xref: /libCEED/examples/fluids/problems/newtonian.c (revision 17ce10fa51ebb1fdf632a9d19f71ef68acbb0e05)
13d8e8822SJeremy L Thompson // Copyright (c) 2017-2022, Lawrence Livermore National Security, LLC and other CEED contributors.
23d8e8822SJeremy L Thompson // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
388b783a1SJames Wright //
43d8e8822SJeremy L Thompson // SPDX-License-Identifier: BSD-2-Clause
588b783a1SJames Wright //
63d8e8822SJeremy L Thompson // This file is part of CEED:  http://github.com/ceed
788b783a1SJames Wright 
888b783a1SJames Wright /// @file
988b783a1SJames Wright /// Utility functions for setting up problems using the Newtonian Qfunction
1088b783a1SJames Wright 
1188b783a1SJames Wright #include "../navierstokes.h"
1288b783a1SJames Wright #include "../qfunctions/setupgeo.h"
1388b783a1SJames Wright #include "../qfunctions/newtonian.h"
1488b783a1SJames Wright 
15e334ad8fSJed Brown // Compute relative error |a - b|/|s|
16e334ad8fSJed Brown static PetscErrorCode CheckPrimitiveWithTolerance(StatePrimitive sY,
17e334ad8fSJed Brown     StatePrimitive aY, StatePrimitive bY, const char *name, PetscReal rtol_pressure,
18e334ad8fSJed Brown     PetscReal rtol_velocity, PetscReal rtol_temperature) {
196ef2784eSLeila Ghaffari 
20e334ad8fSJed Brown   PetscFunctionBeginUser;
21e334ad8fSJed Brown   StatePrimitive eY; // relative error
22e334ad8fSJed Brown   eY.pressure = (aY.pressure - bY.pressure) / sY.pressure;
23e334ad8fSJed Brown   PetscScalar u = sqrt(Square(sY.velocity[0]) + Square(sY.velocity[1]) + Square(
24e334ad8fSJed Brown                          sY.velocity[2]));
25e334ad8fSJed Brown   for (int j=0; j<3; j++) eY.velocity[j] = (aY.velocity[j] - bY.velocity[j]) / u;
26e334ad8fSJed Brown   eY.temperature = (aY.temperature - bY.temperature) / sY.temperature;
27a1df05f8SJed Brown   if (fabs(eY.pressure) > rtol_pressure)
28a1df05f8SJed Brown     printf("%s: pressure error %g\n", name, eY.pressure);
29a1df05f8SJed Brown   for (int j=0; j<3; j++)
30a1df05f8SJed Brown     if (fabs(eY.velocity[j]) > rtol_velocity)
31e334ad8fSJed Brown       printf("%s: velocity[%d] error %g\n", name, j, eY.velocity[j]);
32e334ad8fSJed Brown   if (fabs(eY.temperature) > rtol_temperature)
33e334ad8fSJed Brown     printf("%s: temperature error %g\n", name, eY.temperature);
34e334ad8fSJed Brown   PetscFunctionReturn(0);
35e334ad8fSJed Brown }
36e334ad8fSJed Brown 
37e334ad8fSJed Brown static PetscErrorCode UnitTests_Newtonian(User user,
38e334ad8fSJed Brown     NewtonianIdealGasContext gas) {
396ef2784eSLeila Ghaffari 
40e334ad8fSJed Brown   Units units = user->units;
41e334ad8fSJed Brown   const CeedScalar eps = 1e-6;
42e334ad8fSJed Brown   const CeedScalar kg = units->kilogram, m = units->meter, sec = units->second,
43e334ad8fSJed Brown                    Pascal = units->Pascal;
44e334ad8fSJed Brown 
45e334ad8fSJed Brown   PetscFunctionBeginUser;
46e334ad8fSJed Brown   const CeedScalar rho = 1.2 * kg / (m*m*m), u = 40 * m/sec;
47e334ad8fSJed Brown   CeedScalar U[5] = {rho, rho*u, rho *u*1.1, rho *u*1.2, 250e3*Pascal + .5*rho *u*u};
48e334ad8fSJed Brown   const CeedScalar x[3] = {.1, .2, .3};
49e334ad8fSJed Brown   State s = StateFromU(gas, U, x);
50e334ad8fSJed Brown   for (int i=0; i<8; i++) {
51e334ad8fSJed Brown     CeedScalar dU[5] = {0}, dx[3] = {0};
52e334ad8fSJed Brown     if (i < 5) dU[i] = U[i];
53e334ad8fSJed Brown     else dx[i-5] = x[i-5];
54e334ad8fSJed Brown     State ds = StateFromU_fwd(gas, s, dU, x, dx);
55e334ad8fSJed Brown     for (int j=0; j<5; j++) dU[j] = (1 + eps * (i == j)) * U[j];
56e334ad8fSJed Brown     for (int j=0; j<3; j++) dx[j] = (1 + eps * (i == 5 + j)) * x[j];
57e334ad8fSJed Brown     State t = StateFromU(gas, dU, dx);
58e334ad8fSJed Brown     StatePrimitive dY;
59e334ad8fSJed Brown     dY.pressure = (t.Y.pressure - s.Y.pressure) / eps;
60e334ad8fSJed Brown     for (int j=0; j<3; j++)
61e334ad8fSJed Brown       dY.velocity[j] = (t.Y.velocity[j] - s.Y.velocity[j]) / eps;
62e334ad8fSJed Brown     dY.temperature = (t.Y.temperature - s.Y.temperature) / eps;
63e334ad8fSJed Brown     char buf[128];
64e334ad8fSJed Brown     snprintf(buf, sizeof buf, "StateFromU_fwd i=%d", i);
65e334ad8fSJed Brown     PetscCall(CheckPrimitiveWithTolerance(dY, ds.Y, dY, buf, 5e-6, 1e-6, 1e-6));
66e334ad8fSJed Brown   }
67e334ad8fSJed Brown   PetscFunctionReturn(0);
68e334ad8fSJed Brown }
69e334ad8fSJed Brown 
70a0add3c9SJed Brown PetscErrorCode NS_NEWTONIAN_IG(ProblemData *problem, DM dm, void *ctx) {
716ef2784eSLeila Ghaffari 
72a0add3c9SJed Brown   SetupContext      setup_context;
7388b783a1SJames Wright   User              user = *(User *)ctx;
7488b783a1SJames Wright   StabilizationType stab;
7588b783a1SJames Wright   MPI_Comm          comm = PETSC_COMM_WORLD;
7688b783a1SJames Wright   PetscBool         implicit;
77e334ad8fSJed Brown   PetscBool         has_curr_time = PETSC_FALSE, unit_tests;
7888b783a1SJames Wright   PetscInt          ierr;
79841e4c73SJed Brown   NewtonianIdealGasContext newtonian_ig_ctx;
80841e4c73SJed Brown   CeedQFunctionContext newtonian_ig_context;
8188b783a1SJames Wright 
82841e4c73SJed Brown   PetscFunctionBeginUser;
83a0add3c9SJed Brown   ierr = PetscCalloc1(1, &setup_context); CHKERRQ(ierr);
84841e4c73SJed Brown   ierr = PetscCalloc1(1, &newtonian_ig_ctx); CHKERRQ(ierr);
8588b783a1SJames Wright 
8688b783a1SJames Wright   // ------------------------------------------------------
8788b783a1SJames Wright   //           Setup Generic Newtonian IG Problem
8888b783a1SJames Wright   // ------------------------------------------------------
8988b783a1SJames Wright   problem->dim                               = 3;
9088b783a1SJames Wright   problem->q_data_size_vol                   = 10;
91ba6664aeSJames Wright   problem->q_data_size_sur                   = 10;
92e334ad8fSJed Brown   problem->jac_data_size_sur                 = 5;
9391e5af17SJed Brown   problem->setup_vol.qfunction               = Setup;
9491e5af17SJed Brown   problem->setup_vol.qfunction_loc           = Setup_loc;
9591e5af17SJed Brown   problem->ics.qfunction                     = ICsNewtonianIG;
9691e5af17SJed Brown   problem->ics.qfunction_loc                 = ICsNewtonianIG_loc;
9791e5af17SJed Brown   problem->setup_sur.qfunction               = SetupBoundary;
9891e5af17SJed Brown   problem->setup_sur.qfunction_loc           = SetupBoundary_loc;
995c677226SJed Brown   problem->apply_vol_rhs.qfunction           = RHSFunction_Newtonian;
1005c677226SJed Brown   problem->apply_vol_rhs.qfunction_loc       = RHSFunction_Newtonian_loc;
10191e5af17SJed Brown   problem->apply_vol_ifunction.qfunction     = IFunction_Newtonian;
10291e5af17SJed Brown   problem->apply_vol_ifunction.qfunction_loc = IFunction_Newtonian_loc;
103e334ad8fSJed Brown   problem->apply_vol_ijacobian.qfunction     = IJacobian_Newtonian;
104e334ad8fSJed Brown   problem->apply_vol_ijacobian.qfunction_loc = IJacobian_Newtonian_loc;
105a0add3c9SJed Brown   problem->bc                                = NULL;
106a0add3c9SJed Brown   problem->bc_ctx                            = setup_context;
10788b783a1SJames Wright   problem->non_zero_time                     = PETSC_FALSE;
10888b783a1SJames Wright   problem->print_info                        = PRINT_DENSITY_CURRENT;
10988b783a1SJames Wright 
11088b783a1SJames Wright   // ------------------------------------------------------
11188b783a1SJames Wright   //             Create the libCEED context
11288b783a1SJames Wright   // ------------------------------------------------------
11388b783a1SJames Wright   CeedScalar cv     = 717.;          // J/(kg K)
11488b783a1SJames Wright   CeedScalar cp     = 1004.;         // J/(kg K)
11588626eedSJames Wright   CeedScalar g[3]   = {0, 0, -9.81}; // m/s^2
11688b783a1SJames Wright   CeedScalar lambda = -2./3.;        // -
11788626eedSJames Wright   CeedScalar mu     = 1.8e-5;        // Pa s, dynamic viscosity
11888b783a1SJames Wright   CeedScalar k      = 0.02638;       // W/(m K)
11988b783a1SJames Wright   CeedScalar c_tau  = 0.5;           // -
12088626eedSJames Wright   CeedScalar Ctau_t  = 1.0;          // -
12188626eedSJames Wright   CeedScalar Ctau_v  = 36.0;         // TODO make function of degree
12288626eedSJames Wright   CeedScalar Ctau_C  = 1.0;          // TODO make function of degree
12388626eedSJames Wright   CeedScalar Ctau_M  = 1.0;          // TODO make function of degree
12488626eedSJames Wright   CeedScalar Ctau_E  = 1.0;          // TODO make function of degree
12588b783a1SJames Wright   PetscReal domain_min[3], domain_max[3], domain_size[3];
12688b783a1SJames Wright   ierr = DMGetBoundingBox(dm, domain_min, domain_max); CHKERRQ(ierr);
127ba6664aeSJames Wright   for (PetscInt i=0; i<3; i++) domain_size[i] = domain_max[i] - domain_min[i];
12888b783a1SJames Wright 
12988b783a1SJames Wright   // ------------------------------------------------------
13088b783a1SJames Wright   //             Create the PETSc context
13188b783a1SJames Wright   // ------------------------------------------------------
13288626eedSJames Wright   PetscScalar meter    = 1;  // 1 meter in scaled length units
13388626eedSJames Wright   PetscScalar kilogram = 1;  // 1 kilogram in scaled mass units
13488626eedSJames Wright   PetscScalar second   = 1;  // 1 second in scaled time units
13588b783a1SJames Wright   PetscScalar Kelvin   = 1;     // 1 Kelvin in scaled temperature units
13688b783a1SJames Wright   PetscScalar W_per_m_K, Pascal, J_per_kg_K, m_per_squared_s;
13788b783a1SJames Wright 
13888b783a1SJames Wright   // ------------------------------------------------------
13988b783a1SJames Wright   //              Command line Options
14088b783a1SJames Wright   // ------------------------------------------------------
14167490bc6SJeremy L Thompson   PetscOptionsBegin(comm, NULL, "Options for Newtonian Ideal Gas based problem",
14267490bc6SJeremy L Thompson                     NULL);
14367490bc6SJeremy L Thompson 
14488b783a1SJames Wright   // -- Physics
14588b783a1SJames Wright   ierr = PetscOptionsScalar("-cv", "Heat capacity at constant volume",
14688b783a1SJames Wright                             NULL, cv, &cv, NULL); CHKERRQ(ierr);
14788b783a1SJames Wright   ierr = PetscOptionsScalar("-cp", "Heat capacity at constant pressure",
14888b783a1SJames Wright                             NULL, cp, &cp, NULL); CHKERRQ(ierr);
14988b783a1SJames Wright   ierr = PetscOptionsScalar("-lambda",
15088b783a1SJames Wright                             "Stokes hypothesis second viscosity coefficient",
15188b783a1SJames Wright                             NULL, lambda, &lambda, NULL); CHKERRQ(ierr);
15288b783a1SJames Wright   ierr = PetscOptionsScalar("-mu", "Shear dynamic viscosity coefficient",
15388b783a1SJames Wright                             NULL, mu, &mu, NULL); CHKERRQ(ierr);
15488b783a1SJames Wright   ierr = PetscOptionsScalar("-k", "Thermal conductivity",
15588b783a1SJames Wright                             NULL, k, &k, NULL); CHKERRQ(ierr);
15688b783a1SJames Wright 
15788626eedSJames Wright   PetscInt dim = problem->dim;
15888626eedSJames Wright   ierr = PetscOptionsRealArray("-g", "Gravitational acceleration",
15988626eedSJames Wright                                NULL, g, &dim, NULL); CHKERRQ(ierr);
16088b783a1SJames Wright   ierr = PetscOptionsEnum("-stab", "Stabilization method", NULL,
16188b783a1SJames Wright                           StabilizationTypes, (PetscEnum)(stab = STAB_NONE),
16288b783a1SJames Wright                           (PetscEnum *)&stab, NULL); CHKERRQ(ierr);
16388b783a1SJames Wright   ierr = PetscOptionsScalar("-c_tau", "Stabilization constant",
16488b783a1SJames Wright                             NULL, c_tau, &c_tau, NULL); CHKERRQ(ierr);
16588626eedSJames Wright   ierr = PetscOptionsScalar("-Ctau_t", "Stabilization time constant",
16688626eedSJames Wright                             NULL, Ctau_t, &Ctau_t, NULL); CHKERRQ(ierr);
16788626eedSJames Wright   ierr = PetscOptionsScalar("-Ctau_v", "Stabilization viscous constant",
16888626eedSJames Wright                             NULL, Ctau_v, &Ctau_v, NULL); CHKERRQ(ierr);
16988626eedSJames Wright   ierr = PetscOptionsScalar("-Ctau_C", "Stabilization continuity constant",
17088626eedSJames Wright                             NULL, Ctau_C, &Ctau_C, NULL); CHKERRQ(ierr);
17188626eedSJames Wright   ierr = PetscOptionsScalar("-Ctau_M", "Stabilization momentum constant",
17288626eedSJames Wright                             NULL, Ctau_M, &Ctau_M, NULL); CHKERRQ(ierr);
17388626eedSJames Wright   ierr = PetscOptionsScalar("-Ctau_E", "Stabilization energy constant",
17488626eedSJames Wright                             NULL, Ctau_E, &Ctau_E, NULL); CHKERRQ(ierr);
17588b783a1SJames Wright   ierr = PetscOptionsBool("-implicit", "Use implicit (IFunction) formulation",
17688b783a1SJames Wright                           NULL, implicit=PETSC_FALSE, &implicit, NULL);
17788b783a1SJames Wright   CHKERRQ(ierr);
178e334ad8fSJed Brown   ierr = PetscOptionsBool("-newtonian_unit_tests", "Run Newtonian unit tests",
179e334ad8fSJed Brown                           NULL, unit_tests=PETSC_FALSE, &unit_tests, NULL);
180e334ad8fSJed Brown   CHKERRQ(ierr);
18188b783a1SJames Wright 
18288b783a1SJames Wright   // -- Units
18388b783a1SJames Wright   ierr = PetscOptionsScalar("-units_meter", "1 meter in scaled length units",
18488b783a1SJames Wright                             NULL, meter, &meter, NULL); CHKERRQ(ierr);
18588b783a1SJames Wright   meter = fabs(meter);
18688b783a1SJames Wright   ierr = PetscOptionsScalar("-units_kilogram","1 kilogram in scaled mass units",
18788b783a1SJames Wright                             NULL, kilogram, &kilogram, NULL); CHKERRQ(ierr);
18888b783a1SJames Wright   kilogram = fabs(kilogram);
18988b783a1SJames Wright   ierr = PetscOptionsScalar("-units_second","1 second in scaled time units",
19088b783a1SJames Wright                             NULL, second, &second, NULL); CHKERRQ(ierr);
19188b783a1SJames Wright   second = fabs(second);
19288b783a1SJames Wright   ierr = PetscOptionsScalar("-units_Kelvin",
19388b783a1SJames Wright                             "1 Kelvin in scaled temperature units",
19488b783a1SJames Wright                             NULL, Kelvin, &Kelvin, NULL); CHKERRQ(ierr);
19588b783a1SJames Wright   Kelvin = fabs(Kelvin);
19688b783a1SJames Wright 
19788b783a1SJames Wright   // -- Warnings
19888b783a1SJames Wright   if (stab == STAB_SUPG && !implicit) {
19988b783a1SJames Wright     ierr = PetscPrintf(comm,
20088b783a1SJames Wright                        "Warning! Use -stab supg only with -implicit\n");
20188b783a1SJames Wright     CHKERRQ(ierr);
20288b783a1SJames Wright   }
20367490bc6SJeremy L Thompson   PetscOptionsEnd();
20488b783a1SJames Wright 
20588b783a1SJames Wright   // ------------------------------------------------------
20688b783a1SJames Wright   //           Set up the PETSc context
20788b783a1SJames Wright   // ------------------------------------------------------
20888b783a1SJames Wright   // -- Define derived units
20988b783a1SJames Wright   Pascal          = kilogram / (meter * PetscSqr(second));
21088b783a1SJames Wright   J_per_kg_K      =  PetscSqr(meter) / (PetscSqr(second) * Kelvin);
21188b783a1SJames Wright   m_per_squared_s = meter / PetscSqr(second);
21288b783a1SJames Wright   W_per_m_K       = kilogram * meter / (pow(second,3) * Kelvin);
21388b783a1SJames Wright 
21488b783a1SJames Wright   user->units->meter           = meter;
21588b783a1SJames Wright   user->units->kilogram        = kilogram;
21688b783a1SJames Wright   user->units->second          = second;
21788b783a1SJames Wright   user->units->Kelvin          = Kelvin;
21888b783a1SJames Wright   user->units->Pascal          = Pascal;
21988b783a1SJames Wright   user->units->J_per_kg_K      = J_per_kg_K;
22088b783a1SJames Wright   user->units->m_per_squared_s = m_per_squared_s;
22188b783a1SJames Wright   user->units->W_per_m_K       = W_per_m_K;
22288b783a1SJames Wright 
22388b783a1SJames Wright   // ------------------------------------------------------
22488b783a1SJames Wright   //           Set up the libCEED context
22588b783a1SJames Wright   // ------------------------------------------------------
22688b783a1SJames Wright   // -- Scale variables to desired units
22788b783a1SJames Wright   cv     *= J_per_kg_K;
22888b783a1SJames Wright   cp     *= J_per_kg_K;
22988b783a1SJames Wright   mu     *= Pascal * second;
23088b783a1SJames Wright   k      *= W_per_m_K;
231ba6664aeSJames Wright   for (PetscInt i=0; i<3; i++) domain_size[i] *= meter;
232ba6664aeSJames Wright   for (PetscInt i=0; i<3; i++) g[i]           *= m_per_squared_s;
23388b783a1SJames Wright   problem->dm_scale = meter;
23488b783a1SJames Wright 
23588b783a1SJames Wright   // -- Setup Context
23688b783a1SJames Wright   setup_context->cv         = cv;
23788b783a1SJames Wright   setup_context->cp         = cp;
23888b783a1SJames Wright   setup_context->lx         = domain_size[0];
23988b783a1SJames Wright   setup_context->ly         = domain_size[1];
24088b783a1SJames Wright   setup_context->lz         = domain_size[2];
24188b783a1SJames Wright   setup_context->time       = 0;
24288626eedSJames Wright   ierr = PetscArraycpy(setup_context->g, g, 3); CHKERRQ(ierr);
24388b783a1SJames Wright 
24488b783a1SJames Wright   // -- Solver Settings
24588b783a1SJames Wright   user->phys->stab          = stab;
24688b783a1SJames Wright   user->phys->implicit      = implicit;
24788b783a1SJames Wright   user->phys->has_curr_time = has_curr_time;
24888b783a1SJames Wright 
24988b783a1SJames Wright   // -- QFunction Context
250841e4c73SJed Brown   newtonian_ig_ctx->lambda        = lambda;
251841e4c73SJed Brown   newtonian_ig_ctx->mu            = mu;
252841e4c73SJed Brown   newtonian_ig_ctx->k             = k;
253841e4c73SJed Brown   newtonian_ig_ctx->cv            = cv;
254841e4c73SJed Brown   newtonian_ig_ctx->cp            = cp;
255841e4c73SJed Brown   newtonian_ig_ctx->c_tau         = c_tau;
256841e4c73SJed Brown   newtonian_ig_ctx->Ctau_t        = Ctau_t;
257841e4c73SJed Brown   newtonian_ig_ctx->Ctau_v        = Ctau_v;
258841e4c73SJed Brown   newtonian_ig_ctx->Ctau_C        = Ctau_C;
259841e4c73SJed Brown   newtonian_ig_ctx->Ctau_M        = Ctau_M;
260841e4c73SJed Brown   newtonian_ig_ctx->Ctau_E        = Ctau_E;
261841e4c73SJed Brown   newtonian_ig_ctx->stabilization = stab;
262841e4c73SJed Brown   ierr = PetscArraycpy(newtonian_ig_ctx->g, g, 3); CHKERRQ(ierr);
26388b783a1SJames Wright 
264841e4c73SJed Brown   CeedQFunctionContextCreate(user->ceed, &problem->ics.qfunction_context);
265841e4c73SJed Brown   CeedQFunctionContextSetData(problem->ics.qfunction_context, CEED_MEM_HOST,
266841e4c73SJed Brown                               CEED_USE_POINTER, sizeof(*setup_context), setup_context);
267*17ce10faSJeremy L Thompson   CeedQFunctionContextSetDataDestroy(problem->ics.qfunction_context,
268*17ce10faSJeremy L Thompson                                      CEED_MEM_HOST,
269*17ce10faSJeremy L Thompson                                      FreeContextPetsc);
270841e4c73SJed Brown   CeedQFunctionContextRegisterDouble(problem->ics.qfunction_context,
271841e4c73SJed Brown                                      "evaluation time",
272841e4c73SJed Brown                                      (char *)&setup_context->time - (char *)setup_context, 1, "Time of evaluation");
273841e4c73SJed Brown 
274841e4c73SJed Brown   CeedQFunctionContextCreate(user->ceed, &newtonian_ig_context);
275841e4c73SJed Brown   CeedQFunctionContextSetData(newtonian_ig_context, CEED_MEM_HOST,
276841e4c73SJed Brown                               CEED_USE_POINTER,
277841e4c73SJed Brown                               sizeof(*newtonian_ig_ctx), newtonian_ig_ctx);
278841e4c73SJed Brown   CeedQFunctionContextSetDataDestroy(newtonian_ig_context, CEED_MEM_HOST,
279841e4c73SJed Brown                                      FreeContextPetsc);
280841e4c73SJed Brown   CeedQFunctionContextRegisterDouble(newtonian_ig_context, "timestep size",
281841e4c73SJed Brown                                      offsetof(struct NewtonianIdealGasContext_, dt), 1, "Size of timestep, delta t");
282e334ad8fSJed Brown   CeedQFunctionContextRegisterDouble(newtonian_ig_context, "ijacobian time shift",
283e334ad8fSJed Brown                                      offsetof(struct NewtonianIdealGasContext_, ijacobian_time_shift), 1,
284e334ad8fSJed Brown                                      "Shift for mass matrix in IJacobian");
285841e4c73SJed Brown   problem->apply_vol_rhs.qfunction_context = newtonian_ig_context;
286841e4c73SJed Brown   CeedQFunctionContextReferenceCopy(newtonian_ig_context,
287841e4c73SJed Brown                                     &problem->apply_vol_ifunction.qfunction_context);
288e334ad8fSJed Brown   CeedQFunctionContextReferenceCopy(newtonian_ig_context,
289e334ad8fSJed Brown                                     &problem->apply_vol_ijacobian.qfunction_context);
290e334ad8fSJed Brown 
291e334ad8fSJed Brown   if (unit_tests) {
292e334ad8fSJed Brown     PetscCall(UnitTests_Newtonian(user, newtonian_ig_ctx));
293e334ad8fSJed Brown   }
29488b783a1SJames Wright   PetscFunctionReturn(0);
29588b783a1SJames Wright }
29688b783a1SJames Wright 
297841e4c73SJed Brown PetscErrorCode PRINT_DENSITY_CURRENT(ProblemData *problem,
298841e4c73SJed Brown                                      AppCtx app_ctx) {
299841e4c73SJed Brown   MPI_Comm comm = PETSC_COMM_WORLD;
300841e4c73SJed Brown   PetscErrorCode ierr;
301841e4c73SJed Brown   NewtonianIdealGasContext newtonian_ctx;
302841e4c73SJed Brown 
30388b783a1SJames Wright   PetscFunctionBeginUser;
304841e4c73SJed Brown   CeedQFunctionContextGetData(problem->apply_vol_rhs.qfunction_context,
305841e4c73SJed Brown                               CEED_MEM_HOST, &newtonian_ctx);
306841e4c73SJed Brown   ierr = PetscPrintf(comm,
307841e4c73SJed Brown                      "  Problem:\n"
308841e4c73SJed Brown                      "    Problem Name                       : %s\n"
309841e4c73SJed Brown                      "    Stabilization                      : %s\n",
310841e4c73SJed Brown                      app_ctx->problem_name, StabilizationTypes[newtonian_ctx->stabilization]);
311841e4c73SJed Brown   CHKERRQ(ierr);
312841e4c73SJed Brown   CeedQFunctionContextRestoreData(problem->apply_vol_rhs.qfunction_context,
313841e4c73SJed Brown                                   &newtonian_ctx);
31488b783a1SJames Wright   PetscFunctionReturn(0);
31588b783a1SJames Wright }
316