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MKSE_elasticity/include/Elasticity.h
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2026-09-01 10:00:04 +03:00
#pragma once
// Core data structures and solvers for the finite superelement model.
#include <algorithm>
#include <cmath>
#include <cstddef>
#include <functional>
#include <iostream>
#include <string>
#include <tuple>
#include <utility>
#include <vector>
struct Point {
double x, y;
friend std::ostream& operator<<(std::ostream& output, const Point& p);
};
Point operator+(const Point& a, const Point& b);
Point operator-(const Point& a, const Point& b);
Point operator*(double a, const Point& p);
Point operator/(const Point& p, double a);
std::vector<double> operator-(const std::vector<double>& a,
const std::vector<double>& b);
using function = std::function<double(const Point&)>;
using vec_function = std::function<Point(const Point&)>;
using lambda_func = std::function<size_t(size_t)>;
enum class CoordinateSystem {
Cartesian,
Axisymmetric
};
enum class ContactMethod {
SlaveNodes,
UniformLambdaPartition,
UniformUnionPartition
};
enum class ContactSlaveBody {
Bottom,
Top
};
struct ContactOptions {
CoordinateSystem coordinate_system = CoordinateSystem::Axisymmetric;
ContactMethod method = ContactMethod::UniformUnionPartition;
size_t lambda_node_count = 0;
ContactSlaveBody slave_body = ContactSlaveBody::Bottom;
};
std::string to_string(CoordinateSystem coordinate_system);
std::string to_string(ContactMethod contact_method);
std::string to_string(ContactSlaveBody slave_body);
struct Triangle {
size_t a, b, c;
};
struct Rectangle {
size_t a, b, c, d;
};
struct MortarElement {
double chi_left;
double chi_right;
};
struct ContactDiscretization {
std::vector<double> lambda_nodes;
std::vector<MortarElement> mortar_elements;
};
class Matrix {
private:
std::vector<std::vector<double>> matrix;
public:
Matrix(size_t n, double a = 0);
Matrix(size_t n, size_t m, double a = 0);
Matrix(std::vector<std::vector<double>> m) : matrix(m) {};
Matrix(Matrix* M) { matrix = M->matrix; };
std::vector<double>& operator[](size_t i) { return matrix[i]; };
const std::vector<double>& operator[](size_t i) const { return matrix[i]; };
Matrix operator*(double a);
Matrix& operator*=(double a);
Matrix T() const;
size_t size(short axis = 0) const {
return axis ? matrix[0].size() : matrix.size();
};
Matrix dot(const Matrix& m) const;
std::vector<double> dot(const std::vector<double>& v) const;
void print() const;
static Matrix eye(size_t n, double a = 1);
};
std::vector<double> solveGaussFullPivot(
const Matrix& A,
const std::vector<double>& b,
double eps = 1e-12
);
class FEM {
size_t mx, ny;
Point left_down;
Point right_up;
std::vector<Point> points;
std::vector<Triangle> triangles;
double triangle_area;
std::vector<Point> f;
std::vector<Point> u;
CoordinateSystem coordinate_system;
std::vector<double> F;
Matrix A;
public:
FEM(const Point& a, const Point& b, size_t n, size_t m,
CoordinateSystem coordinate_system = CoordinateSystem::Axisymmetric);
Point& get_point(size_t n);
const Point& get_point(size_t n) const;
Triangle& get_triangle(size_t n);
const Triangle& get_triangle(size_t n) const;
size_t psize() const { return points.size(); };
size_t tsize() const { return triangles.size(); };
size_t xsize() const { return mx; };
size_t ysize() const { return ny; };
CoordinateSystem get_coordinate_system() const { return coordinate_system; };
void print_points() const;
void print_triangles() const;
Point& operator[](size_t n) { return get_point(n); };
const Point& operator[](size_t n) const { return get_point(n); };
Triangle& operator()(size_t n) { return get_triangle(n); };
const Triangle& operator()(size_t n) const { return get_triangle(n); };
void set_boundaries(char side, const vec_function& g);
void construct_AF(double E, double nu, vec_function body_force);
void apply_boundaries();
std::vector<Point> solve();
void clear_AFu();
void bc2_side(lambda_func j, size_t start, size_t finish, double len,
int side, const std::vector<vec_function>& g,
std::vector<double>& p_vec);
void calculate_bc2(const std::vector<size_t>& pos,
const std::vector<vec_function>& g, std::vector<double>& p_vec);
std::pair<Matrix, std::vector<double>> get_AF();
void set_AF(const Matrix& A_new, const std::vector<double>& F_new);
};
Matrix operator*(double a, Matrix m);
std::tuple<Matrix, Matrix> LU_decomposition(const Matrix& m);
std::vector<double> solveLU(const Matrix& L, const Matrix& U,
const std::vector<double>& b);
Point zero(const Point& p);
class FSEM {
double E;
double nu;
Point a;
Point b;
size_t n_side_x;
size_t n_side_y;
std::vector<Point> nodes;
size_t coef_x;
size_t coef_y;
std::vector<std::vector<Point>> basis;
std::vector<Point> basis_coefficients;
Matrix K;
std::vector<double> f;
CoordinateSystem coordinate_system;
public:
FEM fem;
FSEM(double E, double nu, const Point& a, const Point& b,
size_t n_x, size_t n_y, int coef_val_x = 1, int coef_val_y = 1,
CoordinateSystem coordinate_system = CoordinateSystem::Axisymmetric);
Point& get_node(size_t n);
const Point& get_node(size_t n) const;
size_t nsize() const { return nodes.size(); };
CoordinateSystem get_coordinate_system() const { return coordinate_system; };
Point& operator[](size_t n) { return get_node(n); };
const Point& operator[](size_t n) const { return get_node(n); };
void print_nodes() const;
void construct_basis();
Matrix matrix_form_basis();
const Matrix& get_K() const { return K; }
const std::vector<double>& get_f() const { return f; }
const std::vector<std::vector<Point>>& get_basis() const { return basis; }
void construct_f_bc2(const std::vector<size_t>& pos,
const std::vector<vec_function>& g);
std::vector<Point> find_answer();
std::vector<Point> find_answer(const std::vector<double>& coefs, size_t start = 0);
void set_bc1(char side, const vec_function& g);
void calculate_coef_Matrix_bc2(const int finish, const int i,
bool cur_pos, bool prev_pos, int& add_B, int& add_C, const int add_basis,
Matrix& B, Matrix& C);
void save_bc1(std::vector<double>& coefs_Dirichle, int& dir_id, const int i);
void set_bc2(const std::vector<size_t>& pos,
const std::vector<vec_function>& g);
std::vector<size_t> get_side_nodes(char side) const;
std::vector<size_t> get_side_fem_nodes(char side) const;
Point coefficient(int i, Point coef_val) {
return std::isnan(basis_coefficients[i].x) ? coef_val : basis_coefficients[i];
}
std::vector<std::pair<size_t, double>> get_known_dofs() const;
};
double mortar_shape_func(size_t i, const std::vector<double>& s, double cur);
std::vector<double> solve_mortar_contact(
FSEM& bottom_body,
FSEM& top_body,
const std::vector<double>& rhs_bottom,
const std::vector<double>& rhs_top,
const ContactOptions& options);
std::vector<double> solve_mortar_contact(
FSEM& bottom_body,
FSEM& top_body,
const std::vector<double>& rhs_bottom,
const std::vector<double>& rhs_top,
size_t lambda_node_count = 0);
std::vector<double> solveWithLU(const Matrix& A,
const std::vector<double>& b,
double eps = 1e-15);