15aed82e4SJeremy L Thompson // Copyright (c) 2017-2024, Lawrence Livermore National Security, LLC and other CEED contributors. 288626eedSJames Wright // All Rights Reserved. See the top-level LICENSE and NOTICE files for details. 388626eedSJames Wright // 488626eedSJames Wright // SPDX-License-Identifier: BSD-2-Clause 588626eedSJames Wright // 688626eedSJames Wright // This file is part of CEED: http://github.com/ceed 788626eedSJames Wright 888626eedSJames Wright /// @file 988626eedSJames Wright /// Operator for Navier-Stokes example using PETSc 10*c0b5abf0SJeremy L Thompson #include <ceed/types.h> 11*c0b5abf0SJeremy L Thompson #ifndef CEED_RUNNING_JIT_PASS 12*c0b5abf0SJeremy L Thompson #include <stdbool.h> 13*c0b5abf0SJeremy L Thompson #endif 142b730f8bSJeremy L Thompson 152518f336SLeila Ghaffari #include "newtonian_state.h" 16841e4c73SJed Brown #include "newtonian_types.h" 1713fa47b2SJames Wright #include "utils.h" 1888626eedSJames Wright 1907d14e58SLeila Ghaffari #define BLASIUS_MAX_N_CHEBYSHEV 50 2007d14e58SLeila Ghaffari 2188626eedSJames Wright typedef struct BlasiusContext_ *BlasiusContext; 2288626eedSJames Wright struct BlasiusContext_ { 2388626eedSJames Wright bool implicit; // !< Using implicit timesteping or not 24871db79fSKenneth E. Jansen bool weakT; // !< flag to set Temperature weakly at inflow 2588626eedSJames Wright CeedScalar delta0; // !< Boundary layer height at inflow 26ff9b3c0eSJames Wright State S_infty; 272518f336SLeila Ghaffari CeedScalar T_wall; // !< Temperature at the wall 28f1122ed0SJames Wright CeedScalar x_inflow; // !< Location of inflow in x 292518f336SLeila Ghaffari CeedScalar n_cheb; // !< Number of Chebyshev terms 3007d14e58SLeila Ghaffari CeedScalar *X; // !< Chebyshev polynomial coordinate vector (CPU only) 312518f336SLeila Ghaffari CeedScalar eta_max; // !< Maximum eta in the domain 3207d14e58SLeila Ghaffari CeedScalar Tf_cheb[BLASIUS_MAX_N_CHEBYSHEV]; // !< Chebyshev coefficient for f 3307d14e58SLeila Ghaffari CeedScalar Th_cheb[BLASIUS_MAX_N_CHEBYSHEV - 1]; // !< Chebyshev coefficient for h 3488626eedSJames Wright struct NewtonianIdealGasContext_ newtonian_ctx; 3588626eedSJames Wright }; 3688626eedSJames Wright 372518f336SLeila Ghaffari // ***************************************************************************** 38ea61e9acSJeremy L Thompson // This helper function evaluates Chebyshev polynomials with a set of coefficients with all their derivatives represented as a recurrence table. 392518f336SLeila Ghaffari // ***************************************************************************** 402b730f8bSJeremy L Thompson CEED_QFUNCTION_HELPER void ChebyshevEval(int N, const double *Tf, double x, double eta_max, double *f) { 412518f336SLeila Ghaffari double dX_deta = 2 / eta_max; 422518f336SLeila Ghaffari double table[4][3] = { 432518f336SLeila Ghaffari // Chebyshev polynomials T_0, T_1, T_2 of the first kind in (-1,1) 442b730f8bSJeremy L Thompson {1, x, 2 * x * x - 1}, 452b730f8bSJeremy L Thompson {0, 1, 4 * x }, 462b730f8bSJeremy L Thompson {0, 0, 4 }, 472b730f8bSJeremy L Thompson {0, 0, 0 } 482518f336SLeila Ghaffari }; 492518f336SLeila Ghaffari for (int i = 0; i < 4; i++) { 502518f336SLeila Ghaffari // i-th derivative of f 512518f336SLeila Ghaffari f[i] = table[i][0] * Tf[0] + table[i][1] * Tf[1] + table[i][2] * Tf[2]; 522518f336SLeila Ghaffari } 532518f336SLeila Ghaffari for (int i = 3; i < N; i++) { 542518f336SLeila Ghaffari // T_n(x) = 2xT_{n-1}(x) - T_{n-2}(x) 552518f336SLeila Ghaffari table[0][i % 3] = 2 * x * table[0][(i - 1) % 3] - table[0][(i - 2) % 3]; 562518f336SLeila Ghaffari // Differentiate Chebyshev polynomials with the recurrence relation 572518f336SLeila Ghaffari for (int j = 1; j < 4; j++) { 582518f336SLeila Ghaffari // T'_{n}(x)/n = 2T_{n-1}(x) + T'_{n-2}(x)/n-2 592518f336SLeila Ghaffari table[j][i % 3] = i * (2 * table[j - 1][(i - 1) % 3] + table[j][(i - 2) % 3] / (i - 2)); 602518f336SLeila Ghaffari } 612518f336SLeila Ghaffari for (int j = 0; j < 4; j++) { 622518f336SLeila Ghaffari f[j] += table[j][i % 3] * Tf[i]; 6388626eedSJames Wright } 6488626eedSJames Wright } 652518f336SLeila Ghaffari for (int i = 1; i < 4; i++) { 662518f336SLeila Ghaffari // Transform derivatives from Chebyshev [-1, 1] to [0, eta_max]. 672518f336SLeila Ghaffari for (int j = 0; j < i; j++) f[i] *= dX_deta; 682518f336SLeila Ghaffari } 6988626eedSJames Wright } 7088626eedSJames Wright 712518f336SLeila Ghaffari // ***************************************************************************** 722518f336SLeila Ghaffari // This helper function computes the Blasius boundary layer solution. 732518f336SLeila Ghaffari // ***************************************************************************** 742b730f8bSJeremy L Thompson State CEED_QFUNCTION_HELPER(BlasiusSolution)(const BlasiusContext blasius, const CeedScalar x[3], const CeedScalar x0, const CeedScalar x_inflow, 7507d14e58SLeila Ghaffari const CeedScalar rho_infty, CeedScalar *t12) { 762518f336SLeila Ghaffari CeedInt N = blasius->n_cheb; 7707d14e58SLeila Ghaffari CeedScalar mu = blasius->newtonian_ctx.mu; 78ff9b3c0eSJames Wright State S_infty = blasius->S_infty; 7907d14e58SLeila Ghaffari CeedScalar nu = mu / rho_infty; 80ff9b3c0eSJames Wright CeedScalar U_infty = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity)); 81ff9b3c0eSJames Wright CeedScalar eta = x[1] * sqrt(U_infty / (nu * (x0 + x[0] - x_inflow))); 822518f336SLeila Ghaffari CeedScalar X = 2 * (eta / blasius->eta_max) - 1.; 832518f336SLeila Ghaffari CeedScalar Rd = GasConstant(&blasius->newtonian_ctx); 842518f336SLeila Ghaffari 852518f336SLeila Ghaffari CeedScalar f[4], h[4]; 862518f336SLeila Ghaffari ChebyshevEval(N, blasius->Tf_cheb, X, blasius->eta_max, f); 872518f336SLeila Ghaffari ChebyshevEval(N - 1, blasius->Th_cheb, X, blasius->eta_max, h); 882518f336SLeila Ghaffari 89ff9b3c0eSJames Wright *t12 = mu * U_infty * f[2] * sqrt(U_infty / (nu * (x0 + x[0] - x_inflow))); 902518f336SLeila Ghaffari 912518f336SLeila Ghaffari CeedScalar Y[5]; 92ff9b3c0eSJames Wright Y[1] = U_infty * f[1]; 93ff9b3c0eSJames Wright Y[2] = 0.5 * sqrt(nu * U_infty / (x0 + x[0] - x_inflow)) * (eta * f[1] - f[0]); 942518f336SLeila Ghaffari Y[3] = 0.; 95ff9b3c0eSJames Wright Y[4] = S_infty.Y.temperature * h[0]; 9607d14e58SLeila Ghaffari Y[0] = rho_infty / h[0] * Rd * Y[4]; 973bd61617SKenneth E. Jansen return StateFromY(&blasius->newtonian_ctx, Y); 9888626eedSJames Wright } 9988626eedSJames Wright 10088626eedSJames Wright // ***************************************************************************** 10188626eedSJames Wright // This QFunction sets a Blasius boundary layer for the initial condition 10288626eedSJames Wright // ***************************************************************************** 1032b730f8bSJeremy L Thompson CEED_QFUNCTION(ICsBlasius)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) { 10488626eedSJames Wright const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0]; 10588626eedSJames Wright CeedScalar(*q0)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 10688626eedSJames Wright 10788626eedSJames Wright const BlasiusContext context = (BlasiusContext)ctx; 108912a746fSJames Wright const NewtonianIdealGasContext gas = &context->newtonian_ctx; 10988626eedSJames Wright const CeedScalar mu = context->newtonian_ctx.mu; 11088626eedSJames Wright const CeedScalar delta0 = context->delta0; 111f1122ed0SJames Wright const CeedScalar x_inflow = context->x_inflow; 1122518f336SLeila Ghaffari CeedScalar t12; 11388626eedSJames Wright 114ff9b3c0eSJames Wright const State S_infty = context->S_infty; 115ff9b3c0eSJames Wright const CeedScalar U_infty = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity)); 11688626eedSJames Wright 117ff9b3c0eSJames Wright const CeedScalar x0 = U_infty * S_infty.U.density / (mu * 25 / Square(delta0)); 118912a746fSJames Wright 119912a746fSJames Wright CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) { 120912a746fSJames Wright const CeedScalar x[3] = {X[0][i], X[1][i], X[2][i]}; 121ff9b3c0eSJames Wright State s = BlasiusSolution(context, x, x0, x_inflow, S_infty.U.density, &t12); 122912a746fSJames Wright CeedScalar q[5] = {0}; 123912a746fSJames Wright 124a2d72b6fSJames Wright StateToQ(gas, s, q, gas->state_var); 125912a746fSJames Wright for (CeedInt j = 0; j < 5; j++) q0[j][i] = q[j]; 126912a746fSJames Wright } 12788626eedSJames Wright return 0; 12888626eedSJames Wright } 12988626eedSJames Wright 13088626eedSJames Wright // ***************************************************************************** 1312b730f8bSJeremy L Thompson CEED_QFUNCTION(Blasius_Inflow)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) { 132f21e6b1cSJames Wright const BlasiusContext context = (BlasiusContext)ctx; 13346603fc5SJames Wright const CeedScalar(*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0]; 134f3e15844SJames Wright const CeedScalar(*q_data_sur) = in[2]; 13546603fc5SJames Wright const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[3]; 13688626eedSJames Wright CeedScalar(*v)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 137f21e6b1cSJames Wright CeedScalar(*jac_data_sur) = context->newtonian_ctx.is_implicit ? out[1] : NULL; 13846603fc5SJames Wright 139f3e15844SJames Wright const bool is_implicit = context->implicit; 1404c0e8230SJames Wright const NewtonianIdealGasContext gas = &context->newtonian_ctx; 141ff9b3c0eSJames Wright State S_infty = context->S_infty; 142ff9b3c0eSJames Wright const CeedScalar rho_0 = S_infty.U.density; 143ff9b3c0eSJames Wright const CeedScalar U_infty = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity)); 144ff9b3c0eSJames Wright const CeedScalar x0 = U_infty * rho_0 / (gas->mu * 25 / Square(context->delta0)); 14529ea4e10SJames Wright const CeedScalar zeros[11] = {0.}; 14688626eedSJames Wright 14746603fc5SJames Wright CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) { 148f3e15844SJames Wright CeedScalar wdetJb, norm[3]; 149f3e15844SJames Wright QdataBoundaryUnpack_3D(Q, i, q_data_sur, &wdetJb, NULL, norm); 150f3e15844SJames Wright wdetJb *= is_implicit ? -1. : 1.; 15188626eedSJames Wright 152871db79fSKenneth E. Jansen // Calculate inflow values 1532518f336SLeila Ghaffari const CeedScalar x[3] = {X[0][i], X[1][i], 0.}; 15488626eedSJames Wright CeedScalar t12; 1554c0e8230SJames Wright State s = BlasiusSolution(context, x, x0, context->x_inflow, rho_0, &t12); 15607d14e58SLeila Ghaffari CeedScalar qi[5]; 15707d14e58SLeila Ghaffari for (CeedInt j = 0; j < 5; j++) qi[j] = q[j][i]; 1583bd61617SKenneth E. Jansen State s_int = StateFromU(gas, qi); 15988626eedSJames Wright 160871db79fSKenneth E. Jansen // enabling user to choose between weak T and weak rho inflow 1614c0e8230SJames Wright if (context->weakT) { // density from the current solution 16207d14e58SLeila Ghaffari s.U.density = s_int.U.density; 1633bd61617SKenneth E. Jansen s.Y = StatePrimitiveFromConservative(gas, s.U); 16407d14e58SLeila Ghaffari } else { // Total energy from current solution 16507d14e58SLeila Ghaffari s.U.E_total = s_int.U.E_total; 1663bd61617SKenneth E. Jansen s.Y = StatePrimitiveFromConservative(gas, s.U); 167871db79fSKenneth E. Jansen } 16807d14e58SLeila Ghaffari 16907d14e58SLeila Ghaffari StateConservative Flux_inviscid[3]; 17007d14e58SLeila Ghaffari FluxInviscid(&context->newtonian_ctx, s, Flux_inviscid); 17188626eedSJames Wright 1722b730f8bSJeremy L Thompson const CeedScalar stress[3][3] = { 1732b730f8bSJeremy L Thompson {0, t12, 0}, 1742b730f8bSJeremy L Thompson {t12, 0, 0}, 1752b730f8bSJeremy L Thompson {0, 0, 0} 1762b730f8bSJeremy L Thompson }; 17707d14e58SLeila Ghaffari const CeedScalar Fe[3] = {0}; // TODO: viscous energy flux needs grad temperature 17807d14e58SLeila Ghaffari CeedScalar Flux[5]; 17907d14e58SLeila Ghaffari FluxTotal_Boundary(Flux_inviscid, stress, Fe, norm, Flux); 1802b730f8bSJeremy L Thompson for (CeedInt j = 0; j < 5; j++) v[j][i] = -wdetJb * Flux[j]; 181f21e6b1cSJames Wright if (is_implicit) StoredValuesPack(Q, i, 0, 11, zeros, jac_data_sur); 182f3e15844SJames Wright } 18388626eedSJames Wright return 0; 18488626eedSJames Wright } 18588626eedSJames Wright 1862518f336SLeila Ghaffari // ***************************************************************************** 1872b730f8bSJeremy L Thompson CEED_QFUNCTION(Blasius_Inflow_Jacobian)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) { 18846603fc5SJames Wright const CeedScalar(*dq)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0]; 189f3e15844SJames Wright const CeedScalar(*q_data_sur) = in[2]; 19046603fc5SJames Wright const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[3]; 191e334ad8fSJed Brown CeedScalar(*v)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 19246603fc5SJames Wright 193e334ad8fSJed Brown const BlasiusContext context = (BlasiusContext)ctx; 1944c0e8230SJames Wright const NewtonianIdealGasContext gas = &context->newtonian_ctx; 195f3e15844SJames Wright const bool is_implicit = context->implicit; 1964c0e8230SJames Wright const CeedScalar Rd = GasConstant(gas); 1974c0e8230SJames Wright const CeedScalar gamma = HeatCapacityRatio(gas); 198ff9b3c0eSJames Wright const State S_infty = context->S_infty; 199ff9b3c0eSJames Wright const CeedScalar rho_0 = S_infty.U.density; 200ff9b3c0eSJames Wright const CeedScalar U_infty = sqrt(Dot3(S_infty.Y.velocity, S_infty.Y.velocity)); 201ff9b3c0eSJames Wright const CeedScalar x0 = U_infty * rho_0 / (gas->mu * 25 / Square(context->delta0)); 202e334ad8fSJed Brown 20346603fc5SJames Wright CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) { 204f3e15844SJames Wright CeedScalar wdetJb, norm[3]; 205f3e15844SJames Wright QdataBoundaryUnpack_3D(Q, i, q_data_sur, &wdetJb, NULL, norm); 206f3e15844SJames Wright wdetJb *= is_implicit ? -1. : 1.; 207e334ad8fSJed Brown 208e334ad8fSJed Brown // Calculate inflow values 20907d14e58SLeila Ghaffari const CeedScalar x[3] = {X[0][i], X[1][i], X[2][i]}; 210e334ad8fSJed Brown CeedScalar t12; 2112518f336SLeila Ghaffari State s = BlasiusSolution(context, x, x0, 0, rho_0, &t12); 212e334ad8fSJed Brown 213e334ad8fSJed Brown // enabling user to choose between weak T and weak rho inflow 214e334ad8fSJed Brown CeedScalar drho, dE, dP; 2154c0e8230SJames Wright if (context->weakT) { 216e334ad8fSJed Brown // rho should be from the current solution 217e334ad8fSJed Brown drho = dq[0][i]; 218ff9b3c0eSJames Wright CeedScalar dE_internal = drho * gas->cv * S_infty.Y.temperature; 2192518f336SLeila Ghaffari CeedScalar dE_kinetic = .5 * drho * Dot3(s.Y.velocity, s.Y.velocity); 220e334ad8fSJed Brown dE = dE_internal + dE_kinetic; 221ff9b3c0eSJames Wright dP = drho * Rd * S_infty.Y.temperature; // interior rho with exterior T 222ff9b3c0eSJames Wright } else { 223ff9b3c0eSJames Wright // rho specified, E_internal from solution 224e334ad8fSJed Brown drho = 0; 225e334ad8fSJed Brown dE = dq[4][i]; 226e334ad8fSJed Brown dP = dE * (gamma - 1.); 227e334ad8fSJed Brown } 228e334ad8fSJed Brown 2292518f336SLeila Ghaffari const CeedScalar u_normal = Dot3(norm, s.Y.velocity); 230e334ad8fSJed Brown 231e334ad8fSJed Brown v[0][i] = -wdetJb * drho * u_normal; 2322b730f8bSJeremy L Thompson for (int j = 0; j < 3; j++) { 2332518f336SLeila Ghaffari v[j + 1][i] = -wdetJb * (drho * u_normal * s.Y.velocity[j] + norm[j] * dP); 2342b730f8bSJeremy L Thompson } 235e334ad8fSJed Brown v[4][i] = -wdetJb * u_normal * (dE + dP); 236f3e15844SJames Wright } 237e334ad8fSJed Brown return 0; 238e334ad8fSJed Brown } 239