1 // Copyright (c) 2017-2025, 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 /// @file 9 /// Utility functions for setting up ADVECTION 10 11 #include "../qfunctions/advection.h" 12 13 #include <ceed.h> 14 #include <petscdm.h> 15 16 #include "../navierstokes.h" 17 18 // @brief Create CeedOperator for stabilized mass KSP for explicit timestepping 19 // 20 // Only used for SUPG stabilization 21 PetscErrorCode CreateKSPMassOperator_AdvectionStabilized(User user, CeedOperator *op_mass) { 22 Ceed ceed = user->ceed; 23 CeedInt num_comp_q, q_data_size; 24 CeedQFunction qf_mass; 25 CeedElemRestriction elem_restr_q, elem_restr_qd_i; 26 CeedBasis basis_q; 27 CeedVector q_data; 28 CeedQFunctionContext qf_ctx = NULL; 29 PetscInt dim; 30 31 PetscFunctionBeginUser; 32 PetscCall(DMGetDimension(user->dm, &dim)); 33 { // Get restriction and basis from the RHS function 34 CeedOperator *sub_ops; 35 CeedOperatorField field; 36 PetscInt sub_op_index = 0; // will be 0 for the volume op 37 38 PetscCallCeed(ceed, CeedOperatorCompositeGetSubList(user->op_rhs_ctx->op, &sub_ops)); 39 PetscCallCeed(ceed, CeedOperatorGetFieldByName(sub_ops[sub_op_index], "q", &field)); 40 PetscCallCeed(ceed, CeedOperatorFieldGetData(field, NULL, &elem_restr_q, &basis_q, NULL)); 41 42 PetscCallCeed(ceed, CeedOperatorGetFieldByName(sub_ops[sub_op_index], "qdata", &field)); 43 PetscCallCeed(ceed, CeedOperatorFieldGetData(field, NULL, &elem_restr_qd_i, NULL, &q_data)); 44 45 PetscCallCeed(ceed, CeedOperatorGetContext(sub_ops[sub_op_index], &qf_ctx)); 46 } 47 48 PetscCallCeed(ceed, CeedElemRestrictionGetNumComponents(elem_restr_q, &num_comp_q)); 49 PetscCallCeed(ceed, CeedElemRestrictionGetNumComponents(elem_restr_qd_i, &q_data_size)); 50 51 switch (dim) { 52 case 2: 53 PetscCallCeed(ceed, CeedQFunctionCreateInterior(ceed, 1, MassFunction_Advection2D, MassFunction_Advection2D_loc, &qf_mass)); 54 break; 55 case 3: 56 PetscCallCeed(ceed, CeedQFunctionCreateInterior(ceed, 1, MassFunction_Advection, MassFunction_Advection_loc, &qf_mass)); 57 break; 58 } 59 60 PetscCallCeed(ceed, CeedQFunctionSetContext(qf_mass, qf_ctx)); 61 PetscCallCeed(ceed, CeedQFunctionSetUserFlopsEstimate(qf_mass, 0)); 62 PetscCallCeed(ceed, CeedQFunctionAddInput(qf_mass, "q_dot", 5, CEED_EVAL_INTERP)); 63 PetscCallCeed(ceed, CeedQFunctionAddInput(qf_mass, "q", 5, CEED_EVAL_INTERP)); 64 PetscCallCeed(ceed, CeedQFunctionAddInput(qf_mass, "qdata", q_data_size, CEED_EVAL_NONE)); 65 PetscCallCeed(ceed, CeedQFunctionAddOutput(qf_mass, "v", 5, CEED_EVAL_INTERP)); 66 PetscCallCeed(ceed, CeedQFunctionAddOutput(qf_mass, "Grad_v", 5 * dim, CEED_EVAL_GRAD)); 67 68 PetscCallCeed(ceed, CeedOperatorCreate(ceed, qf_mass, NULL, NULL, op_mass)); 69 PetscCallCeed(ceed, CeedOperatorSetField(*op_mass, "q_dot", elem_restr_q, basis_q, CEED_VECTOR_ACTIVE)); 70 PetscCallCeed(ceed, CeedOperatorSetField(*op_mass, "q", elem_restr_q, basis_q, user->q_ceed)); 71 PetscCallCeed(ceed, CeedOperatorSetField(*op_mass, "qdata", elem_restr_qd_i, CEED_BASIS_NONE, q_data)); 72 PetscCallCeed(ceed, CeedOperatorSetField(*op_mass, "v", elem_restr_q, basis_q, CEED_VECTOR_ACTIVE)); 73 PetscCallCeed(ceed, CeedOperatorSetField(*op_mass, "Grad_v", elem_restr_q, basis_q, CEED_VECTOR_ACTIVE)); 74 75 PetscCallCeed(ceed, CeedVectorDestroy(&q_data)); 76 PetscCallCeed(ceed, CeedElemRestrictionDestroy(&elem_restr_q)); 77 PetscCallCeed(ceed, CeedElemRestrictionDestroy(&elem_restr_qd_i)); 78 PetscCallCeed(ceed, CeedBasisDestroy(&basis_q)); 79 PetscCallCeed(ceed, CeedQFunctionContextDestroy(&qf_ctx)); 80 PetscCallCeed(ceed, CeedQFunctionDestroy(&qf_mass)); 81 PetscFunctionReturn(PETSC_SUCCESS); 82 } 83 84 PetscErrorCode NS_ADVECTION(ProblemData problem, DM dm, void *ctx, SimpleBC bc) { 85 WindType wind_type; 86 AdvectionICType advectionic_type; 87 BubbleContinuityType bubble_continuity_type; 88 StabilizationType stab; 89 StabilizationTauType stab_tau; 90 SetupContextAdv setup_context; 91 User user = *(User *)ctx; 92 MPI_Comm comm = user->comm; 93 Ceed ceed = user->ceed; 94 PetscBool implicit; 95 AdvectionContext advection_ctx; 96 CeedQFunctionContext advection_context; 97 PetscInt dim; 98 99 PetscFunctionBeginUser; 100 PetscCall(PetscCalloc1(1, &setup_context)); 101 PetscCall(PetscCalloc1(1, &advection_ctx)); 102 PetscCall(DMGetDimension(dm, &dim)); 103 104 // ------------------------------------------------------ 105 // SET UP ADVECTION 106 // ------------------------------------------------------ 107 switch (dim) { 108 case 2: 109 problem->dim = 2; 110 problem->ics.qfunction = ICsAdvection2d; 111 problem->ics.qfunction_loc = ICsAdvection2d_loc; 112 problem->apply_vol_rhs.qfunction = RHS_Advection2d; 113 problem->apply_vol_rhs.qfunction_loc = RHS_Advection2d_loc; 114 problem->apply_vol_ifunction.qfunction = IFunction_Advection2d; 115 problem->apply_vol_ifunction.qfunction_loc = IFunction_Advection2d_loc; 116 problem->apply_inflow.qfunction = Advection2d_InOutFlow; 117 problem->apply_inflow.qfunction_loc = Advection2d_InOutFlow_loc; 118 problem->compute_exact_solution_error = PETSC_TRUE; 119 problem->print_info = PRINT_ADVECTION; 120 break; 121 case 3: 122 problem->dim = 3; 123 problem->ics.qfunction = ICsAdvection; 124 problem->ics.qfunction_loc = ICsAdvection_loc; 125 problem->apply_vol_rhs.qfunction = RHS_Advection; 126 problem->apply_vol_rhs.qfunction_loc = RHS_Advection_loc; 127 problem->apply_vol_ifunction.qfunction = IFunction_Advection; 128 problem->apply_vol_ifunction.qfunction_loc = IFunction_Advection_loc; 129 problem->apply_inflow.qfunction = Advection_InOutFlow; 130 problem->apply_inflow.qfunction_loc = Advection_InOutFlow_loc; 131 problem->compute_exact_solution_error = PETSC_FALSE; 132 problem->print_info = PRINT_ADVECTION; 133 break; 134 } 135 136 // ------------------------------------------------------ 137 // Create the libCEED context 138 // ------------------------------------------------------ 139 CeedScalar rc = 1000.; // m (Radius of bubble) 140 CeedScalar CtauS = 0.; // dimensionless 141 PetscBool strong_form = PETSC_FALSE; 142 CeedScalar E_wind = 1.e6; // J 143 CeedScalar Ctau_a = PetscPowScalarInt(user->app_ctx->degree, 2); 144 CeedScalar Ctau_t = 0.; 145 PetscReal wind[3] = {1., 0, 0}; // m/s 146 CeedScalar diffusion_coeff = 0.; 147 PetscReal domain_min[3], domain_max[3], domain_size[3]; 148 PetscCall(DMGetBoundingBox(dm, domain_min, domain_max)); 149 for (PetscInt i = 0; i < problem->dim; i++) domain_size[i] = domain_max[i] - domain_min[i]; 150 151 // ------------------------------------------------------ 152 // Create the PETSc context 153 // ------------------------------------------------------ 154 PetscScalar meter = 1e-2; // 1 meter in scaled length units 155 PetscScalar kilogram = 1e-6; // 1 kilogram in scaled mass units 156 PetscScalar second = 1e-2; // 1 second in scaled time units 157 PetscScalar Joule; 158 159 // ------------------------------------------------------ 160 // Command line Options 161 // ------------------------------------------------------ 162 PetscOptionsBegin(comm, NULL, "Options for ADVECTION problem", NULL); 163 // -- Physics 164 PetscCall(PetscOptionsScalar("-rc", "Characteristic radius of thermal bubble", NULL, rc, &rc, NULL)); 165 PetscBool translation; 166 PetscCall(PetscOptionsEnum("-wind_type", "Wind type in Advection", NULL, WindTypes, (PetscEnum)(wind_type = WIND_ROTATION), (PetscEnum *)&wind_type, 167 &translation)); 168 PetscInt n = problem->dim; 169 PetscBool user_wind; 170 PetscCall(PetscOptionsRealArray("-wind_translation", "Constant wind vector", NULL, wind, &n, &user_wind)); 171 PetscCall(PetscOptionsScalar("-diffusion_coeff", "Diffusion coefficient", NULL, diffusion_coeff, &diffusion_coeff, NULL)); 172 PetscCall(PetscOptionsScalar("-CtauS", "Scale coefficient for tau (nondimensional)", NULL, CtauS, &CtauS, NULL)); 173 PetscCall(PetscOptionsBool("-strong_form", "Strong (true) or weak/integrated by parts (false) advection residual", NULL, strong_form, &strong_form, 174 NULL)); 175 PetscCall(PetscOptionsScalar("-E_wind", "Total energy of inflow wind", NULL, E_wind, &E_wind, NULL)); 176 PetscCall(PetscOptionsEnum("-advection_ic_type", "Initial condition for Advection problem", NULL, AdvectionICTypes, 177 (PetscEnum)(advectionic_type = ADVECTIONIC_BUBBLE_SPHERE), (PetscEnum *)&advectionic_type, NULL)); 178 bubble_continuity_type = problem->dim == 3 ? BUBBLE_CONTINUITY_SMOOTH : BUBBLE_CONTINUITY_COSINE; 179 PetscCall(PetscOptionsEnum("-bubble_continuity", "Smooth, back_sharp, or thick", NULL, BubbleContinuityTypes, (PetscEnum)bubble_continuity_type, 180 (PetscEnum *)&bubble_continuity_type, NULL)); 181 PetscCall(PetscOptionsEnum("-stab", "Stabilization method", NULL, StabilizationTypes, (PetscEnum)(stab = STAB_NONE), (PetscEnum *)&stab, NULL)); 182 PetscCall(PetscOptionsEnum("-stab_tau", "Stabilization constant, tau", NULL, StabilizationTauTypes, (PetscEnum)(stab_tau = STAB_TAU_CTAU), 183 (PetscEnum *)&stab_tau, NULL)); 184 PetscCall(PetscOptionsScalar("-Ctau_t", "Stabilization time constant", NULL, Ctau_t, &Ctau_t, NULL)); 185 PetscCall(PetscOptionsScalar("-Ctau_a", "Coefficient for the stabilization ", NULL, Ctau_a, &Ctau_a, NULL)); 186 PetscCall(PetscOptionsBool("-implicit", "Use implicit (IFunction) formulation", NULL, implicit = PETSC_FALSE, &implicit, NULL)); 187 188 // -- Units 189 PetscCall(PetscOptionsScalar("-units_meter", "1 meter in scaled length units", NULL, meter, &meter, NULL)); 190 meter = fabs(meter); 191 PetscCall(PetscOptionsScalar("-units_kilogram", "1 kilogram in scaled mass units", NULL, kilogram, &kilogram, NULL)); 192 kilogram = fabs(kilogram); 193 PetscCall(PetscOptionsScalar("-units_second", "1 second in scaled time units", NULL, second, &second, NULL)); 194 second = fabs(second); 195 196 // -- Warnings 197 if (wind_type == WIND_ROTATION && user_wind) { 198 PetscCall(PetscPrintf(comm, "Warning! Use -wind_translation only with -wind_type translation\n")); 199 } 200 if (wind_type == WIND_TRANSLATION && advectionic_type == ADVECTIONIC_BUBBLE_CYLINDER && wind[2] != 0.) { 201 wind[2] = 0; 202 PetscCall( 203 PetscPrintf(comm, "Warning! Background wind in the z direction should be zero (-wind_translation x,x,0) with -advection_ic_type cylinder\n")); 204 } 205 if (stab == STAB_NONE && CtauS != 0) { 206 PetscCall(PetscPrintf(comm, "Warning! Use -CtauS only with -stab su or -stab supg\n")); 207 } 208 PetscOptionsEnd(); 209 210 if (stab == STAB_SUPG) problem->create_mass_operator = CreateKSPMassOperator_AdvectionStabilized; 211 212 // ------------------------------------------------------ 213 // Set up the PETSc context 214 // ------------------------------------------------------ 215 // -- Define derived units 216 Joule = kilogram * PetscSqr(meter) / PetscSqr(second); 217 218 user->units->meter = meter; 219 user->units->kilogram = kilogram; 220 user->units->second = second; 221 user->units->Joule = Joule; 222 223 // ------------------------------------------------------ 224 // Set up the libCEED context 225 // ------------------------------------------------------ 226 // -- Scale variables to desired units 227 E_wind *= Joule; 228 rc = fabs(rc) * meter; 229 for (PetscInt i = 0; i < problem->dim; i++) { 230 wind[i] *= (meter / second); 231 domain_size[i] *= meter; 232 } 233 problem->dm_scale = meter; 234 235 // -- Setup Context 236 setup_context->rc = rc; 237 setup_context->lx = domain_size[0]; 238 setup_context->ly = domain_size[1]; 239 setup_context->lz = problem->dim == 3 ? domain_size[2] : 0.; 240 setup_context->wind[0] = wind[0]; 241 setup_context->wind[1] = wind[1]; 242 setup_context->wind[2] = problem->dim == 3 ? wind[2] : 0.; 243 setup_context->wind_type = wind_type; 244 setup_context->initial_condition_type = advectionic_type; 245 setup_context->bubble_continuity_type = bubble_continuity_type; 246 setup_context->time = 0; 247 248 // -- QFunction Context 249 user->phys->implicit = implicit; 250 advection_ctx->CtauS = CtauS; 251 advection_ctx->E_wind = E_wind; 252 advection_ctx->implicit = implicit; 253 advection_ctx->strong_form = strong_form; 254 advection_ctx->stabilization = stab; 255 advection_ctx->stabilization_tau = stab_tau; 256 advection_ctx->Ctau_a = Ctau_a; 257 advection_ctx->Ctau_t = Ctau_t; 258 advection_ctx->diffusion_coeff = diffusion_coeff; 259 260 PetscCallCeed(ceed, CeedQFunctionContextCreate(user->ceed, &problem->ics.qfunction_context)); 261 PetscCallCeed(ceed, 262 CeedQFunctionContextSetData(problem->ics.qfunction_context, CEED_MEM_HOST, CEED_USE_POINTER, sizeof(*setup_context), setup_context)); 263 PetscCallCeed(ceed, CeedQFunctionContextSetDataDestroy(problem->ics.qfunction_context, CEED_MEM_HOST, FreeContextPetsc)); 264 265 PetscCallCeed(ceed, CeedQFunctionContextCreate(user->ceed, &advection_context)); 266 PetscCallCeed(ceed, CeedQFunctionContextSetData(advection_context, CEED_MEM_HOST, CEED_USE_POINTER, sizeof(*advection_ctx), advection_ctx)); 267 PetscCallCeed(ceed, CeedQFunctionContextSetDataDestroy(advection_context, CEED_MEM_HOST, FreeContextPetsc)); 268 PetscCallCeed(ceed, CeedQFunctionContextRegisterDouble(advection_context, "timestep size", offsetof(struct AdvectionContext_, dt), 1, 269 "Size of timestep, delta t")); 270 problem->apply_vol_rhs.qfunction_context = advection_context; 271 PetscCallCeed(ceed, CeedQFunctionContextReferenceCopy(advection_context, &problem->apply_vol_ifunction.qfunction_context)); 272 PetscCallCeed(ceed, CeedQFunctionContextReferenceCopy(advection_context, &problem->apply_inflow.qfunction_context)); 273 PetscFunctionReturn(PETSC_SUCCESS); 274 } 275 276 PetscErrorCode PRINT_ADVECTION(User user, ProblemData problem, AppCtx app_ctx) { 277 MPI_Comm comm = user->comm; 278 Ceed ceed = user->ceed; 279 SetupContextAdv setup_ctx; 280 AdvectionContext advection_ctx; 281 282 PetscFunctionBeginUser; 283 PetscCallCeed(ceed, CeedQFunctionContextGetData(problem->ics.qfunction_context, CEED_MEM_HOST, &setup_ctx)); 284 PetscCallCeed(ceed, CeedQFunctionContextGetData(problem->apply_vol_rhs.qfunction_context, CEED_MEM_HOST, &advection_ctx)); 285 PetscCall(PetscPrintf(comm, 286 " Problem:\n" 287 " Problem Name : %s\n" 288 " Stabilization : %s\n" 289 " Initial Condition Type : %s\n" 290 " Bubble Continuity : %s\n" 291 " Wind Type : %s\n", 292 app_ctx->problem_name, StabilizationTypes[advection_ctx->stabilization], AdvectionICTypes[setup_ctx->initial_condition_type], 293 BubbleContinuityTypes[setup_ctx->bubble_continuity_type], WindTypes[setup_ctx->wind_type])); 294 295 if (setup_ctx->wind_type == WIND_TRANSLATION) { 296 switch (problem->dim) { 297 case 2: 298 PetscCall(PetscPrintf(comm, " Background Wind : %f,%f\n", setup_ctx->wind[0], setup_ctx->wind[1])); 299 break; 300 case 3: 301 PetscCall( 302 PetscPrintf(comm, " Background Wind : %f,%f,%f\n", setup_ctx->wind[0], setup_ctx->wind[1], setup_ctx->wind[2])); 303 break; 304 } 305 } 306 PetscCallCeed(ceed, CeedQFunctionContextRestoreData(problem->ics.qfunction_context, &setup_ctx)); 307 PetscCallCeed(ceed, CeedQFunctionContextRestoreData(problem->apply_vol_rhs.qfunction_context, &advection_ctx)); 308 PetscFunctionReturn(PETSC_SUCCESS); 309 } 310