vtk(out2);
}
template <int dim>
void PoissonProblem<dim>::initialize()
{
@@ -345,8 +291,6 @@ void PoissonProblem<dim>::initialize()
template <int dim>
void PoissonProblem<dim>::solve_step()
{
system_matrix = 0;
system_rhs = 0;
assemble_system();
solve();
}
@@ -360,7 +304,6 @@ void PoissonProblem<dim>::run()
setup_system();
assemble_system();
solve();
output_results();
}
#endif