46 {
47
49
50 try {
51
52 moab::Core mb_instance;
53 moab::Interface &moab = mb_instance;
54 int rank;
55 MPI_Comm_rank(PETSC_COMM_WORLD, &rank);
56
57 PetscBool flg = PETSC_TRUE;
61 if (flg != PETSC_TRUE) {
62 SETERRQ(PETSC_COMM_SELF, 1, "*** ERROR -my_file (MESH FILE NEEDED)");
63 }
64
65 const char *option;
66 option = "";
68
69
72
73
75 bit_level0.set(0);
77 CHKERR moab.create_meshset(MESHSET_SET, meshset_level0);
79 0, 3, bit_level0);
80
81
83
84
87
88
91
92
95 3);
97 "MESH_NODE_POSITIONS");
102
103
105
106
107
108
111 &flg);
112 if (flg != PETSC_TRUE) {
114 }
119
121 CHKERR thermal_elements.addThermalElements(
"TEMP");
123 "THERMAL_FE");
124
127 CHKERR moab.get_entities_by_type(it->getMeshset(), MBTRI, bc_tris,
true);
128 }
129
131 CHKERR analytical_bc.setFiniteElement(m_field,
"BC_FE",
"TEMP", bc_tris);
133
134
135
136
138
140
142
147
149 "MESH_NODE_POSITIONS");
151
152
153
154
157
159
162
164
168 Vec T;
172 ->createMPIAIJWithArrays<PetscGlobalIdx_mi_tag>("TEST_PROBLEM", &A);
173
175 true, false, false, false);
177 true, false, false, false);
178
179 CHKERR thermal_elements.setThermalFiniteElementRhsOperators(
"TEMP",
F);
180 CHKERR thermal_elements.setThermalFiniteElementLhsOperators(
"TEMP", A);
181 CHKERR thermal_elements.setThermalFluxFiniteElementRhsOperators(
"TEMP",
F);
182
186
187
190
191
192 CHKERR analytical_bc.setUpProblem(m_field,
"BC_PROBLEM");
193
194 boost::shared_ptr<AnalyticalFunction> testing_function =
196
197 CHKERR analytical_bc.setApproxOps(m_field,
"TEMP", testing_function, 0);
198 CHKERR analytical_bc.solveProblem(m_field,
"BC_PROBLEM",
"BC_FE",
199 analytical_dirichlet_bc);
200
201 CHKERR analytical_bc.destroyProblem();
202
203
205 analytical_dirichlet_bc);
206
208 thermal_elements.getLoopFeRhs());
210 thermal_elements.getLoopFeLhs());
213 thermal_elements.getLoopFeFlux());
214
215
217 analytical_dirichlet_bc);
218
219 CHKERR VecGhostUpdateBegin(
F, ADD_VALUES, SCATTER_REVERSE);
220 CHKERR VecGhostUpdateEnd(
F, ADD_VALUES, SCATTER_REVERSE);
223 CHKERR MatAssemblyBegin(A, MAT_FINAL_ASSEMBLY);
224 CHKERR MatAssemblyEnd(A, MAT_FINAL_ASSEMBLY);
225
227
228
229
230
231
232
233 KSP solver;
234 CHKERR KSPCreate(PETSC_COMM_WORLD, &solver);
235 CHKERR KSPSetOperators(solver, A, A);
236 CHKERR KSPSetFromOptions(solver);
238
240 CHKERR VecGhostUpdateBegin(T, INSERT_VALUES, SCATTER_FORWARD);
241 CHKERR VecGhostUpdateEnd(T, INSERT_VALUES, SCATTER_FORWARD);
242
243
244
245
247 "TEST_PROBLEM",
ROW, T, ADD_VALUES, SCATTER_REVERSE);
249 "TEST_PROBLEM",
ROW, T, INSERT_VALUES, SCATTER_FORWARD);
250
251
252
253
254
255 PetscReal pointwisenorm;
256 CHKERR VecMax(T, NULL, &pointwisenorm);
257 std::cout << "\n The Global Pointwise Norm of error for this problem is : "
258 << pointwisenorm << std::endl;
259
260
261
262
263
264
265
266 double sum = 0;
268 CHKERR PetscPrintf(PETSC_COMM_WORLD,
"sum = %9.8e\n", sum);
269 double fnorm;
270 CHKERR VecNorm(T, NORM_2, &fnorm);
271 CHKERR PetscPrintf(PETSC_COMM_WORLD,
"fnorm = %9.8e\n", fnorm);
272 if (fabs(sum + 6.46079983e-01) > 1e-7) {
274 }
275 if (fabs(fnorm - 4.26080052e+00) > 1e-6) {
277 }
278
280
282 CHKERR post_proc.generateReferenceElementMesh();
284 false);
285 CHKERR post_proc.addFieldValuesPostProc(
"TEMP");
286 CHKERR post_proc.addFieldValuesPostProc(
"MESH_NODE_POSITIONS");
287 CHKERR post_proc.addFieldValuesGradientPostProc(
"TEMP");
289 post_proc);
290 CHKERR post_proc.writeFile(
"out.h5m");
291 }
292
296 CHKERR KSPDestroy(&solver);
297 }
299
301
302 return 0;
303}
#define CATCH_ERRORS
Catch errors.
@ AINSWORTH_LEGENDRE_BASE
Ainsworth Cole (Legendre) approx. base nme:nme847.
@ MOFEM_ATOM_TEST_INVALID
#define CHKERR
Inline error check.
virtual MoFEMErrorCode build_finite_elements(int verb=DEFAULT_VERBOSITY)=0
Build finite elements.
virtual MoFEMErrorCode build_fields(int verb=DEFAULT_VERBOSITY)=0
virtual MoFEMErrorCode set_field_order(const EntityHandle meshset, const EntityType type, const std::string &name, const ApproximationOrder order, int verb=DEFAULT_VERBOSITY)=0
Set order approximation of the entities in the field.
virtual MoFEMErrorCode add_ents_to_field_by_type(const Range &ents, const EntityType type, const std::string &name, int verb=DEFAULT_VERBOSITY)=0
Add entities to field meshset.
virtual MoFEMErrorCode loop_dofs(const Problem *problem_ptr, const std::string &field_name, RowColData rc, DofMethod &method, int lower_rank, int upper_rank, int verb=DEFAULT_VERBOSITY)=0
Make a loop over dofs.
virtual MoFEMErrorCode problem_basic_method_postProcess(const Problem *problem_ptr, BasicMethod &method, int verb=DEFAULT_VERBOSITY)=0
Set data for BasicMethod.
virtual MoFEMErrorCode loop_finite_elements(const std::string problem_name, const std::string &fe_name, FEMethod &method, boost::shared_ptr< NumeredEntFiniteElement_multiIndex > fe_ptr=nullptr, MoFEMTypes bh=MF_EXIST, CacheTupleWeakPtr cache_ptr=CacheTupleSharedPtr(), int verb=DEFAULT_VERBOSITY)=0
Make a loop over finite elements.
#define _IT_CUBITMESHSETS_BY_NAME_FOR_LOOP_(MESHSET_MANAGER, NAME, IT)
Iterator that loops over Cubit BlockSet having a particular name.
MoFEMErrorCode partitionGhostDofs(const std::string name, int verb=VERBOSE)
determine ghost nodes
MoFEMErrorCode partitionSimpleProblem(const std::string name, int verb=VERBOSE)
partition problem dofs
MoFEMErrorCode buildProblem(const std::string name, const bool square_matrix, int verb=VERBOSE)
build problem data structures
MoFEMErrorCode partitionFiniteElements(const std::string name, bool part_from_moab=false, int low_proc=-1, int hi_proc=-1, int verb=VERBOSE)
partition finite elements
virtual MoFEMErrorCode add_problem(const std::string &name, enum MoFEMTypes bh=MF_EXCL, int verb=DEFAULT_VERBOSITY)=0
Add problem.
virtual MoFEMErrorCode modify_problem_ref_level_add_bit(const std::string &name_problem, const BitRefLevel &bit)=0
add ref level to problem
virtual MoFEMErrorCode modify_problem_add_finite_element(const std::string name_problem, const std::string &fe_name)=0
add finite element to problem, this add entities assigned to finite element to a particular problem
std::bitset< BITREFLEVEL_SIZE > BitRefLevel
Bit structure attached to each entity identifying to what mesh entity is attached.
PetscErrorCode PetscOptionsGetInt(PetscOptions *, const char pre[], const char name[], PetscInt *ivalue, PetscBool *set)
PetscErrorCode PetscOptionsGetString(PetscOptions *, const char pre[], const char name[], char str[], size_t size, PetscBool *set)
MoFEMErrorCode addHOOpsVol(const std::string field, E &e, bool h1, bool hcurl, bool hdiv, bool l2)
Structure used to enforce analytical boundary conditions.
Analytical Dirichlet boundary conditions.
virtual bool check_finite_element(const std::string &name) const =0
Check if finite element is in database.
virtual MoFEMErrorCode problem_basic_method_preProcess(const Problem *problem_ptr, BasicMethod &method, int verb=DEFAULT_VERBOSITY)=0
Set data for BasicMethod.
virtual MoFEMErrorCode build_adjacencies(const Range &ents, int verb=DEFAULT_VERBOSITY)=0
build adjacencies
virtual MoFEMErrorCode add_field(const std::string name, const FieldSpace space, const FieldApproximationBase base, const FieldCoefficientsNumber nb_of_coefficients, const TagType tag_type=MB_TAG_SPARSE, const enum MoFEMTypes bh=MF_EXCL, int verb=DEFAULT_VERBOSITY)=0
Add field.
static MoFEMErrorCode Initialize(int *argc, char ***args, const char file[], const char help[])
Initializes the MoFEM database PETSc, MOAB and MPI.
static MoFEMErrorCode Finalize()
Checks for options to be called at the conclusion of the program.
Deprecated interface functions.
Matrix manager is used to build and partition problems.
Problem manager is used to build and partition problems.
Projection of edge entities with one mid-node on hierarchical basis.
MoFEMErrorCode getInterface(IFACE *&iface) const
Get interface reference to pointer of interface.
Vector manager is used to create vectors \mofem_vectors.
structure grouping operators and data used for thermal problems