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 /// @file 9 /// Utility functions for setting up problems using the Newtonian Qfunction 10 11 #include "../qfunctions/newtonian.h" 12 13 #include <ceed.h> 14 #include <petscdm.h> 15 16 #include "../navierstokes.h" 17 #include "../qfunctions/setupgeo.h" 18 19 // For use with PetscOptionsEnum 20 static const char *const StateVariables[] = {"CONSERVATIVE", "PRIMITIVE", "StateVariable", "STATEVAR_", NULL}; 21 22 // Compute relative error |a - b|/|s| 23 static PetscErrorCode CheckPrimitiveWithTolerance(StatePrimitive sY, StatePrimitive aY, StatePrimitive bY, const char *name, PetscReal rtol_pressure, 24 PetscReal rtol_velocity, PetscReal rtol_temperature) { 25 PetscFunctionBeginUser; 26 StatePrimitive eY; // relative error 27 eY.pressure = (aY.pressure - bY.pressure) / sY.pressure; 28 PetscScalar u = sqrt(Square(sY.velocity[0]) + Square(sY.velocity[1]) + Square(sY.velocity[2])); 29 for (int j = 0; j < 3; j++) eY.velocity[j] = (aY.velocity[j] - bY.velocity[j]) / u; 30 eY.temperature = (aY.temperature - bY.temperature) / sY.temperature; 31 if (fabs(eY.pressure) > rtol_pressure) printf("%s: pressure error %g\n", name, eY.pressure); 32 for (int j = 0; j < 3; j++) { 33 if (fabs(eY.velocity[j]) > rtol_velocity) printf("%s: velocity[%d] error %g\n", name, j, eY.velocity[j]); 34 } 35 if (fabs(eY.temperature) > rtol_temperature) printf("%s: temperature error %g\n", name, eY.temperature); 36 PetscFunctionReturn(PETSC_SUCCESS); 37 } 38 39 static PetscErrorCode UnitTests_Newtonian(User user, NewtonianIdealGasContext gas) { 40 Units units = user->units; 41 const CeedScalar eps = 1e-6; 42 const CeedScalar kg = units->kilogram, m = units->meter, sec = units->second, Pascal = units->Pascal; 43 PetscFunctionBeginUser; 44 const CeedScalar rho = 1.2 * kg / (m * m * m), u = 40 * m / sec; 45 CeedScalar U[5] = {rho, rho * u, rho * u * 1.1, rho * u * 1.2, 250e3 * Pascal + .5 * rho * u * u}; 46 const CeedScalar x[3] = {.1, .2, .3}; 47 State s = StateFromU(gas, U, x); 48 for (int i = 0; i < 8; i++) { 49 CeedScalar dU[5] = {0}, dx[3] = {0}; 50 if (i < 5) dU[i] = U[i]; 51 else dx[i - 5] = x[i - 5]; 52 State ds = StateFromU_fwd(gas, s, dU, x, dx); 53 for (int j = 0; j < 5; j++) dU[j] = (1 + eps * (i == j)) * U[j]; 54 for (int j = 0; j < 3; j++) dx[j] = (1 + eps * (i == 5 + j)) * x[j]; 55 State t = StateFromU(gas, dU, dx); 56 StatePrimitive dY; 57 dY.pressure = (t.Y.pressure - s.Y.pressure) / eps; 58 for (int j = 0; j < 3; j++) dY.velocity[j] = (t.Y.velocity[j] - s.Y.velocity[j]) / eps; 59 dY.temperature = (t.Y.temperature - s.Y.temperature) / eps; 60 char buf[128]; 61 snprintf(buf, sizeof buf, "StateFromU_fwd i=%d", i); 62 PetscCall(CheckPrimitiveWithTolerance(dY, ds.Y, dY, buf, 5e-6, 1e-6, 1e-6)); 63 } 64 PetscFunctionReturn(PETSC_SUCCESS); 65 } 66 67 PetscErrorCode NS_NEWTONIAN_IG(ProblemData *problem, DM dm, void *ctx, SimpleBC bc) { 68 SetupContext setup_context; 69 User user = *(User *)ctx; 70 CeedInt degree = user->app_ctx->degree; 71 StabilizationType stab; 72 StateVariable state_var; 73 MPI_Comm comm = PETSC_COMM_WORLD; 74 PetscBool implicit; 75 PetscBool has_curr_time = PETSC_FALSE, unit_tests; 76 NewtonianIdealGasContext newtonian_ig_ctx; 77 CeedQFunctionContext newtonian_ig_context; 78 79 PetscFunctionBeginUser; 80 PetscCall(PetscCalloc1(1, &setup_context)); 81 PetscCall(PetscCalloc1(1, &newtonian_ig_ctx)); 82 83 // ------------------------------------------------------ 84 // Setup Generic Newtonian IG Problem 85 // ------------------------------------------------------ 86 problem->dim = 3; 87 problem->q_data_size_vol = 10; 88 problem->q_data_size_sur = 10; 89 problem->jac_data_size_sur = 11; 90 problem->setup_vol.qfunction = Setup; 91 problem->setup_vol.qfunction_loc = Setup_loc; 92 problem->setup_sur.qfunction = SetupBoundary; 93 problem->setup_sur.qfunction_loc = SetupBoundary_loc; 94 problem->non_zero_time = PETSC_FALSE; 95 problem->print_info = PRINT_NEWTONIAN; 96 97 // ------------------------------------------------------ 98 // Create the libCEED context 99 // ------------------------------------------------------ 100 CeedScalar cv = 717.; // J/(kg K) 101 CeedScalar cp = 1004.; // J/(kg K) 102 CeedScalar g[3] = {0, 0, -9.81}; // m/s^2 103 CeedScalar lambda = -2. / 3.; // - 104 CeedScalar mu = 1.8e-5; // Pa s, dynamic viscosity 105 CeedScalar k = 0.02638; // W/(m K) 106 CeedScalar c_tau = 0.5 / degree; // - 107 CeedScalar Ctau_t = 1.0; // - 108 CeedScalar Cv_func[3] = {36, 60, 128}; 109 CeedScalar Ctau_v = Cv_func[(CeedInt)Min(3, degree) - 1]; 110 CeedScalar Ctau_C = 0.25 / degree; 111 CeedScalar Ctau_M = 0.25 / degree; 112 CeedScalar Ctau_E = 0.125; 113 PetscReal domain_min[3], domain_max[3], domain_size[3]; 114 PetscCall(DMGetBoundingBox(dm, domain_min, domain_max)); 115 for (PetscInt i = 0; i < 3; i++) domain_size[i] = domain_max[i] - domain_min[i]; 116 117 StatePrimitive reference = {.pressure = 1.01e5, .velocity = {0}, .temperature = 288.15}; 118 CeedScalar idl_decay_time = -1, idl_start = 0, idl_length = 0; 119 PetscBool idl_enable = PETSC_FALSE; 120 121 // ------------------------------------------------------ 122 // Create the PETSc context 123 // ------------------------------------------------------ 124 PetscScalar meter = 1; // 1 meter in scaled length units 125 PetscScalar kilogram = 1; // 1 kilogram in scaled mass units 126 PetscScalar second = 1; // 1 second in scaled time units 127 PetscScalar Kelvin = 1; // 1 Kelvin in scaled temperature units 128 PetscScalar W_per_m_K, Pascal, J_per_kg_K, m_per_squared_s; 129 130 // ------------------------------------------------------ 131 // Command line Options 132 // ------------------------------------------------------ 133 PetscOptionsBegin(comm, NULL, "Options for Newtonian Ideal Gas based problem", NULL); 134 // -- Conservative vs Primitive variables 135 PetscCall(PetscOptionsEnum("-state_var", "State variables used", NULL, StateVariables, (PetscEnum)(state_var = STATEVAR_CONSERVATIVE), 136 (PetscEnum *)&state_var, NULL)); 137 138 switch (state_var) { 139 case STATEVAR_CONSERVATIVE: 140 problem->ics.qfunction = ICsNewtonianIG_Conserv; 141 problem->ics.qfunction_loc = ICsNewtonianIG_Conserv_loc; 142 problem->apply_vol_rhs.qfunction = RHSFunction_Newtonian; 143 problem->apply_vol_rhs.qfunction_loc = RHSFunction_Newtonian_loc; 144 problem->apply_vol_ifunction.qfunction = IFunction_Newtonian_Conserv; 145 problem->apply_vol_ifunction.qfunction_loc = IFunction_Newtonian_Conserv_loc; 146 problem->apply_vol_ijacobian.qfunction = IJacobian_Newtonian_Conserv; 147 problem->apply_vol_ijacobian.qfunction_loc = IJacobian_Newtonian_Conserv_loc; 148 problem->apply_inflow.qfunction = BoundaryIntegral_Conserv; 149 problem->apply_inflow.qfunction_loc = BoundaryIntegral_Conserv_loc; 150 problem->apply_inflow_jacobian.qfunction = BoundaryIntegral_Jacobian_Conserv; 151 problem->apply_inflow_jacobian.qfunction_loc = BoundaryIntegral_Jacobian_Conserv_loc; 152 break; 153 154 case STATEVAR_PRIMITIVE: 155 problem->ics.qfunction = ICsNewtonianIG_Prim; 156 problem->ics.qfunction_loc = ICsNewtonianIG_Prim_loc; 157 problem->apply_vol_ifunction.qfunction = IFunction_Newtonian_Prim; 158 problem->apply_vol_ifunction.qfunction_loc = IFunction_Newtonian_Prim_loc; 159 problem->apply_vol_ijacobian.qfunction = IJacobian_Newtonian_Prim; 160 problem->apply_vol_ijacobian.qfunction_loc = IJacobian_Newtonian_Prim_loc; 161 problem->apply_inflow.qfunction = BoundaryIntegral_Prim; 162 problem->apply_inflow.qfunction_loc = BoundaryIntegral_Prim_loc; 163 problem->apply_inflow_jacobian.qfunction = BoundaryIntegral_Jacobian_Prim; 164 problem->apply_inflow_jacobian.qfunction_loc = BoundaryIntegral_Jacobian_Prim_loc; 165 break; 166 } 167 168 // -- Physics 169 PetscCall(PetscOptionsScalar("-cv", "Heat capacity at constant volume", NULL, cv, &cv, NULL)); 170 PetscCall(PetscOptionsScalar("-cp", "Heat capacity at constant pressure", NULL, cp, &cp, NULL)); 171 PetscCall(PetscOptionsScalar("-lambda", "Stokes hypothesis second viscosity coefficient", NULL, lambda, &lambda, NULL)); 172 PetscCall(PetscOptionsScalar("-mu", "Shear dynamic viscosity coefficient", NULL, mu, &mu, NULL)); 173 PetscCall(PetscOptionsScalar("-k", "Thermal conductivity", NULL, k, &k, NULL)); 174 175 PetscInt dim = problem->dim; 176 PetscCall(PetscOptionsRealArray("-g", "Gravitational acceleration", NULL, g, &dim, NULL)); 177 PetscCall(PetscOptionsEnum("-stab", "Stabilization method", NULL, StabilizationTypes, (PetscEnum)(stab = STAB_NONE), (PetscEnum *)&stab, NULL)); 178 PetscCall(PetscOptionsScalar("-c_tau", "Stabilization constant", NULL, c_tau, &c_tau, NULL)); 179 PetscCall(PetscOptionsScalar("-Ctau_t", "Stabilization time constant", NULL, Ctau_t, &Ctau_t, NULL)); 180 PetscCall(PetscOptionsScalar("-Ctau_v", "Stabilization viscous constant", NULL, Ctau_v, &Ctau_v, NULL)); 181 PetscCall(PetscOptionsScalar("-Ctau_C", "Stabilization continuity constant", NULL, Ctau_C, &Ctau_C, NULL)); 182 PetscCall(PetscOptionsScalar("-Ctau_M", "Stabilization momentum constant", NULL, Ctau_M, &Ctau_M, NULL)); 183 PetscCall(PetscOptionsScalar("-Ctau_E", "Stabilization energy constant", NULL, Ctau_E, &Ctau_E, NULL)); 184 PetscCall(PetscOptionsBool("-implicit", "Use implicit (IFunction) formulation", NULL, implicit = PETSC_FALSE, &implicit, NULL)); 185 PetscCall(PetscOptionsBool("-newtonian_unit_tests", "Run Newtonian unit tests", NULL, unit_tests = PETSC_FALSE, &unit_tests, NULL)); 186 187 PetscCall(PetscOptionsScalar("-reference_pressure", "Reference/initial pressure", NULL, reference.pressure, &reference.pressure, NULL)); 188 PetscCall(PetscOptionsScalarArray("-reference_velocity", "Reference/initial velocity", NULL, reference.velocity, &dim, NULL)); 189 PetscCall(PetscOptionsScalar("-reference_temperature", "Reference/initial temperature", NULL, reference.temperature, &reference.temperature, NULL)); 190 191 // -- Units 192 PetscCall(PetscOptionsScalar("-units_meter", "1 meter in scaled length units", NULL, meter, &meter, NULL)); 193 meter = fabs(meter); 194 PetscCall(PetscOptionsScalar("-units_kilogram", "1 kilogram in scaled mass units", NULL, kilogram, &kilogram, NULL)); 195 kilogram = fabs(kilogram); 196 PetscCall(PetscOptionsScalar("-units_second", "1 second in scaled time units", NULL, second, &second, NULL)); 197 second = fabs(second); 198 PetscCall(PetscOptionsScalar("-units_Kelvin", "1 Kelvin in scaled temperature units", NULL, Kelvin, &Kelvin, NULL)); 199 Kelvin = fabs(Kelvin); 200 201 // -- Warnings 202 if (stab == STAB_SUPG && !implicit) { 203 PetscCall(PetscPrintf(comm, "Warning! Use -stab supg only with -implicit\n")); 204 } 205 PetscCheck(!(state_var == STATEVAR_PRIMITIVE && !implicit), comm, PETSC_ERR_SUP, 206 "RHSFunction is not provided for primitive variables (use -state_var primitive only with -implicit)\n"); 207 208 PetscCall(PetscOptionsScalar("-idl_decay_time", "Characteristic timescale of the pressure deviance decay. The timestep is good starting point", 209 NULL, idl_decay_time, &idl_decay_time, &idl_enable)); 210 if (idl_enable && idl_decay_time == 0) SETERRQ(comm, PETSC_ERR_SUP, "idl_decay_time may not be equal to zero."); 211 else if (idl_decay_time < 0) idl_enable = PETSC_FALSE; 212 PetscCall(PetscOptionsScalar("-idl_start", "Start of IDL in the x direction", NULL, idl_start, &idl_start, NULL)); 213 PetscCall(PetscOptionsScalar("-idl_length", "Length of IDL in the positive x direction", NULL, idl_length, &idl_length, NULL)); 214 PetscOptionsEnd(); 215 216 // ------------------------------------------------------ 217 // Set up the PETSc context 218 // ------------------------------------------------------ 219 // -- Define derived units 220 Pascal = kilogram / (meter * PetscSqr(second)); 221 J_per_kg_K = PetscSqr(meter) / (PetscSqr(second) * Kelvin); 222 m_per_squared_s = meter / PetscSqr(second); 223 W_per_m_K = kilogram * meter / (pow(second, 3) * Kelvin); 224 225 user->units->meter = meter; 226 user->units->kilogram = kilogram; 227 user->units->second = second; 228 user->units->Kelvin = Kelvin; 229 user->units->Pascal = Pascal; 230 user->units->J_per_kg_K = J_per_kg_K; 231 user->units->m_per_squared_s = m_per_squared_s; 232 user->units->W_per_m_K = W_per_m_K; 233 234 // ------------------------------------------------------ 235 // Set up the libCEED context 236 // ------------------------------------------------------ 237 // -- Scale variables to desired units 238 cv *= J_per_kg_K; 239 cp *= J_per_kg_K; 240 mu *= Pascal * second; 241 k *= W_per_m_K; 242 for (PetscInt i = 0; i < 3; i++) domain_size[i] *= meter; 243 for (PetscInt i = 0; i < 3; i++) g[i] *= m_per_squared_s; 244 reference.pressure *= Pascal; 245 for (PetscInt i = 0; i < 3; i++) reference.velocity[i] *= meter / second; 246 reference.temperature *= Kelvin; 247 problem->dm_scale = meter; 248 249 // -- Solver Settings 250 user->phys->stab = stab; 251 user->phys->implicit = implicit; 252 user->phys->state_var = state_var; 253 user->phys->has_curr_time = has_curr_time; 254 255 // -- QFunction Context 256 newtonian_ig_ctx->lambda = lambda; 257 newtonian_ig_ctx->mu = mu; 258 newtonian_ig_ctx->k = k; 259 newtonian_ig_ctx->cv = cv; 260 newtonian_ig_ctx->cp = cp; 261 newtonian_ig_ctx->c_tau = c_tau; 262 newtonian_ig_ctx->Ctau_t = Ctau_t; 263 newtonian_ig_ctx->Ctau_v = Ctau_v; 264 newtonian_ig_ctx->Ctau_C = Ctau_C; 265 newtonian_ig_ctx->Ctau_M = Ctau_M; 266 newtonian_ig_ctx->Ctau_E = Ctau_E; 267 newtonian_ig_ctx->P0 = reference.pressure; 268 newtonian_ig_ctx->stabilization = stab; 269 newtonian_ig_ctx->P0 = reference.pressure; 270 newtonian_ig_ctx->is_implicit = implicit; 271 newtonian_ig_ctx->state_var = state_var; 272 newtonian_ig_ctx->idl_enable = idl_enable; 273 newtonian_ig_ctx->idl_amplitude = 1 / (idl_decay_time * second); 274 newtonian_ig_ctx->idl_start = idl_start * meter; 275 newtonian_ig_ctx->idl_length = idl_length * meter; 276 PetscCall(PetscArraycpy(newtonian_ig_ctx->g, g, 3)); 277 278 // -- Setup Context 279 setup_context->reference = reference; 280 setup_context->gas = *newtonian_ig_ctx; 281 setup_context->lx = domain_size[0]; 282 setup_context->ly = domain_size[1]; 283 setup_context->lz = domain_size[2]; 284 setup_context->time = 0; 285 286 if (bc->num_freestream > 0) PetscCall(FreestreamBCSetup(problem, dm, ctx, newtonian_ig_ctx, &reference)); 287 if (bc->num_outflow > 0) PetscCall(OutflowBCSetup(problem, dm, ctx, newtonian_ig_ctx, &reference)); 288 289 CeedQFunctionContextCreate(user->ceed, &problem->ics.qfunction_context); 290 CeedQFunctionContextSetData(problem->ics.qfunction_context, CEED_MEM_HOST, CEED_USE_POINTER, sizeof(*setup_context), setup_context); 291 CeedQFunctionContextSetDataDestroy(problem->ics.qfunction_context, CEED_MEM_HOST, FreeContextPetsc); 292 CeedQFunctionContextRegisterDouble(problem->ics.qfunction_context, "evaluation time", offsetof(struct SetupContext_, time), 1, 293 "Time of evaluation"); 294 295 CeedQFunctionContextCreate(user->ceed, &newtonian_ig_context); 296 CeedQFunctionContextSetData(newtonian_ig_context, CEED_MEM_HOST, CEED_USE_POINTER, sizeof(*newtonian_ig_ctx), newtonian_ig_ctx); 297 CeedQFunctionContextSetDataDestroy(newtonian_ig_context, CEED_MEM_HOST, FreeContextPetsc); 298 CeedQFunctionContextRegisterDouble(newtonian_ig_context, "timestep size", offsetof(struct NewtonianIdealGasContext_, dt), 1, 299 "Size of timestep, delta t"); 300 CeedQFunctionContextRegisterDouble(newtonian_ig_context, "ijacobian time shift", offsetof(struct NewtonianIdealGasContext_, ijacobian_time_shift), 301 1, "Shift for mass matrix in IJacobian"); 302 CeedQFunctionContextRegisterDouble(newtonian_ig_context, "solution time", offsetof(struct NewtonianIdealGasContext_, time), 1, 303 "Current solution time"); 304 305 problem->apply_vol_rhs.qfunction_context = newtonian_ig_context; 306 CeedQFunctionContextReferenceCopy(newtonian_ig_context, &problem->apply_vol_ifunction.qfunction_context); 307 CeedQFunctionContextReferenceCopy(newtonian_ig_context, &problem->apply_vol_ijacobian.qfunction_context); 308 CeedQFunctionContextReferenceCopy(newtonian_ig_context, &problem->apply_inflow.qfunction_context); 309 CeedQFunctionContextReferenceCopy(newtonian_ig_context, &problem->apply_inflow_jacobian.qfunction_context); 310 311 if (unit_tests) { 312 PetscCall(UnitTests_Newtonian(user, newtonian_ig_ctx)); 313 } 314 PetscFunctionReturn(PETSC_SUCCESS); 315 } 316 317 PetscErrorCode PRINT_NEWTONIAN(ProblemData *problem, AppCtx app_ctx) { 318 MPI_Comm comm = PETSC_COMM_WORLD; 319 NewtonianIdealGasContext newtonian_ctx; 320 321 PetscFunctionBeginUser; 322 CeedQFunctionContextGetData(problem->apply_vol_rhs.qfunction_context, CEED_MEM_HOST, &newtonian_ctx); 323 PetscCall(PetscPrintf(comm, 324 " Problem:\n" 325 " Problem Name : %s\n" 326 " Stabilization : %s\n", 327 app_ctx->problem_name, StabilizationTypes[newtonian_ctx->stabilization])); 328 CeedQFunctionContextRestoreData(problem->apply_vol_rhs.qfunction_context, &newtonian_ctx); 329 PetscFunctionReturn(PETSC_SUCCESS); 330 } 331