1 // Copyright (c) 2017-2022, Lawrence Livermore National Security, LLC and other CEED contributors. 2 // All Rights Reserved. See the top-level LICENSE and NOTICE files for details. 3 // 4 // SPDX-License-Identifier: BSD-2-Clause 5 // 6 // This file is part of CEED: http://github.com/ceed 7 8 #ifndef libceed_fluids_examples_navier_stokes_h 9 #define libceed_fluids_examples_navier_stokes_h 10 11 #include <ceed.h> 12 #include <petscts.h> 13 #include <stdbool.h> 14 15 #include "./include/petsc_ops.h" 16 #include "qfunctions/newtonian_types.h" 17 #include "qfunctions/stabilization_types.h" 18 19 // ----------------------------------------------------------------------------- 20 // PETSc Version 21 // ----------------------------------------------------------------------------- 22 #if PETSC_VERSION_LT(3, 19, 0) 23 #error "PETSc v3.19 or later is required" 24 #endif 25 26 // ----------------------------------------------------------------------------- 27 // Enums 28 // ----------------------------------------------------------------------------- 29 // Translate PetscMemType to CeedMemType 30 static inline CeedMemType MemTypeP2C(PetscMemType mem_type) { return PetscMemTypeDevice(mem_type) ? CEED_MEM_DEVICE : CEED_MEM_HOST; } 31 32 // Advection - Wind Options 33 typedef enum { 34 WIND_ROTATION = 0, 35 WIND_TRANSLATION = 1, 36 } WindType; 37 static const char *const WindTypes[] = {"rotation", "translation", "WindType", "WIND_", NULL}; 38 39 // Advection - Bubble Types 40 typedef enum { 41 BUBBLE_SPHERE = 0, // dim=3 42 BUBBLE_CYLINDER = 1, // dim=2 43 } BubbleType; 44 static const char *const BubbleTypes[] = {"sphere", "cylinder", "BubbleType", "BUBBLE_", NULL}; 45 46 // Advection - Bubble Continuity Types 47 typedef enum { 48 BUBBLE_CONTINUITY_SMOOTH = 0, // Original continuous, smooth shape 49 BUBBLE_CONTINUITY_BACK_SHARP = 1, // Discontinuous, sharp back half shape 50 BUBBLE_CONTINUITY_THICK = 2, // Define a finite thickness 51 } BubbleContinuityType; 52 static const char *const BubbleContinuityTypes[] = {"smooth", "back_sharp", "thick", "BubbleContinuityType", "BUBBLE_CONTINUITY_", NULL}; 53 54 // Euler - test cases 55 typedef enum { 56 EULER_TEST_ISENTROPIC_VORTEX = 0, 57 EULER_TEST_1 = 1, 58 EULER_TEST_2 = 2, 59 EULER_TEST_3 = 3, 60 EULER_TEST_4 = 4, 61 EULER_TEST_5 = 5, 62 } EulerTestType; 63 static const char *const EulerTestTypes[] = {"isentropic_vortex", "test_1", "test_2", "test_3", "test_4", "test_5", 64 "EulerTestType", "EULER_TEST_", NULL}; 65 66 // Stabilization methods 67 static const char *const StabilizationTypes[] = {"none", "SU", "SUPG", "StabilizationType", "STAB_", NULL}; 68 69 // Test mode type 70 typedef enum { 71 TESTTYPE_NONE = 0, 72 TESTTYPE_SOLVER = 1, 73 TESTTYPE_TURB_SPANSTATS = 2, 74 TESTTYPE_DIFF_FILTER = 3, 75 } TestType; 76 static const char *const TestTypes[] = {"none", "solver", "turb_spanstats", "diff_filter", "TestType", "TESTTYPE_", NULL}; 77 78 // Test mode type 79 typedef enum { 80 SGS_MODEL_NONE = 0, 81 SGS_MODEL_DATA_DRIVEN = 1, 82 } SGSModelType; 83 static const char *const SGSModelTypes[] = {"none", "data_driven", "SGSModelType", "SGS_MODEL_", NULL}; 84 85 static const char *const DifferentialFilterDampingFunctions[] = { 86 "none", "van_driest", "mms", "DifferentialFilterDampingFunction", "DIFF_FILTER_DAMP_", NULL}; 87 88 // ----------------------------------------------------------------------------- 89 // Log Events 90 // ----------------------------------------------------------------------------- 91 extern PetscLogEvent FLUIDS_CeedOperatorApply; 92 extern PetscLogEvent FLUIDS_CeedOperatorAssemble; 93 extern PetscLogEvent FLUIDS_CeedOperatorAssembleDiagonal; 94 extern PetscLogEvent FLUIDS_CeedOperatorAssemblePointBlockDiagonal; 95 PetscErrorCode RegisterLogEvents(); 96 97 // ----------------------------------------------------------------------------- 98 // Structs 99 // ----------------------------------------------------------------------------- 100 // Structs declarations 101 typedef struct AppCtx_private *AppCtx; 102 typedef struct CeedData_private *CeedData; 103 typedef struct User_private *User; 104 typedef struct Units_private *Units; 105 typedef struct SimpleBC_private *SimpleBC; 106 typedef struct Physics_private *Physics; 107 108 // Application context from user command line options 109 struct AppCtx_private { 110 // libCEED arguments 111 char ceed_resource[PETSC_MAX_PATH_LEN]; // libCEED backend 112 PetscInt degree; 113 PetscInt q_extra; 114 // Solver arguments 115 MatType amat_type; 116 PetscBool pmat_pbdiagonal; 117 // Post-processing arguments 118 PetscInt checkpoint_interval; 119 PetscInt viz_refine; 120 PetscInt cont_steps; 121 PetscReal cont_time; 122 char cont_file[PETSC_MAX_PATH_LEN]; 123 char cont_time_file[PETSC_MAX_PATH_LEN]; 124 char output_dir[PETSC_MAX_PATH_LEN]; 125 PetscBool add_stepnum2bin; 126 PetscBool checkpoint_vtk; 127 // Problem type arguments 128 PetscFunctionList problems; 129 char problem_name[PETSC_MAX_PATH_LEN]; 130 // Test mode arguments 131 TestType test_type; 132 PetscScalar test_tol; 133 char test_file_path[PETSC_MAX_PATH_LEN]; 134 // Turbulent spanwise statistics 135 PetscBool turb_spanstats_enable; 136 PetscInt turb_spanstats_collect_interval; 137 PetscInt turb_spanstats_viewer_interval; 138 PetscViewer turb_spanstats_viewer; 139 PetscViewerFormat turb_spanstats_viewer_format; 140 // Wall forces 141 struct { 142 PetscInt num_wall; 143 PetscInt *walls; 144 PetscViewer viewer; 145 PetscViewerFormat viewer_format; 146 PetscBool header_written; 147 } wall_forces; 148 // Subgrid Stress Model 149 SGSModelType sgs_model_type; 150 // Differential Filtering 151 PetscBool diff_filter_monitor; 152 }; 153 154 // libCEED data struct 155 struct CeedData_private { 156 CeedVector x_coord, q_data; 157 CeedBasis basis_x, basis_xc, basis_q, basis_x_sur, basis_q_sur, basis_xc_sur; 158 CeedElemRestriction elem_restr_x, elem_restr_q, elem_restr_qd_i; 159 CeedOperator op_setup_vol; 160 OperatorApplyContext op_ics_ctx; 161 CeedQFunction qf_setup_vol, qf_ics, qf_rhs_vol, qf_ifunction_vol, qf_setup_sur, qf_apply_inflow, qf_apply_inflow_jacobian, qf_apply_outflow, 162 qf_apply_outflow_jacobian, qf_apply_freestream, qf_apply_freestream_jacobian; 163 }; 164 165 typedef struct { 166 DM dm; 167 PetscSF sf; // For communicating child data to parents 168 OperatorApplyContext op_stats_collect_ctx, op_proj_rhs_ctx; 169 PetscInt num_comp_stats; 170 Vec Child_Stats_loc, Parent_Stats_loc; 171 KSP ksp; // For the L^2 projection solve 172 CeedScalar span_width; // spanwise width of the child domain 173 PetscBool do_mms_test; 174 OperatorApplyContext mms_error_ctx; 175 CeedContextFieldLabel solution_time_label, previous_time_label; 176 } Span_Stats; 177 178 typedef struct { 179 DM dm; 180 PetscInt num_comp; 181 OperatorApplyContext l2_rhs_ctx; 182 KSP ksp; 183 } *NodalProjectionData; 184 185 typedef struct { 186 DM dm_sgs; 187 PetscInt num_comp_sgs; 188 OperatorApplyContext op_nodal_evaluation_ctx, op_sgs_apply_ctx; 189 CeedVector sgs_nodal_ceed; 190 } *SGS_DD_Data; 191 192 typedef struct { 193 DM dm_filter; 194 PetscInt num_filtered_fields; 195 CeedInt *num_field_components; 196 OperatorApplyContext op_rhs_ctx; 197 KSP ksp; 198 PetscBool do_mms_test; 199 } *DiffFilterData; 200 201 // PETSc user data 202 struct User_private { 203 MPI_Comm comm; 204 DM dm; 205 DM dm_viz; 206 Mat interp_viz; 207 Ceed ceed; 208 Units units; 209 Vec M_inv, Q_loc, Q_dot_loc; 210 Physics phys; 211 AppCtx app_ctx; 212 CeedVector q_ceed, q_dot_ceed, g_ceed, coo_values_amat, coo_values_pmat, x_ceed; 213 CeedOperator op_rhs_vol, op_ifunction_vol, op_ifunction, op_ijacobian; 214 OperatorApplyContext op_rhs_ctx, op_strong_bc_ctx; 215 bool matrices_set_up; 216 CeedScalar time_bc_set; 217 Span_Stats spanstats; 218 NodalProjectionData grad_velo_proj; 219 SGS_DD_Data sgs_dd_data; 220 DiffFilterData diff_filter; 221 }; 222 223 // Units 224 struct Units_private { 225 // fundamental units 226 PetscScalar meter; 227 PetscScalar kilogram; 228 PetscScalar second; 229 PetscScalar Kelvin; 230 // derived units 231 PetscScalar Pascal; 232 PetscScalar J_per_kg_K; 233 PetscScalar m_per_squared_s; 234 PetscScalar W_per_m_K; 235 PetscScalar Joule; 236 }; 237 238 // Boundary conditions 239 struct SimpleBC_private { 240 PetscInt num_wall, // Number of faces with wall BCs 241 wall_comps[5], // An array of constrained component numbers 242 num_comps, 243 num_slip[3], // Number of faces with slip BCs 244 num_inflow, num_outflow, num_freestream; 245 PetscInt walls[16], slips[3][16], inflows[16], outflows[16], freestreams[16]; 246 PetscBool user_bc; 247 }; 248 249 // Struct that contains all enums and structs used for the physics of all problems 250 struct Physics_private { 251 WindType wind_type; 252 BubbleType bubble_type; 253 BubbleContinuityType bubble_continuity_type; 254 EulerTestType euler_test; 255 StabilizationType stab; 256 PetscBool implicit; 257 StateVariable state_var; 258 PetscBool has_curr_time; 259 PetscBool has_neumann; 260 CeedContextFieldLabel solution_time_label; 261 CeedContextFieldLabel stg_solution_time_label; 262 CeedContextFieldLabel timestep_size_label; 263 CeedContextFieldLabel ics_time_label; 264 CeedContextFieldLabel ijacobian_time_shift_label; 265 }; 266 267 typedef struct { 268 CeedQFunctionUser qfunction; 269 const char *qfunction_loc; 270 CeedQFunctionContext qfunction_context; 271 } ProblemQFunctionSpec; 272 273 // Problem specific data 274 typedef struct ProblemData_private ProblemData; 275 struct ProblemData_private { 276 CeedInt dim, q_data_size_vol, q_data_size_sur, jac_data_size_sur; 277 CeedScalar dm_scale; 278 ProblemQFunctionSpec setup_vol, setup_sur, ics, apply_vol_rhs, apply_vol_ifunction, apply_vol_ijacobian, apply_inflow, apply_outflow, 279 apply_freestream, apply_inflow_jacobian, apply_outflow_jacobian, apply_freestream_jacobian; 280 bool non_zero_time; 281 PetscErrorCode (*bc)(PetscInt, PetscReal, const PetscReal[], PetscInt, PetscScalar[], void *); 282 void *bc_ctx; 283 PetscBool bc_from_ics, use_strong_bc_ceed; 284 PetscErrorCode (*print_info)(ProblemData *, AppCtx); 285 }; 286 287 extern int FreeContextPetsc(void *); 288 289 // ----------------------------------------------------------------------------- 290 // Set up problems 291 // ----------------------------------------------------------------------------- 292 // Set up function for each problem 293 extern PetscErrorCode NS_GAUSSIAN_WAVE(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 294 extern PetscErrorCode NS_CHANNEL(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 295 extern PetscErrorCode NS_BLASIUS(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 296 extern PetscErrorCode NS_NEWTONIAN_IG(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 297 extern PetscErrorCode NS_DENSITY_CURRENT(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 298 extern PetscErrorCode NS_EULER_VORTEX(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 299 extern PetscErrorCode NS_SHOCKTUBE(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 300 extern PetscErrorCode NS_ADVECTION(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 301 extern PetscErrorCode NS_ADVECTION2D(ProblemData *problem, DM dm, void *ctx, SimpleBC bc); 302 303 // Print function for each problem 304 extern PetscErrorCode PRINT_NEWTONIAN(ProblemData *problem, AppCtx app_ctx); 305 306 extern PetscErrorCode PRINT_EULER_VORTEX(ProblemData *problem, AppCtx app_ctx); 307 308 extern PetscErrorCode PRINT_SHOCKTUBE(ProblemData *problem, AppCtx app_ctx); 309 310 extern PetscErrorCode PRINT_ADVECTION(ProblemData *problem, AppCtx app_ctx); 311 312 extern PetscErrorCode PRINT_ADVECTION2D(ProblemData *problem, AppCtx app_ctx); 313 314 // ----------------------------------------------------------------------------- 315 // libCEED functions 316 // ----------------------------------------------------------------------------- 317 // Utility function - essential BC dofs are encoded in closure indices as -(i+1). 318 PetscInt Involute(PetscInt i); 319 320 // Utility function to create local CEED restriction 321 PetscErrorCode CreateRestrictionFromPlex(Ceed ceed, DM dm, CeedInt height, DMLabel domain_label, CeedInt label_value, PetscInt dm_field, 322 CeedElemRestriction *elem_restr); 323 324 // Utility function to get Ceed Restriction for each domain 325 PetscErrorCode GetRestrictionForDomain(Ceed ceed, DM dm, CeedInt height, DMLabel domain_label, PetscInt label_value, PetscInt dm_field, CeedInt Q, 326 CeedInt q_data_size, CeedElemRestriction *elem_restr_q, CeedElemRestriction *elem_restr_x, 327 CeedElemRestriction *elem_restr_qd_i); 328 329 // Utility function to create CEED Composite Operator for the entire domain 330 PetscErrorCode CreateOperatorForDomain(Ceed ceed, DM dm, SimpleBC bc, CeedData ceed_data, Physics phys, CeedOperator op_apply_vol, 331 CeedOperator op_apply_ijacobian_vol, CeedInt height, CeedInt P_sur, CeedInt Q_sur, CeedInt q_data_size_sur, 332 CeedInt jac_data_size_sur, CeedOperator *op_apply, CeedOperator *op_apply_ijacobian); 333 334 PetscErrorCode SetupLibceed(Ceed ceed, CeedData ceed_data, DM dm, User user, AppCtx app_ctx, ProblemData *problem, SimpleBC bc); 335 336 // ----------------------------------------------------------------------------- 337 // Time-stepping functions 338 // ----------------------------------------------------------------------------- 339 // Compute mass matrix for explicit scheme 340 PetscErrorCode ComputeLumpedMassMatrix(Ceed ceed, DM dm, CeedData ceed_data, Vec M); 341 342 // RHS (Explicit time-stepper) function setup 343 PetscErrorCode RHS_NS(TS ts, PetscReal t, Vec Q, Vec G, void *user_data); 344 345 // Implicit time-stepper function setup 346 PetscErrorCode IFunction_NS(TS ts, PetscReal t, Vec Q, Vec Q_dot, Vec G, void *user_data); 347 348 // User provided TS Monitor 349 PetscErrorCode TSMonitor_NS(TS ts, PetscInt step_no, PetscReal time, Vec Q, void *ctx); 350 351 // TS: Create, setup, and solve 352 PetscErrorCode TSSolve_NS(DM dm, User user, AppCtx app_ctx, Physics phys, Vec *Q, PetscScalar *f_time, TS *ts); 353 354 // Update Boundary Values when time has changed 355 PetscErrorCode UpdateBoundaryValues(User user, Vec Q_loc, PetscReal t); 356 357 // ----------------------------------------------------------------------------- 358 // Setup DM 359 // ----------------------------------------------------------------------------- 360 // Create mesh 361 PetscErrorCode CreateDM(MPI_Comm comm, ProblemData *problem, MatType, VecType, DM *dm); 362 363 // Set up DM 364 PetscErrorCode SetUpDM(DM dm, ProblemData *problem, PetscInt degree, SimpleBC bc, Physics phys); 365 366 // Refine DM for high-order viz 367 PetscErrorCode VizRefineDM(DM dm, User user, ProblemData *problem, SimpleBC bc, Physics phys); 368 369 // ----------------------------------------------------------------------------- 370 // Process command line options 371 // ----------------------------------------------------------------------------- 372 // Register problems to be available on the command line 373 PetscErrorCode RegisterProblems_NS(AppCtx app_ctx); 374 375 // Process general command line options 376 PetscErrorCode ProcessCommandLineOptions(MPI_Comm comm, AppCtx app_ctx, SimpleBC bc); 377 378 // ----------------------------------------------------------------------------- 379 // Miscellaneous utility functions 380 // ----------------------------------------------------------------------------- 381 PetscErrorCode ICs_FixMultiplicity(DM dm, CeedData ceed_data, User user, Vec Q_loc, Vec Q, CeedScalar time); 382 383 PetscErrorCode DMPlexInsertBoundaryValues_NS(DM dm, PetscBool insert_essential, Vec Q_loc, PetscReal time, Vec face_geom_FVM, Vec cell_geom_FVM, 384 Vec grad_FVM); 385 386 // Compare reference solution values with current test run for CI 387 PetscErrorCode RegressionTests_NS(AppCtx app_ctx, Vec Q); 388 389 // Get error for problems with exact solutions 390 PetscErrorCode GetError_NS(CeedData ceed_data, DM dm, User user, Vec Q, PetscScalar final_time); 391 392 // Post-processing 393 PetscErrorCode PostProcess_NS(TS ts, CeedData ceed_data, DM dm, ProblemData *problem, User user, Vec Q, PetscScalar final_time); 394 395 // -- Gather initial Q values in case of continuation of simulation 396 PetscErrorCode SetupICsFromBinary(MPI_Comm comm, AppCtx app_ctx, Vec Q); 397 398 // Record boundary values from initial condition 399 PetscErrorCode SetBCsFromICs_NS(DM dm, Vec Q, Vec Q_loc); 400 401 // Versioning token for binary checkpoints 402 extern const PetscInt FLUIDS_FILE_TOKEN; 403 404 // Create appropriate mass qfunction based on number of components N 405 PetscErrorCode CreateMassQFunction(Ceed ceed, CeedInt N, CeedInt q_data_size, CeedQFunction *qf); 406 407 PetscErrorCode ComputeL2Projection(Vec source_vec, Vec target_vec, OperatorApplyContext rhs_matop_ctx, KSP ksp); 408 409 PetscErrorCode NodalProjectionDataDestroy(NodalProjectionData context); 410 411 PetscErrorCode PHASTADatFileOpen(const MPI_Comm comm, const char path[PETSC_MAX_PATH_LEN], const PetscInt char_array_len, PetscInt dims[2], 412 FILE **fp); 413 414 PetscErrorCode PHASTADatFileGetNRows(const MPI_Comm comm, const char path[PETSC_MAX_PATH_LEN], PetscInt *nrows); 415 416 PetscErrorCode PHASTADatFileReadToArrayReal(const MPI_Comm comm, const char path[PETSC_MAX_PATH_LEN], PetscReal array[]); 417 418 // ----------------------------------------------------------------------------- 419 // Turbulence Statistics Collection Functions 420 // ----------------------------------------------------------------------------- 421 422 PetscErrorCode TurbulenceStatisticsSetup(Ceed ceed, User user, CeedData ceed_data, ProblemData *problem); 423 PetscErrorCode TSMonitor_TurbulenceStatistics(TS ts, PetscInt steps, PetscReal solution_time, Vec Q, void *ctx); 424 PetscErrorCode TurbulenceStatisticsDestroy(User user, CeedData ceed_data); 425 426 // ----------------------------------------------------------------------------- 427 // Data-Driven Subgrid Stress (DD-SGS) Modeling Functions 428 // ----------------------------------------------------------------------------- 429 430 PetscErrorCode SGS_DD_ModelSetup(Ceed ceed, User user, CeedData ceed_data, ProblemData *problem); 431 PetscErrorCode SGS_DD_DataDestroy(SGS_DD_Data sgs_dd_data); 432 PetscErrorCode SGS_DD_ModelApplyIFunction(User user, const Vec Q_loc, Vec G_loc); 433 PetscErrorCode VelocityGradientProjectionSetup(Ceed ceed, User user, CeedData ceed_data, ProblemData *problem); 434 PetscErrorCode VelocityGradientProjectionApply(User user, Vec Q_loc, Vec VelocityGradient); 435 PetscErrorCode GridAnisotropyTensorProjectionSetupApply(Ceed ceed, User user, CeedData ceed_data, CeedElemRestriction *elem_restr_grid_aniso, 436 CeedVector *grid_aniso_vector); 437 PetscErrorCode GridAnisotropyTensorCalculateCollocatedVector(Ceed ceed, User user, CeedData ceed_data, CeedElemRestriction *elem_restr_grid_aniso, 438 CeedVector *aniso_colloc_ceed, PetscInt *num_comp_aniso); 439 440 // ----------------------------------------------------------------------------- 441 // Boundary Condition Related Functions 442 // ----------------------------------------------------------------------------- 443 444 // Setup StrongBCs that use QFunctions 445 PetscErrorCode SetupStrongBC_Ceed(Ceed ceed, CeedData ceed_data, DM dm, User user, ProblemData *problem, SimpleBC bc, CeedInt Q_sur, 446 CeedInt q_data_size_sur); 447 448 PetscErrorCode FreestreamBCSetup(ProblemData *problem, DM dm, void *ctx, NewtonianIdealGasContext newtonian_ig_ctx, const StatePrimitive *reference); 449 PetscErrorCode OutflowBCSetup(ProblemData *problem, DM dm, void *ctx, NewtonianIdealGasContext newtonian_ig_ctx, const StatePrimitive *reference); 450 451 // ----------------------------------------------------------------------------- 452 // Differential Filtering Functions 453 // ----------------------------------------------------------------------------- 454 455 PetscErrorCode DifferentialFilterSetup(Ceed ceed, User user, CeedData ceed_data, ProblemData *problem); 456 PetscErrorCode DifferentialFilterDataDestroy(DiffFilterData diff_filter); 457 PetscErrorCode TSMonitor_DifferentialFilter(TS ts, PetscInt steps, PetscReal solution_time, Vec Q, void *ctx); 458 PetscErrorCode DifferentialFilterApply(User user, const PetscReal solution_time, const Vec Q, Vec Filtered_Solution); 459 PetscErrorCode DifferentialFilter_MMS_ICSetup(ProblemData *problem); 460 461 #endif // libceed_fluids_examples_navier_stokes_h 462