xref: /honee/qfunctions/blasius.h (revision fcb2c22a40d027d860b73be9ac89e2e220a55865)
1dc936754SJeremy L Thompson // Copyright (c) 2017-2024, Lawrence Livermore National Security, LLC and other CEED contributors.
2bb8a0c61SJames Wright // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
3bb8a0c61SJames Wright //
4bb8a0c61SJames Wright // SPDX-License-Identifier: BSD-2-Clause
5bb8a0c61SJames Wright //
6bb8a0c61SJames Wright // This file is part of CEED:  http://github.com/ceed
7bb8a0c61SJames Wright 
8bb8a0c61SJames Wright /// @file
9bb8a0c61SJames Wright /// Operator for Navier-Stokes example using PETSc
10bb8a0c61SJames Wright #include <ceed.h>
112b916ea7SJeremy L Thompson 
12e0d1a4dfSLeila Ghaffari #include "newtonian_state.h"
1315a3537eSJed Brown #include "newtonian_types.h"
14704b8bbeSJames Wright #include "utils.h"
15bb8a0c61SJames Wright 
160d850f2eSLeila Ghaffari #define BLASIUS_MAX_N_CHEBYSHEV 50
170d850f2eSLeila Ghaffari 
18bb8a0c61SJames Wright typedef struct BlasiusContext_ *BlasiusContext;
19bb8a0c61SJames Wright struct BlasiusContext_ {
20bb8a0c61SJames Wright   bool                             implicit;  // !< Using implicit timesteping or not
212acc7cbcSKenneth E. Jansen   bool                             weakT;     // !< flag to set Temperature weakly at inflow
22bb8a0c61SJames Wright   CeedScalar                       delta0;    // !< Boundary layer height at inflow
23*fcb2c22aSJames Wright   State                            S_infty;
24e0d1a4dfSLeila Ghaffari   CeedScalar                       T_wall;                                // !< Temperature at the wall
25ef2c71fdSJames Wright   CeedScalar                       x_inflow;                              // !< Location of inflow in x
26e0d1a4dfSLeila Ghaffari   CeedScalar                       n_cheb;                                // !< Number of Chebyshev terms
270d850f2eSLeila Ghaffari   CeedScalar                      *X;                                     // !< Chebyshev polynomial coordinate vector (CPU only)
28e0d1a4dfSLeila Ghaffari   CeedScalar                       eta_max;                               // !< Maximum eta in the domain
290d850f2eSLeila Ghaffari   CeedScalar                       Tf_cheb[BLASIUS_MAX_N_CHEBYSHEV];      // !< Chebyshev coefficient for f
300d850f2eSLeila Ghaffari   CeedScalar                       Th_cheb[BLASIUS_MAX_N_CHEBYSHEV - 1];  // !< Chebyshev coefficient for h
31bb8a0c61SJames Wright   struct NewtonianIdealGasContext_ newtonian_ctx;
32bb8a0c61SJames Wright };
33bb8a0c61SJames Wright 
34e0d1a4dfSLeila Ghaffari // *****************************************************************************
3504e40bb6SJeremy L Thompson // This helper function evaluates Chebyshev polynomials with a set of coefficients with all their derivatives represented as a recurrence table.
36e0d1a4dfSLeila Ghaffari // *****************************************************************************
372b916ea7SJeremy L Thompson CEED_QFUNCTION_HELPER void ChebyshevEval(int N, const double *Tf, double x, double eta_max, double *f) {
38e0d1a4dfSLeila Ghaffari   double dX_deta     = 2 / eta_max;
39e0d1a4dfSLeila Ghaffari   double table[4][3] = {
40e0d1a4dfSLeila Ghaffari   // Chebyshev polynomials T_0, T_1, T_2 of the first kind in (-1,1)
412b916ea7SJeremy L Thompson       {1, x, 2 * x * x - 1},
422b916ea7SJeremy L Thompson       {0, 1, 4 * x        },
432b916ea7SJeremy L Thompson       {0, 0, 4            },
442b916ea7SJeremy L Thompson       {0, 0, 0            }
45e0d1a4dfSLeila Ghaffari   };
46e0d1a4dfSLeila Ghaffari   for (int i = 0; i < 4; i++) {
47e0d1a4dfSLeila Ghaffari     // i-th derivative of f
48e0d1a4dfSLeila Ghaffari     f[i] = table[i][0] * Tf[0] + table[i][1] * Tf[1] + table[i][2] * Tf[2];
49e0d1a4dfSLeila Ghaffari   }
50e0d1a4dfSLeila Ghaffari   for (int i = 3; i < N; i++) {
51e0d1a4dfSLeila Ghaffari     // T_n(x) = 2xT_{n-1}(x) - T_{n-2}(x)
52e0d1a4dfSLeila Ghaffari     table[0][i % 3] = 2 * x * table[0][(i - 1) % 3] - table[0][(i - 2) % 3];
53e0d1a4dfSLeila Ghaffari     // Differentiate Chebyshev polynomials with the recurrence relation
54e0d1a4dfSLeila Ghaffari     for (int j = 1; j < 4; j++) {
55e0d1a4dfSLeila Ghaffari       // T'_{n}(x)/n = 2T_{n-1}(x) + T'_{n-2}(x)/n-2
56e0d1a4dfSLeila Ghaffari       table[j][i % 3] = i * (2 * table[j - 1][(i - 1) % 3] + table[j][(i - 2) % 3] / (i - 2));
57e0d1a4dfSLeila Ghaffari     }
58e0d1a4dfSLeila Ghaffari     for (int j = 0; j < 4; j++) {
59e0d1a4dfSLeila Ghaffari       f[j] += table[j][i % 3] * Tf[i];
60bb8a0c61SJames Wright     }
61bb8a0c61SJames Wright   }
62e0d1a4dfSLeila Ghaffari   for (int i = 1; i < 4; i++) {
63e0d1a4dfSLeila Ghaffari     // Transform derivatives from Chebyshev [-1, 1] to [0, eta_max].
64e0d1a4dfSLeila Ghaffari     for (int j = 0; j < i; j++) f[i] *= dX_deta;
65e0d1a4dfSLeila Ghaffari   }
66bb8a0c61SJames Wright }
67bb8a0c61SJames Wright 
68e0d1a4dfSLeila Ghaffari // *****************************************************************************
69e0d1a4dfSLeila Ghaffari // This helper function computes the Blasius boundary layer solution.
70e0d1a4dfSLeila Ghaffari // *****************************************************************************
712b916ea7SJeremy L Thompson State CEED_QFUNCTION_HELPER(BlasiusSolution)(const BlasiusContext blasius, const CeedScalar x[3], const CeedScalar x0, const CeedScalar x_inflow,
720d850f2eSLeila Ghaffari                                              const CeedScalar rho_infty, CeedScalar *t12) {
73e0d1a4dfSLeila Ghaffari   CeedInt    N       = blasius->n_cheb;
740d850f2eSLeila Ghaffari   CeedScalar mu      = blasius->newtonian_ctx.mu;
75*fcb2c22aSJames Wright   State      S_infty = blasius->S_infty;
760d850f2eSLeila Ghaffari   CeedScalar nu      = mu / rho_infty;
77*fcb2c22aSJames Wright   CeedScalar U_infty = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity));
78*fcb2c22aSJames Wright   CeedScalar eta     = x[1] * sqrt(U_infty / (nu * (x0 + x[0] - x_inflow)));
79e0d1a4dfSLeila Ghaffari   CeedScalar X       = 2 * (eta / blasius->eta_max) - 1.;
80e0d1a4dfSLeila Ghaffari   CeedScalar Rd      = GasConstant(&blasius->newtonian_ctx);
81e0d1a4dfSLeila Ghaffari 
82e0d1a4dfSLeila Ghaffari   CeedScalar f[4], h[4];
83e0d1a4dfSLeila Ghaffari   ChebyshevEval(N, blasius->Tf_cheb, X, blasius->eta_max, f);
84e0d1a4dfSLeila Ghaffari   ChebyshevEval(N - 1, blasius->Th_cheb, X, blasius->eta_max, h);
85e0d1a4dfSLeila Ghaffari 
86*fcb2c22aSJames Wright   *t12 = mu * U_infty * f[2] * sqrt(U_infty / (nu * (x0 + x[0] - x_inflow)));
87e0d1a4dfSLeila Ghaffari 
88e0d1a4dfSLeila Ghaffari   CeedScalar Y[5];
89*fcb2c22aSJames Wright   Y[1] = U_infty * f[1];
90*fcb2c22aSJames Wright   Y[2] = 0.5 * sqrt(nu * U_infty / (x0 + x[0] - x_inflow)) * (eta * f[1] - f[0]);
91e0d1a4dfSLeila Ghaffari   Y[3] = 0.;
92*fcb2c22aSJames Wright   Y[4] = S_infty.Y.temperature * h[0];
930d850f2eSLeila Ghaffari   Y[0] = rho_infty / h[0] * Rd * Y[4];
94edcfef1bSKenneth E. Jansen   return StateFromY(&blasius->newtonian_ctx, Y);
95bb8a0c61SJames Wright }
96bb8a0c61SJames Wright 
97bb8a0c61SJames Wright // *****************************************************************************
98bb8a0c61SJames Wright // This QFunction sets a Blasius boundary layer for the initial condition
99bb8a0c61SJames Wright // *****************************************************************************
1002b916ea7SJeremy L Thompson CEED_QFUNCTION(ICsBlasius)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) {
101bb8a0c61SJames Wright   const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
102bb8a0c61SJames Wright   CeedScalar(*q0)[CEED_Q_VLA]      = (CeedScalar(*)[CEED_Q_VLA])out[0];
103bb8a0c61SJames Wright 
104bb8a0c61SJames Wright   const BlasiusContext           context  = (BlasiusContext)ctx;
10533796533SJames Wright   const NewtonianIdealGasContext gas      = &context->newtonian_ctx;
106bb8a0c61SJames Wright   const CeedScalar               mu       = context->newtonian_ctx.mu;
107bb8a0c61SJames Wright   const CeedScalar               delta0   = context->delta0;
108ef2c71fdSJames Wright   const CeedScalar               x_inflow = context->x_inflow;
109e0d1a4dfSLeila Ghaffari   CeedScalar                     t12;
110bb8a0c61SJames Wright 
111*fcb2c22aSJames Wright   const State      S_infty = context->S_infty;
112*fcb2c22aSJames Wright   const CeedScalar U_infty = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity));
113bb8a0c61SJames Wright 
114*fcb2c22aSJames Wright   const CeedScalar x0 = U_infty * S_infty.U.density / (mu * 25 / Square(delta0));
11533796533SJames Wright 
11633796533SJames Wright   CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) {
11733796533SJames Wright     const CeedScalar x[3] = {X[0][i], X[1][i], X[2][i]};
118*fcb2c22aSJames Wright     State            s    = BlasiusSolution(context, x, x0, x_inflow, S_infty.U.density, &t12);
11933796533SJames Wright     CeedScalar       q[5] = {0};
12033796533SJames Wright 
12133796533SJames Wright     switch (gas->state_var) {
12233796533SJames Wright       case STATEVAR_CONSERVATIVE:
12333796533SJames Wright         UnpackState_U(s.U, q);
12433796533SJames Wright         break;
12533796533SJames Wright       case STATEVAR_PRIMITIVE:
12633796533SJames Wright         UnpackState_Y(s.Y, q);
12733796533SJames Wright         break;
12833796533SJames Wright     }
12933796533SJames Wright     for (CeedInt j = 0; j < 5; j++) q0[j][i] = q[j];
13033796533SJames Wright   }
131bb8a0c61SJames Wright   return 0;
132bb8a0c61SJames Wright }
133bb8a0c61SJames Wright 
134bb8a0c61SJames Wright // *****************************************************************************
1352b916ea7SJeremy L Thompson CEED_QFUNCTION(Blasius_Inflow)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) {
1364b96a86bSJames Wright   const BlasiusContext context     = (BlasiusContext)ctx;
1373d65b166SJames Wright   const CeedScalar(*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
138ade49511SJames Wright   const CeedScalar(*q_data_sur)    = in[2];
1393d65b166SJames Wright   const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[3];
140bb8a0c61SJames Wright   CeedScalar(*v)[CEED_Q_VLA]       = (CeedScalar(*)[CEED_Q_VLA])out[0];
1414b96a86bSJames Wright   CeedScalar(*jac_data_sur)        = context->newtonian_ctx.is_implicit ? out[1] : NULL;
1423d65b166SJames Wright 
143ade49511SJames Wright   const bool                     is_implicit = context->implicit;
144512c8ec7SJames Wright   const NewtonianIdealGasContext gas         = &context->newtonian_ctx;
145*fcb2c22aSJames Wright   State                          S_infty     = context->S_infty;
146*fcb2c22aSJames Wright   const CeedScalar               rho_0       = S_infty.U.density;
147*fcb2c22aSJames Wright   const CeedScalar               U_infty     = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity));
148*fcb2c22aSJames Wright   const CeedScalar               x0          = U_infty * rho_0 / (gas->mu * 25 / Square(context->delta0));
14980f5d3cbSJames Wright   const CeedScalar               zeros[11]   = {0.};
150bb8a0c61SJames Wright 
1513d65b166SJames Wright   CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) {
152ade49511SJames Wright     CeedScalar wdetJb, norm[3];
153ade49511SJames Wright     QdataBoundaryUnpack_3D(Q, i, q_data_sur, &wdetJb, NULL, norm);
154ade49511SJames Wright     wdetJb *= is_implicit ? -1. : 1.;
155bb8a0c61SJames Wright 
1562acc7cbcSKenneth E. Jansen     // Calculate inflow values
157e0d1a4dfSLeila Ghaffari     const CeedScalar x[3] = {X[0][i], X[1][i], 0.};
158bb8a0c61SJames Wright     CeedScalar       t12;
159512c8ec7SJames Wright     State            s = BlasiusSolution(context, x, x0, context->x_inflow, rho_0, &t12);
1600d850f2eSLeila Ghaffari     CeedScalar       qi[5];
1610d850f2eSLeila Ghaffari     for (CeedInt j = 0; j < 5; j++) qi[j] = q[j][i];
162edcfef1bSKenneth E. Jansen     State s_int = StateFromU(gas, qi);
163bb8a0c61SJames Wright 
1642acc7cbcSKenneth E. Jansen     // enabling user to choose between weak T and weak rho inflow
165512c8ec7SJames Wright     if (context->weakT) {  // density from the current solution
1660d850f2eSLeila Ghaffari       s.U.density = s_int.U.density;
167edcfef1bSKenneth E. Jansen       s.Y         = StatePrimitiveFromConservative(gas, s.U);
1680d850f2eSLeila Ghaffari     } else {  // Total energy from current solution
1690d850f2eSLeila Ghaffari       s.U.E_total = s_int.U.E_total;
170edcfef1bSKenneth E. Jansen       s.Y         = StatePrimitiveFromConservative(gas, s.U);
1712acc7cbcSKenneth E. Jansen     }
1720d850f2eSLeila Ghaffari 
1730d850f2eSLeila Ghaffari     StateConservative Flux_inviscid[3];
1740d850f2eSLeila Ghaffari     FluxInviscid(&context->newtonian_ctx, s, Flux_inviscid);
175bb8a0c61SJames Wright 
1762b916ea7SJeremy L Thompson     const CeedScalar stress[3][3] = {
1772b916ea7SJeremy L Thompson         {0,   t12, 0},
1782b916ea7SJeremy L Thompson         {t12, 0,   0},
1792b916ea7SJeremy L Thompson         {0,   0,   0}
1802b916ea7SJeremy L Thompson     };
1810d850f2eSLeila Ghaffari     const CeedScalar Fe[3] = {0};  // TODO: viscous energy flux needs grad temperature
1820d850f2eSLeila Ghaffari     CeedScalar       Flux[5];
1830d850f2eSLeila Ghaffari     FluxTotal_Boundary(Flux_inviscid, stress, Fe, norm, Flux);
1842b916ea7SJeremy L Thompson     for (CeedInt j = 0; j < 5; j++) v[j][i] = -wdetJb * Flux[j];
1854b96a86bSJames Wright     if (is_implicit) StoredValuesPack(Q, i, 0, 11, zeros, jac_data_sur);
186ade49511SJames Wright   }
187bb8a0c61SJames Wright   return 0;
188bb8a0c61SJames Wright }
189bb8a0c61SJames Wright 
190e0d1a4dfSLeila Ghaffari // *****************************************************************************
1912b916ea7SJeremy L Thompson CEED_QFUNCTION(Blasius_Inflow_Jacobian)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) {
1923d65b166SJames Wright   const CeedScalar(*dq)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
193ade49511SJames Wright   const CeedScalar(*q_data_sur)     = in[2];
1943d65b166SJames Wright   const CeedScalar(*X)[CEED_Q_VLA]  = (const CeedScalar(*)[CEED_Q_VLA])in[3];
195f0b65372SJed Brown   CeedScalar(*v)[CEED_Q_VLA]        = (CeedScalar(*)[CEED_Q_VLA])out[0];
1963d65b166SJames Wright 
197f0b65372SJed Brown   const BlasiusContext           context     = (BlasiusContext)ctx;
198512c8ec7SJames Wright   const NewtonianIdealGasContext gas         = &context->newtonian_ctx;
199ade49511SJames Wright   const bool                     is_implicit = context->implicit;
200512c8ec7SJames Wright   const CeedScalar               Rd          = GasConstant(gas);
201512c8ec7SJames Wright   const CeedScalar               gamma       = HeatCapacityRatio(gas);
202*fcb2c22aSJames Wright   const State                    S_infty     = context->S_infty;
203*fcb2c22aSJames Wright   const CeedScalar               rho_0       = S_infty.U.density;
204*fcb2c22aSJames Wright   const CeedScalar               U_infty     = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity));
205*fcb2c22aSJames Wright   const CeedScalar               x0          = U_infty * rho_0 / (gas->mu * 25 / Square(context->delta0));
206f0b65372SJed Brown 
2073d65b166SJames Wright   CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) {
208ade49511SJames Wright     CeedScalar wdetJb, norm[3];
209ade49511SJames Wright     QdataBoundaryUnpack_3D(Q, i, q_data_sur, &wdetJb, NULL, norm);
210ade49511SJames Wright     wdetJb *= is_implicit ? -1. : 1.;
211f0b65372SJed Brown 
212f0b65372SJed Brown     // Calculate inflow values
2130d850f2eSLeila Ghaffari     const CeedScalar x[3] = {X[0][i], X[1][i], X[2][i]};
214f0b65372SJed Brown     CeedScalar       t12;
215e0d1a4dfSLeila Ghaffari     State            s = BlasiusSolution(context, x, x0, 0, rho_0, &t12);
216f0b65372SJed Brown 
217f0b65372SJed Brown     // enabling user to choose between weak T and weak rho inflow
218f0b65372SJed Brown     CeedScalar drho, dE, dP;
219512c8ec7SJames Wright     if (context->weakT) {
220f0b65372SJed Brown       // rho should be from the current solution
221f0b65372SJed Brown       drho                   = dq[0][i];
222*fcb2c22aSJames Wright       CeedScalar dE_internal = drho * gas->cv * S_infty.Y.temperature;
223e0d1a4dfSLeila Ghaffari       CeedScalar dE_kinetic  = .5 * drho * Dot3(s.Y.velocity, s.Y.velocity);
224f0b65372SJed Brown       dE                     = dE_internal + dE_kinetic;
225*fcb2c22aSJames Wright       dP                     = drho * Rd * S_infty.Y.temperature;  // interior rho with exterior T
226*fcb2c22aSJames Wright     } else {
227*fcb2c22aSJames Wright       // rho specified, E_internal from solution
228f0b65372SJed Brown       drho = 0;
229f0b65372SJed Brown       dE   = dq[4][i];
230f0b65372SJed Brown       dP   = dE * (gamma - 1.);
231f0b65372SJed Brown     }
232f0b65372SJed Brown 
233e0d1a4dfSLeila Ghaffari     const CeedScalar u_normal = Dot3(norm, s.Y.velocity);
234f0b65372SJed Brown 
235f0b65372SJed Brown     v[0][i] = -wdetJb * drho * u_normal;
2362b916ea7SJeremy L Thompson     for (int j = 0; j < 3; j++) {
237e0d1a4dfSLeila Ghaffari       v[j + 1][i] = -wdetJb * (drho * u_normal * s.Y.velocity[j] + norm[j] * dP);
2382b916ea7SJeremy L Thompson     }
239f0b65372SJed Brown     v[4][i] = -wdetJb * u_normal * (dE + dP);
240ade49511SJames Wright   }
241f0b65372SJed Brown   return 0;
242f0b65372SJed Brown }
243