completed nufi, untested

This commit is contained in:
Vasco C. B. Ferreira
2026-03-08 16:23:51 +01:00
parent 20fcb2848a
commit 51df7cc78a
5 changed files with 151 additions and 57 deletions
-1
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@@ -33,7 +33,6 @@ inline double compute_rho(const double x,
const double v = Parameters::V_DOMAIN_LEFT + (i + 0.5) * dv;
integral += f0(x, v) * dv;
}
return 1.0 - integral;
}
-4
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@@ -1,8 +1,4 @@
#include <iostream>
#include "parameters.hpp"
#include "poisson_problem.hpp"
#include "nufi_solver.hpp"
int main()
+91 -28
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@@ -1,6 +1,13 @@
/*
Todo:
- update Nx between timesteps to account for adaptivity changes because Vector rho needs to be resized
*/
#ifndef NUFI_SOLVER_HPP
#define NUFI_SOLVER_HPP
#include <cmath>
#include <cstdlib>
#include <deal.II/base/point.h>
#include <deal.II/base/tensor.h>
#include <deal.II/numerics/fe_field_function.h>
@@ -20,30 +27,28 @@ public:
NuFISolver();
void run();
double eval_rho(size_t n, double x, double u);
double eval_rho(unsigned int n, double x, unsigned int Nv = Parameters::NV);
private:
void compute_density();
void solve_poisson();
void update_distribution();
double eval_ftilda(unsigned int n, double x, double u);
void solve_poisson(unsigned int n);
double evaluate_E(double x);
PoissonProblem<1> poisson;
std::vector<double> coeffs;
std::vector<double> rho;
unsigned int Nt;
unsigned int Nt = std::floor(Parameters::TMAX/Parameters::DT);
unsigned int Nx;
double Lx = Parameters::LX;
unsigned int order;
double dt;
size_t stride_t;
double dt = Parameters::DT;
PoissonProblem<1> poisson;
};
inline double NuFISolver::evaluate_E(double x)
@@ -75,12 +80,14 @@ inline double NuFISolver::evaluate_E(double x)
return E_val;
}
inline double NuFISolver::eval_rho(size_t n,
inline double NuFISolver::eval_ftilda(unsigned int n,
double x,
double u)
{
double Lu = std::abs(Parameters::V_DOMAIN_LEFT - Parameters::V_DOMAIN_RIGHT);
if (n == 0)
return f0(x,u);
return f0(x, u);
double Ex;
@@ -101,33 +108,89 @@ inline double NuFISolver::eval_rho(size_t n,
u += 0.5*dt*Ex; // is this line useless ?
double x_periodic = x - Lx * std::floor(x / Lx);
double u_periodic = u - Lu * std::floor(u / Lu);
return compute_rho(x_periodic); // compute_rho (from fields.hpp) uses f0
return f0(x_periodic, u_periodic);
}
inline double NuFISolver::eval_rho(const unsigned int n,
const double x,
const unsigned int Nv)
{
const double dv = (Parameters::V_DOMAIN_RIGHT - Parameters::V_DOMAIN_LEFT) / Nv;
double integral = 0.0;
for (unsigned int i = 0; i < Nv; ++i)
{
const double v = Parameters::V_DOMAIN_LEFT + (i + 0.5) * dv;
integral += eval_ftilda(n, x, v) * dv;
}
return 1.0 - integral;
}
class ChargeDensity_NuFI : public Function<1>
{
public:
ChargeDensity_NuFI(NuFISolver &solver, size_t n)
: solver(solver), n(n) {}
virtual double value(const Point<1> &p,
[[maybe_unused]] const unsigned int component = 0) const override
{
double x = p[0];
return solver.eval_rho(n, x);
// u not used anymore
}
private:
NuFISolver &solver;
size_t n;
};
inline void NuFISolver::solve_poisson(unsigned int n)
{
ChargeDensity_NuFI rho_function(*this, n);
poisson.set_rhs_function(rho_function);
poisson.solve_step();
}
inline void NuFISolver::run()
{
rho.resize(Nx, 0.0); // initialize density array
std::cout << "Starting NuFI solver\n";
// Main time-stepping loop
for (size_t n = 0; n < Nt; ++n)
for (unsigned int n = 0; n < Nt; ++n)
{
std::cout << "Timestep " << n << " / " << Nt << std::endl;
// Solve this logic! To use on deal.ii
// 1. Compute charge density rho from current distribution
compute_density();
double dx = Lx / Nx;
// 2. Solve Poisson's equation to update electric field
solve_poisson();
// 3. Update distribution function along characteristics
update_distribution();
// Optional: compute ftilda at current step if needed
// for demonstration: evaluate ftilda at midpoint x, u = 0
// double ft = eval_ftilda(n, 0.5 * poisson.get_Lx(), 0.0);
for (unsigned int i = 0; i < Nx; ++i)
{
double x = (i + 0.5) * dx;
rho[i] = eval_rho(n, x);
}
solve_poisson(n);
}
std::cout << "NuFI simulation finished.\n";
}
inline NuFISolver::NuFISolver()
: order(Parameters::FE_DEGREE),
poisson(order, Parameters::NV)
{
poisson.initialize();
Nx = poisson.get_dof_handler().n_dofs();
rho.resize(Nx, 0.0);
}
#endif
+3
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@@ -20,6 +20,9 @@ namespace Parameters
constexpr double EPS = 0.01;
constexpr double WAVE_NR = 0.5;
constexpr double DT=0.05;
constexpr unsigned int TMAX = 10;
}
#endif
+35 -2
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@@ -1,6 +1,7 @@
#ifndef POISSON_PROBLEM_HPP
#define POISSON_PROBLEM_HPP
#include <deal.II/base/function.h>
#include <fstream>
#include <deal.II/base/quadrature_lib.h>
@@ -43,9 +44,13 @@ class PoissonProblem
{
public:
PoissonProblem(unsigned int degree, unsigned int Nv);
void initialize();
void solve_step();
void run();
void set_Nv(unsigned int new_Nv);
void set_rhs_function(const Function<dim> &rhs);
const Vector<double> &get_solution() const { return solution; }
const DoFHandler<dim> &get_dof_handler() const { return dof_handler; }
@@ -69,6 +74,8 @@ private:
Vector<double> solution; // phi
Vector<double> system_rhs;
const Function<dim> *rhs_function;
MappingQ<dim> mapping;
unsigned int Nv;
@@ -81,6 +88,12 @@ void PoissonProblem<dim>::set_Nv(unsigned int new_Nv)
Nv = new_Nv;
}
template <int dim>
void PoissonProblem<dim>::set_rhs_function(const Function<dim> &rhs)
{
rhs_function = &rhs;
}
template <int dim>
PoissonProblem<dim>::PoissonProblem(unsigned int degree, unsigned int Nv)
: fe(degree)
@@ -185,7 +198,7 @@ void PoissonProblem<dim>::assemble_system()
Vector<double> cell_rhs(dofs_per_cell);
std::vector<types::global_dof_index> local_dof_indices(dofs_per_cell);
ChargeDensity<dim> rhs_function(Parameters::EPS, Parameters::WAVE_NR, Nv);
Assert(rhs_function != nullptr, ExcMessage("RHS function not set"));
for (const auto &cell : dof_handler.active_cell_iterators())
{
@@ -195,7 +208,7 @@ void PoissonProblem<dim>::assemble_system()
for (unsigned int q = 0; q < n_q_points; ++q)
{
const double rho = rhs_function.value(fe_values.quadrature_point(q));
const double rho = rhs_function->value(fe_values.quadrature_point(q));
for (unsigned int i = 0; i < dofs_per_cell; ++i)
{
@@ -286,7 +299,27 @@ void PoissonProblem<dim>::output_results() const
data_out_E.write_vtk(out2);
}
template <int dim>
void PoissonProblem<dim>::initialize()
{
set_Nv(Parameters::NV);
create_mesh(); // build grid
setup_system(); // distribute DoFs and matrices
}
template <int dim>
void PoissonProblem<dim>::solve_step()
{
system_matrix = 0;
system_rhs = 0;
assemble_system();
solve();
}
// NuFI doesnt use this, kept only for testing.
template <int dim>
void PoissonProblem<dim>::run()
{