1727da7e7SJeremy L Thompson // Copyright (c) 2017-2022, Lawrence Livermore National Security, LLC and other CEED contributors. 2727da7e7SJeremy L Thompson // All Rights Reserved. See the top-level LICENSE and NOTICE files for details. 33a8779fbSJames Wright // 4727da7e7SJeremy L Thompson // SPDX-License-Identifier: BSD-2-Clause 53a8779fbSJames Wright // 6727da7e7SJeremy L Thompson // This file is part of CEED: http://github.com/ceed 73a8779fbSJames Wright 83a8779fbSJames Wright /// @file 93a8779fbSJames Wright /// Utility functions for setting up problems using the Newtonian Qfunction 103a8779fbSJames Wright 113a8779fbSJames Wright #include "../navierstokes.h" 123a8779fbSJames Wright #include "../qfunctions/setupgeo.h" 133a8779fbSJames Wright #include "../qfunctions/newtonian.h" 143a8779fbSJames Wright 15f0b65372SJed Brown // Compute relative error |a - b|/|s| 16f0b65372SJed Brown static PetscErrorCode CheckPrimitiveWithTolerance(StatePrimitive sY, 17f0b65372SJed Brown StatePrimitive aY, StatePrimitive bY, const char *name, PetscReal rtol_pressure, 18f0b65372SJed Brown PetscReal rtol_velocity, PetscReal rtol_temperature) { 196dd99bedSLeila Ghaffari 20f0b65372SJed Brown PetscFunctionBeginUser; 21f0b65372SJed Brown StatePrimitive eY; // relative error 22f0b65372SJed Brown eY.pressure = (aY.pressure - bY.pressure) / sY.pressure; 23f0b65372SJed Brown PetscScalar u = sqrt(Square(sY.velocity[0]) + Square(sY.velocity[1]) + Square( 24f0b65372SJed Brown sY.velocity[2])); 25f0b65372SJed Brown for (int j=0; j<3; j++) eY.velocity[j] = (aY.velocity[j] - bY.velocity[j]) / u; 26f0b65372SJed Brown eY.temperature = (aY.temperature - bY.temperature) / sY.temperature; 27edd152dcSJed Brown if (fabs(eY.pressure) > rtol_pressure) 28edd152dcSJed Brown printf("%s: pressure error %g\n", name, eY.pressure); 29edd152dcSJed Brown for (int j=0; j<3; j++) 30edd152dcSJed Brown if (fabs(eY.velocity[j]) > rtol_velocity) 31f0b65372SJed Brown printf("%s: velocity[%d] error %g\n", name, j, eY.velocity[j]); 32f0b65372SJed Brown if (fabs(eY.temperature) > rtol_temperature) 33f0b65372SJed Brown printf("%s: temperature error %g\n", name, eY.temperature); 34f0b65372SJed Brown PetscFunctionReturn(0); 35f0b65372SJed Brown } 36f0b65372SJed Brown 37f0b65372SJed Brown static PetscErrorCode UnitTests_Newtonian(User user, 38f0b65372SJed Brown NewtonianIdealGasContext gas) { 396dd99bedSLeila Ghaffari 40f0b65372SJed Brown Units units = user->units; 41f0b65372SJed Brown const CeedScalar eps = 1e-6; 42f0b65372SJed Brown const CeedScalar kg = units->kilogram, m = units->meter, sec = units->second, 43f0b65372SJed Brown Pascal = units->Pascal; 44f0b65372SJed Brown 45f0b65372SJed Brown PetscFunctionBeginUser; 46f0b65372SJed Brown const CeedScalar rho = 1.2 * kg / (m*m*m), u = 40 * m/sec; 47f0b65372SJed Brown CeedScalar U[5] = {rho, rho*u, rho *u*1.1, rho *u*1.2, 250e3*Pascal + .5*rho *u*u}; 48f0b65372SJed Brown const CeedScalar x[3] = {.1, .2, .3}; 49f0b65372SJed Brown State s = StateFromU(gas, U, x); 50f0b65372SJed Brown for (int i=0; i<8; i++) { 51f0b65372SJed Brown CeedScalar dU[5] = {0}, dx[3] = {0}; 52f0b65372SJed Brown if (i < 5) dU[i] = U[i]; 53f0b65372SJed Brown else dx[i-5] = x[i-5]; 54f0b65372SJed Brown State ds = StateFromU_fwd(gas, s, dU, x, dx); 55f0b65372SJed Brown for (int j=0; j<5; j++) dU[j] = (1 + eps * (i == j)) * U[j]; 56f0b65372SJed Brown for (int j=0; j<3; j++) dx[j] = (1 + eps * (i == 5 + j)) * x[j]; 57f0b65372SJed Brown State t = StateFromU(gas, dU, dx); 58f0b65372SJed Brown StatePrimitive dY; 59f0b65372SJed Brown dY.pressure = (t.Y.pressure - s.Y.pressure) / eps; 60f0b65372SJed Brown for (int j=0; j<3; j++) 61f0b65372SJed Brown dY.velocity[j] = (t.Y.velocity[j] - s.Y.velocity[j]) / eps; 62f0b65372SJed Brown dY.temperature = (t.Y.temperature - s.Y.temperature) / eps; 63f0b65372SJed Brown char buf[128]; 64f0b65372SJed Brown snprintf(buf, sizeof buf, "StateFromU_fwd i=%d", i); 65f0b65372SJed Brown PetscCall(CheckPrimitiveWithTolerance(dY, ds.Y, dY, buf, 5e-6, 1e-6, 1e-6)); 66f0b65372SJed Brown } 67f0b65372SJed Brown PetscFunctionReturn(0); 68f0b65372SJed Brown } 69f0b65372SJed Brown 70b7f03f12SJed Brown PetscErrorCode NS_NEWTONIAN_IG(ProblemData *problem, DM dm, void *ctx) { 716dd99bedSLeila Ghaffari 72b7f03f12SJed Brown SetupContext setup_context; 733a8779fbSJames Wright User user = *(User *)ctx; 743a8779fbSJames Wright StabilizationType stab; 753a8779fbSJames Wright MPI_Comm comm = PETSC_COMM_WORLD; 763a8779fbSJames Wright PetscBool implicit; 77f0b65372SJed Brown PetscBool has_curr_time = PETSC_FALSE, unit_tests; 783a8779fbSJames Wright PetscInt ierr; 7915a3537eSJed Brown NewtonianIdealGasContext newtonian_ig_ctx; 8015a3537eSJed Brown CeedQFunctionContext newtonian_ig_context; 813a8779fbSJames Wright 8215a3537eSJed Brown PetscFunctionBeginUser; 83b7f03f12SJed Brown ierr = PetscCalloc1(1, &setup_context); CHKERRQ(ierr); 8415a3537eSJed Brown ierr = PetscCalloc1(1, &newtonian_ig_ctx); CHKERRQ(ierr); 853a8779fbSJames Wright 863a8779fbSJames Wright // ------------------------------------------------------ 873a8779fbSJames Wright // Setup Generic Newtonian IG Problem 883a8779fbSJames Wright // ------------------------------------------------------ 893a8779fbSJames Wright problem->dim = 3; 903a8779fbSJames Wright problem->q_data_size_vol = 10; 91493642f1SJames Wright problem->q_data_size_sur = 10; 92f0b65372SJed Brown problem->jac_data_size_sur = 5; 939785fe93SJed Brown problem->setup_vol.qfunction = Setup; 949785fe93SJed Brown problem->setup_vol.qfunction_loc = Setup_loc; 959785fe93SJed Brown problem->ics.qfunction = ICsNewtonianIG; 969785fe93SJed Brown problem->ics.qfunction_loc = ICsNewtonianIG_loc; 979785fe93SJed Brown problem->setup_sur.qfunction = SetupBoundary; 989785fe93SJed Brown problem->setup_sur.qfunction_loc = SetupBoundary_loc; 99c1a52365SJed Brown problem->apply_vol_rhs.qfunction = RHSFunction_Newtonian; 100c1a52365SJed Brown problem->apply_vol_rhs.qfunction_loc = RHSFunction_Newtonian_loc; 1019785fe93SJed Brown problem->apply_vol_ifunction.qfunction = IFunction_Newtonian; 1029785fe93SJed Brown problem->apply_vol_ifunction.qfunction_loc = IFunction_Newtonian_loc; 103f0b65372SJed Brown problem->apply_vol_ijacobian.qfunction = IJacobian_Newtonian; 104f0b65372SJed Brown problem->apply_vol_ijacobian.qfunction_loc = IJacobian_Newtonian_loc; 105b7f03f12SJed Brown problem->bc = NULL; 106b7f03f12SJed Brown problem->bc_ctx = setup_context; 1073a8779fbSJames Wright problem->non_zero_time = PETSC_FALSE; 1083a8779fbSJames Wright problem->print_info = PRINT_DENSITY_CURRENT; 1093a8779fbSJames Wright 1103a8779fbSJames Wright // ------------------------------------------------------ 1113a8779fbSJames Wright // Create the libCEED context 1123a8779fbSJames Wright // ------------------------------------------------------ 1133a8779fbSJames Wright CeedScalar cv = 717.; // J/(kg K) 1143a8779fbSJames Wright CeedScalar cp = 1004.; // J/(kg K) 115bb8a0c61SJames Wright CeedScalar g[3] = {0, 0, -9.81}; // m/s^2 1163a8779fbSJames Wright CeedScalar lambda = -2./3.; // - 117bb8a0c61SJames Wright CeedScalar mu = 1.8e-5; // Pa s, dynamic viscosity 1183a8779fbSJames Wright CeedScalar k = 0.02638; // W/(m K) 1193a8779fbSJames Wright CeedScalar c_tau = 0.5; // - 120bb8a0c61SJames Wright CeedScalar Ctau_t = 1.0; // - 121bb8a0c61SJames Wright CeedScalar Ctau_v = 36.0; // TODO make function of degree 122bb8a0c61SJames Wright CeedScalar Ctau_C = 1.0; // TODO make function of degree 123bb8a0c61SJames Wright CeedScalar Ctau_M = 1.0; // TODO make function of degree 124bb8a0c61SJames Wright CeedScalar Ctau_E = 1.0; // TODO make function of degree 1253a8779fbSJames Wright PetscReal domain_min[3], domain_max[3], domain_size[3]; 1263a8779fbSJames Wright ierr = DMGetBoundingBox(dm, domain_min, domain_max); CHKERRQ(ierr); 127493642f1SJames Wright for (PetscInt i=0; i<3; i++) domain_size[i] = domain_max[i] - domain_min[i]; 1283a8779fbSJames Wright 1293a8779fbSJames Wright // ------------------------------------------------------ 1303a8779fbSJames Wright // Create the PETSc context 1313a8779fbSJames Wright // ------------------------------------------------------ 132bb8a0c61SJames Wright PetscScalar meter = 1; // 1 meter in scaled length units 133bb8a0c61SJames Wright PetscScalar kilogram = 1; // 1 kilogram in scaled mass units 134bb8a0c61SJames Wright PetscScalar second = 1; // 1 second in scaled time units 1353a8779fbSJames Wright PetscScalar Kelvin = 1; // 1 Kelvin in scaled temperature units 1363a8779fbSJames Wright PetscScalar W_per_m_K, Pascal, J_per_kg_K, m_per_squared_s; 1373a8779fbSJames Wright 1383a8779fbSJames Wright // ------------------------------------------------------ 1393a8779fbSJames Wright // Command line Options 1403a8779fbSJames Wright // ------------------------------------------------------ 1411485969bSJeremy L Thompson PetscOptionsBegin(comm, NULL, "Options for Newtonian Ideal Gas based problem", 1421485969bSJeremy L Thompson NULL); 1431485969bSJeremy L Thompson 1443a8779fbSJames Wright // -- Physics 1453a8779fbSJames Wright ierr = PetscOptionsScalar("-cv", "Heat capacity at constant volume", 1463a8779fbSJames Wright NULL, cv, &cv, NULL); CHKERRQ(ierr); 1473a8779fbSJames Wright ierr = PetscOptionsScalar("-cp", "Heat capacity at constant pressure", 1483a8779fbSJames Wright NULL, cp, &cp, NULL); CHKERRQ(ierr); 1493a8779fbSJames Wright ierr = PetscOptionsScalar("-lambda", 1503a8779fbSJames Wright "Stokes hypothesis second viscosity coefficient", 1513a8779fbSJames Wright NULL, lambda, &lambda, NULL); CHKERRQ(ierr); 1523a8779fbSJames Wright ierr = PetscOptionsScalar("-mu", "Shear dynamic viscosity coefficient", 1533a8779fbSJames Wright NULL, mu, &mu, NULL); CHKERRQ(ierr); 1543a8779fbSJames Wright ierr = PetscOptionsScalar("-k", "Thermal conductivity", 1553a8779fbSJames Wright NULL, k, &k, NULL); CHKERRQ(ierr); 1563a8779fbSJames Wright 157bb8a0c61SJames Wright PetscInt dim = problem->dim; 158bb8a0c61SJames Wright ierr = PetscOptionsRealArray("-g", "Gravitational acceleration", 159bb8a0c61SJames Wright NULL, g, &dim, NULL); CHKERRQ(ierr); 1603a8779fbSJames Wright ierr = PetscOptionsEnum("-stab", "Stabilization method", NULL, 1613a8779fbSJames Wright StabilizationTypes, (PetscEnum)(stab = STAB_NONE), 1623a8779fbSJames Wright (PetscEnum *)&stab, NULL); CHKERRQ(ierr); 1633a8779fbSJames Wright ierr = PetscOptionsScalar("-c_tau", "Stabilization constant", 1643a8779fbSJames Wright NULL, c_tau, &c_tau, NULL); CHKERRQ(ierr); 165bb8a0c61SJames Wright ierr = PetscOptionsScalar("-Ctau_t", "Stabilization time constant", 166bb8a0c61SJames Wright NULL, Ctau_t, &Ctau_t, NULL); CHKERRQ(ierr); 167bb8a0c61SJames Wright ierr = PetscOptionsScalar("-Ctau_v", "Stabilization viscous constant", 168bb8a0c61SJames Wright NULL, Ctau_v, &Ctau_v, NULL); CHKERRQ(ierr); 169bb8a0c61SJames Wright ierr = PetscOptionsScalar("-Ctau_C", "Stabilization continuity constant", 170bb8a0c61SJames Wright NULL, Ctau_C, &Ctau_C, NULL); CHKERRQ(ierr); 171bb8a0c61SJames Wright ierr = PetscOptionsScalar("-Ctau_M", "Stabilization momentum constant", 172bb8a0c61SJames Wright NULL, Ctau_M, &Ctau_M, NULL); CHKERRQ(ierr); 173bb8a0c61SJames Wright ierr = PetscOptionsScalar("-Ctau_E", "Stabilization energy constant", 174bb8a0c61SJames Wright NULL, Ctau_E, &Ctau_E, NULL); CHKERRQ(ierr); 1753a8779fbSJames Wright ierr = PetscOptionsBool("-implicit", "Use implicit (IFunction) formulation", 1763a8779fbSJames Wright NULL, implicit=PETSC_FALSE, &implicit, NULL); 1773a8779fbSJames Wright CHKERRQ(ierr); 178f0b65372SJed Brown ierr = PetscOptionsBool("-newtonian_unit_tests", "Run Newtonian unit tests", 179f0b65372SJed Brown NULL, unit_tests=PETSC_FALSE, &unit_tests, NULL); 180f0b65372SJed Brown CHKERRQ(ierr); 1813a8779fbSJames Wright 1823a8779fbSJames Wright // -- Units 1833a8779fbSJames Wright ierr = PetscOptionsScalar("-units_meter", "1 meter in scaled length units", 1843a8779fbSJames Wright NULL, meter, &meter, NULL); CHKERRQ(ierr); 1853a8779fbSJames Wright meter = fabs(meter); 1863a8779fbSJames Wright ierr = PetscOptionsScalar("-units_kilogram","1 kilogram in scaled mass units", 1873a8779fbSJames Wright NULL, kilogram, &kilogram, NULL); CHKERRQ(ierr); 1883a8779fbSJames Wright kilogram = fabs(kilogram); 1893a8779fbSJames Wright ierr = PetscOptionsScalar("-units_second","1 second in scaled time units", 1903a8779fbSJames Wright NULL, second, &second, NULL); CHKERRQ(ierr); 1913a8779fbSJames Wright second = fabs(second); 1923a8779fbSJames Wright ierr = PetscOptionsScalar("-units_Kelvin", 1933a8779fbSJames Wright "1 Kelvin in scaled temperature units", 1943a8779fbSJames Wright NULL, Kelvin, &Kelvin, NULL); CHKERRQ(ierr); 1953a8779fbSJames Wright Kelvin = fabs(Kelvin); 1963a8779fbSJames Wright 1973a8779fbSJames Wright // -- Warnings 1983a8779fbSJames Wright if (stab == STAB_SUPG && !implicit) { 1993a8779fbSJames Wright ierr = PetscPrintf(comm, 2003a8779fbSJames Wright "Warning! Use -stab supg only with -implicit\n"); 2013a8779fbSJames Wright CHKERRQ(ierr); 2023a8779fbSJames Wright } 2031485969bSJeremy L Thompson PetscOptionsEnd(); 2043a8779fbSJames Wright 2053a8779fbSJames Wright // ------------------------------------------------------ 2063a8779fbSJames Wright // Set up the PETSc context 2073a8779fbSJames Wright // ------------------------------------------------------ 2083a8779fbSJames Wright // -- Define derived units 2093a8779fbSJames Wright Pascal = kilogram / (meter * PetscSqr(second)); 2103a8779fbSJames Wright J_per_kg_K = PetscSqr(meter) / (PetscSqr(second) * Kelvin); 2113a8779fbSJames Wright m_per_squared_s = meter / PetscSqr(second); 2123a8779fbSJames Wright W_per_m_K = kilogram * meter / (pow(second,3) * Kelvin); 2133a8779fbSJames Wright 2143a8779fbSJames Wright user->units->meter = meter; 2153a8779fbSJames Wright user->units->kilogram = kilogram; 2163a8779fbSJames Wright user->units->second = second; 2173a8779fbSJames Wright user->units->Kelvin = Kelvin; 2183a8779fbSJames Wright user->units->Pascal = Pascal; 2193a8779fbSJames Wright user->units->J_per_kg_K = J_per_kg_K; 2203a8779fbSJames Wright user->units->m_per_squared_s = m_per_squared_s; 2213a8779fbSJames Wright user->units->W_per_m_K = W_per_m_K; 2223a8779fbSJames Wright 2233a8779fbSJames Wright // ------------------------------------------------------ 2243a8779fbSJames Wright // Set up the libCEED context 2253a8779fbSJames Wright // ------------------------------------------------------ 2263a8779fbSJames Wright // -- Scale variables to desired units 2273a8779fbSJames Wright cv *= J_per_kg_K; 2283a8779fbSJames Wright cp *= J_per_kg_K; 2293a8779fbSJames Wright mu *= Pascal * second; 2303a8779fbSJames Wright k *= W_per_m_K; 231493642f1SJames Wright for (PetscInt i=0; i<3; i++) domain_size[i] *= meter; 232493642f1SJames Wright for (PetscInt i=0; i<3; i++) g[i] *= m_per_squared_s; 2333a8779fbSJames Wright problem->dm_scale = meter; 2343a8779fbSJames Wright 2353a8779fbSJames Wright // -- Setup Context 2363a8779fbSJames Wright setup_context->cv = cv; 2373a8779fbSJames Wright setup_context->cp = cp; 2383a8779fbSJames Wright setup_context->lx = domain_size[0]; 2393a8779fbSJames Wright setup_context->ly = domain_size[1]; 2403a8779fbSJames Wright setup_context->lz = domain_size[2]; 2413a8779fbSJames Wright setup_context->time = 0; 242bb8a0c61SJames Wright ierr = PetscArraycpy(setup_context->g, g, 3); CHKERRQ(ierr); 2433a8779fbSJames Wright 2443a8779fbSJames Wright // -- Solver Settings 2453a8779fbSJames Wright user->phys->stab = stab; 2463a8779fbSJames Wright user->phys->implicit = implicit; 2473a8779fbSJames Wright user->phys->has_curr_time = has_curr_time; 2483a8779fbSJames Wright 2493a8779fbSJames Wright // -- QFunction Context 25015a3537eSJed Brown newtonian_ig_ctx->lambda = lambda; 25115a3537eSJed Brown newtonian_ig_ctx->mu = mu; 25215a3537eSJed Brown newtonian_ig_ctx->k = k; 25315a3537eSJed Brown newtonian_ig_ctx->cv = cv; 25415a3537eSJed Brown newtonian_ig_ctx->cp = cp; 25515a3537eSJed Brown newtonian_ig_ctx->c_tau = c_tau; 25615a3537eSJed Brown newtonian_ig_ctx->Ctau_t = Ctau_t; 25715a3537eSJed Brown newtonian_ig_ctx->Ctau_v = Ctau_v; 25815a3537eSJed Brown newtonian_ig_ctx->Ctau_C = Ctau_C; 25915a3537eSJed Brown newtonian_ig_ctx->Ctau_M = Ctau_M; 26015a3537eSJed Brown newtonian_ig_ctx->Ctau_E = Ctau_E; 26115a3537eSJed Brown newtonian_ig_ctx->stabilization = stab; 26215a3537eSJed Brown ierr = PetscArraycpy(newtonian_ig_ctx->g, g, 3); CHKERRQ(ierr); 2633a8779fbSJames Wright 26415a3537eSJed Brown CeedQFunctionContextCreate(user->ceed, &problem->ics.qfunction_context); 26515a3537eSJed Brown CeedQFunctionContextSetData(problem->ics.qfunction_context, CEED_MEM_HOST, 26615a3537eSJed Brown CEED_USE_POINTER, sizeof(*setup_context), setup_context); 267*270bbb13SJeremy L Thompson CeedQFunctionContextSetDataDestroy(problem->ics.qfunction_context, 268*270bbb13SJeremy L Thompson CEED_MEM_HOST, 269*270bbb13SJeremy L Thompson FreeContextPetsc); 27015a3537eSJed Brown CeedQFunctionContextRegisterDouble(problem->ics.qfunction_context, 27115a3537eSJed Brown "evaluation time", 27215a3537eSJed Brown (char *)&setup_context->time - (char *)setup_context, 1, "Time of evaluation"); 27315a3537eSJed Brown 27415a3537eSJed Brown CeedQFunctionContextCreate(user->ceed, &newtonian_ig_context); 27515a3537eSJed Brown CeedQFunctionContextSetData(newtonian_ig_context, CEED_MEM_HOST, 27615a3537eSJed Brown CEED_USE_POINTER, 27715a3537eSJed Brown sizeof(*newtonian_ig_ctx), newtonian_ig_ctx); 27815a3537eSJed Brown CeedQFunctionContextSetDataDestroy(newtonian_ig_context, CEED_MEM_HOST, 27915a3537eSJed Brown FreeContextPetsc); 28015a3537eSJed Brown CeedQFunctionContextRegisterDouble(newtonian_ig_context, "timestep size", 28115a3537eSJed Brown offsetof(struct NewtonianIdealGasContext_, dt), 1, "Size of timestep, delta t"); 282f0b65372SJed Brown CeedQFunctionContextRegisterDouble(newtonian_ig_context, "ijacobian time shift", 283f0b65372SJed Brown offsetof(struct NewtonianIdealGasContext_, ijacobian_time_shift), 1, 284f0b65372SJed Brown "Shift for mass matrix in IJacobian"); 28515a3537eSJed Brown problem->apply_vol_rhs.qfunction_context = newtonian_ig_context; 28615a3537eSJed Brown CeedQFunctionContextReferenceCopy(newtonian_ig_context, 28715a3537eSJed Brown &problem->apply_vol_ifunction.qfunction_context); 288f0b65372SJed Brown CeedQFunctionContextReferenceCopy(newtonian_ig_context, 289f0b65372SJed Brown &problem->apply_vol_ijacobian.qfunction_context); 290f0b65372SJed Brown 291f0b65372SJed Brown if (unit_tests) { 292f0b65372SJed Brown PetscCall(UnitTests_Newtonian(user, newtonian_ig_ctx)); 293f0b65372SJed Brown } 2943a8779fbSJames Wright PetscFunctionReturn(0); 2953a8779fbSJames Wright } 2963a8779fbSJames Wright 29715a3537eSJed Brown PetscErrorCode PRINT_DENSITY_CURRENT(ProblemData *problem, 29815a3537eSJed Brown AppCtx app_ctx) { 29915a3537eSJed Brown MPI_Comm comm = PETSC_COMM_WORLD; 30015a3537eSJed Brown PetscErrorCode ierr; 30115a3537eSJed Brown NewtonianIdealGasContext newtonian_ctx; 30215a3537eSJed Brown 3033a8779fbSJames Wright PetscFunctionBeginUser; 30415a3537eSJed Brown CeedQFunctionContextGetData(problem->apply_vol_rhs.qfunction_context, 30515a3537eSJed Brown CEED_MEM_HOST, &newtonian_ctx); 30615a3537eSJed Brown ierr = PetscPrintf(comm, 30715a3537eSJed Brown " Problem:\n" 30815a3537eSJed Brown " Problem Name : %s\n" 30915a3537eSJed Brown " Stabilization : %s\n", 31015a3537eSJed Brown app_ctx->problem_name, StabilizationTypes[newtonian_ctx->stabilization]); 31115a3537eSJed Brown CHKERRQ(ierr); 31215a3537eSJed Brown CeedQFunctionContextRestoreData(problem->apply_vol_rhs.qfunction_context, 31315a3537eSJed Brown &newtonian_ctx); 3143a8779fbSJames Wright PetscFunctionReturn(0); 3153a8779fbSJames Wright } 316