1bb8a0c61SJames Wright // Copyright (c) 2017-2022, 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 11bb8a0c61SJames Wright 12bb8a0c61SJames Wright #ifndef blasius_h 13bb8a0c61SJames Wright #define blasius_h 14bb8a0c61SJames Wright 15bb8a0c61SJames Wright #include <math.h> 16bb8a0c61SJames Wright #include <ceed.h> 1715a3537eSJed Brown #include "newtonian_types.h" 18bb8a0c61SJames Wright 19bb8a0c61SJames Wright typedef struct BlasiusContext_ *BlasiusContext; 20bb8a0c61SJames Wright struct BlasiusContext_ { 21bb8a0c61SJames Wright bool implicit; // !< Using implicit timesteping or not 222acc7cbcSKenneth E. Jansen bool weakT; // !< flag to set Temperature weakly at inflow 23bb8a0c61SJames Wright CeedScalar delta0; // !< Boundary layer height at inflow 24bb8a0c61SJames Wright CeedScalar Uinf; // !< Velocity at boundary layer edge 25bb8a0c61SJames Wright CeedScalar P0; // !< Pressure at outflow 26bb8a0c61SJames Wright CeedScalar theta0; // !< Temperature at inflow 27*ef2c71fdSJames Wright CeedScalar x_inflow; // !< Location of inflow in x 28bb8a0c61SJames Wright struct NewtonianIdealGasContext_ newtonian_ctx; 29bb8a0c61SJames Wright }; 30bb8a0c61SJames Wright 31bb8a0c61SJames Wright #ifndef M_PI 32bb8a0c61SJames Wright #define M_PI 3.14159265358979323846 33bb8a0c61SJames Wright #endif 34bb8a0c61SJames Wright 35bb8a0c61SJames Wright void CEED_QFUNCTION_HELPER(BlasiusSolution)(const CeedScalar y, 36bb8a0c61SJames Wright const CeedScalar Uinf, const CeedScalar x0, const CeedScalar x, 37bb8a0c61SJames Wright const CeedScalar rho, CeedScalar *u, CeedScalar *v, CeedScalar *t12, 38bb8a0c61SJames Wright const NewtonianIdealGasContext newt_ctx) { 39bb8a0c61SJames Wright 40bb8a0c61SJames Wright CeedInt nprofs = 50; 41bb8a0c61SJames Wright // *INDENT-OFF* 42bb8a0c61SJames Wright CeedScalar eta_table[] = { 43bb8a0c61SJames Wright 0.000000000000000000e+00, 1.282051282051281937e-01, 2.564102564102563875e-01, 3.846153846153845812e-01, 5.128205128205127750e-01, 44bb8a0c61SJames Wright 6.410256410256409687e-01, 7.692307692307691624e-01, 8.974358974358973562e-01, 1.025641025641025550e+00, 1.153846153846153744e+00, 45bb8a0c61SJames Wright 1.282051282051281937e+00, 1.410256410256410131e+00, 1.538461538461538325e+00, 1.666666666666666519e+00, 1.794871794871794712e+00, 46bb8a0c61SJames Wright 1.923076923076922906e+00, 2.051282051282051100e+00, 2.179487179487179294e+00, 2.307692307692307487e+00, 2.435897435897435681e+00, 47bb8a0c61SJames Wright 2.564102564102563875e+00, 2.692307692307692069e+00, 2.820512820512820262e+00, 2.948717948717948456e+00, 3.076923076923076650e+00, 48bb8a0c61SJames Wright 3.205128205128204844e+00, 3.333333333333333037e+00, 3.461538461538461231e+00, 3.589743589743589425e+00, 3.717948717948717618e+00, 49bb8a0c61SJames Wright 3.846153846153845812e+00, 3.974358974358974006e+00, 4.102564102564102200e+00, 4.230769230769229949e+00, 4.358974358974358587e+00, 50bb8a0c61SJames Wright 4.487179487179487225e+00, 4.615384615384614975e+00, 4.743589743589742724e+00, 4.871794871794871362e+00, 5.000000000000000000e+00, 51bb8a0c61SJames Wright 5.500000000000000000e+00, 6.000000000000000000e+00, 6.500000000000000000e+00, 7.000000000000000000e+00, 7.500000000000000000e+00, 52bb8a0c61SJames Wright 8.000000000000000000e+00, 8.500000000000000000e+00, 9.000000000000000000e+00, 9.500000000000000000e+00, 1.000000000000000000e+01}; 53bb8a0c61SJames Wright 54bb8a0c61SJames Wright CeedScalar f_table[] = { 55bb8a0c61SJames Wright 0.000000000000000000e+00, 2.728923405566200267e-03, 1.091524811461423369e-02, 2.455658828897525764e-02, 4.364674649279581820e-02, 56bb8a0c61SJames Wright 6.817382707725749835e-02, 9.811838418932711248e-02, 1.334516294237205192e-01, 1.741337304561980659e-01, 2.201122374410622862e-01, 57bb8a0c61SJames Wright 2.713206781625860375e-01, 3.276773654929600599e-01, 3.890844612583744255e-01, 4.554273387986328414e-01, 5.265742820946719416e-01, 58bb8a0c61SJames Wright 6.023765522220410062e-01, 6.826688421431770237e-01, 7.672701287583111318e-01, 8.559849171804534418e-01, 9.486048570979430661e-01, 59bb8a0c61SJames Wright 1.044910695686512625e+00, 1.144674516826549082e+00, 1.247662203367335465e+00, 1.353636048811749593e+00, 1.462357437868362364e+00, 60bb8a0c61SJames Wright 1.573589512396551759e+00, 1.687099740622293842e+00, 1.802662313062363353e+00, 1.920060297987626230e+00, 2.039087501786055245e+00, 61bb8a0c61SJames Wright 2.159549994377929050e+00, 2.281267275838891884e+00, 2.404073076539093190e+00, 2.527815798402052838e+00, 2.652358618452637540e+00, 62bb8a0c61SJames Wright 2.777579287003750341e+00, 2.903369661199559637e+00, 3.029635020019957992e+00, 3.156293209307130088e+00, 3.283273665161465349e+00, 63bb8a0c61SJames Wright 3.780571892998292771e+00, 4.279620922520262383e+00, 4.779322325882148448e+00, 5.279238811036782053e+00, 5.779218028455369804e+00, 64bb8a0c61SJames Wright 6.279213431354994768e+00, 6.779212528163703233e+00, 7.279212370655419484e+00, 7.779212346288013613e+00, 8.279212342945751146e+00}; 65bb8a0c61SJames Wright 66bb8a0c61SJames Wright CeedScalar fp_table[] = { 67bb8a0c61SJames Wright 0.000000000000000000e+00, 4.257083277988830267e-02, 8.513297869782740501e-02, 1.276641169537044151e-01, 1.701271279078802878e-01, 68bb8a0c61SJames Wright 2.124702831905590783e-01, 2.546276046951935212e-01, 2.965194442747576264e-01, 3.380533304776729975e-01, 3.791251204629754179e-01, 69bb8a0c61SJames Wright 4.196204840172004791e-01, 4.594167322894788796e-01, 4.983849866855867838e-01, 5.363926638765821320e-01, 5.733062319885513514e-01, 70bb8a0c61SJames Wright 6.089941719927144392e-01, 6.433300586189647507e-01, 6.761956584341198839e-01, 7.074839307288774970e-01, 7.371018110314454530e-01, 71bb8a0c61SJames Wright 7.649726585225528064e-01, 7.910382579383948842e-01, 8.152602836158657773e-01, 8.376211573266827415e-01, 8.581242609418713307e-01, 72bb8a0c61SJames Wright 8.767934976651666767e-01, 8.936722290953328374e-01, 9.088216471306606037e-01, 9.223186672607004422e-01, 9.342534510898168332e-01, 73bb8a0c61SJames Wright 9.447266795705382414e-01, 9.538467037387058367e-01, 9.617266968332524035e-01, 9.684819213624265011e-01, 9.742272083384174719e-01, 74bb8a0c61SJames Wright 9.790747253056680810e-01, 9.831320868743089747e-01, 9.865008381344084754e-01, 9.892753192614093249e-01, 9.915419001656551323e-01, 75bb8a0c61SJames Wright 9.968788209317821503e-01, 9.989728724371175206e-01, 9.996990677381791812e-01, 9.999216041491896245e-01, 9.999818594083667023e-01, 76bb8a0c61SJames Wright 9.999962745365539307e-01, 9.999993214550036980e-01, 9.999998904550418954e-01, 9.999999843329338001e-01, 9.999999980166356384e-01}; 77bb8a0c61SJames Wright 78bb8a0c61SJames Wright CeedScalar fpp_table[] = { 79bb8a0c61SJames Wright 3.320573362157903663e-01, 3.320379743512646420e-01, 3.319024760665882368e-01, 3.315350015070190337e-01, 3.308206767975666041e-01, 80bb8a0c61SJames Wright 3.296466995822193158e-01, 3.279038639411161471e-01, 3.254884713737624113e-01, 3.223045750196085746e-01, 3.182664816607024272e-01, 81bb8a0c61SJames Wright 3.133014118810801829e-01, 3.073521951089355775e-01, 3.003798556086043625e-01, 2.923659305537876785e-01, 2.833143548208253981e-01, 82bb8a0c61SJames Wright 2.732527514995234941e-01, 2.622329840371728227e-01, 2.503308560706500874e-01, 2.376448876931176457e-01, 2.242941499773744018e-01, 83bb8a0c61SJames Wright 2.104151994284793603e-01, 1.961582158440171031e-01, 1.816825052623964043e-01, 1.671515786102889534e-01, 1.527280512426029968e-01, 84bb8a0c61SJames Wright 1.385686249977987894e-01, 1.248194106805364800e-01, 1.116118251613979206e-01, 9.905925581301598670e-02, 8.725462988794610575e-02, 85bb8a0c61SJames Wright 7.626896310981794158e-02, 6.615089622448211415e-02, 5.692716644118058639e-02, 4.860390768479891377e-02, 4.116863313890323922e-02, 86bb8a0c61SJames Wright 3.459272784597366285e-02, 2.883426862493499582e-02, 2.384099224121952881e-02, 1.955324839409207718e-02, 1.590679868531958210e-02, 87bb8a0c61SJames Wright 6.578593141419011685e-03, 2.402039843751689954e-03, 7.741093231657678389e-04, 2.201689553063347941e-04, 5.526217815680267893e-05, 88bb8a0c61SJames Wright 1.224092624232004387e-05, 2.392841910090350858e-06, 4.127879363882133676e-07, 6.284244603762621373e-08, 8.442944409712819646e-09}; 89bb8a0c61SJames Wright // *INDENT-ON* 90bb8a0c61SJames Wright 91bb8a0c61SJames Wright CeedScalar nu = newt_ctx->mu / rho; 92bb8a0c61SJames Wright CeedScalar eta = y*sqrt(Uinf/(nu*(x0+x))); 93bb8a0c61SJames Wright CeedInt idx=-1; 94bb8a0c61SJames Wright 95bb8a0c61SJames Wright for(CeedInt i=0; i<nprofs; i++) { 96bb8a0c61SJames Wright if (eta < eta_table[i]) { 97bb8a0c61SJames Wright idx = i; 98bb8a0c61SJames Wright break; 99bb8a0c61SJames Wright } 100bb8a0c61SJames Wright } 101bb8a0c61SJames Wright CeedScalar f, fp, fpp; 102bb8a0c61SJames Wright 103bb8a0c61SJames Wright if (idx > 0) { // eta within the bounds of eta_table 104bb8a0c61SJames Wright CeedScalar coeff = (eta - eta_table[idx-1]) / (eta_table[idx] - eta_table[idx 105bb8a0c61SJames Wright -1]); 106bb8a0c61SJames Wright 107bb8a0c61SJames Wright f = f_table[idx-1] + coeff*( f_table[idx] - f_table[idx-1] ); 108bb8a0c61SJames Wright fp = fp_table[idx-1] + coeff*( fp_table[idx] - fp_table[idx-1] ); 109bb8a0c61SJames Wright fpp = fpp_table[idx-1] + coeff*( fpp_table[idx] - fpp_table[idx-1] ); 110bb8a0c61SJames Wright } else { // eta outside bounds of eta_table 111bb8a0c61SJames Wright f = f_table[nprofs-1]; 112bb8a0c61SJames Wright fp = fp_table[nprofs-1]; 113bb8a0c61SJames Wright fpp = fpp_table[nprofs-1]; 114bb8a0c61SJames Wright eta = eta_table[nprofs-1]; 115bb8a0c61SJames Wright } 116bb8a0c61SJames Wright 117bb8a0c61SJames Wright *u = Uinf*fp; 118bb8a0c61SJames Wright *t12 = rho*nu*Uinf*fpp*sqrt(Uinf/(nu*(x0+x))); 119bb8a0c61SJames Wright *v = 0.5*sqrt(nu*Uinf/(x0+x))*(eta*fp - f); 120bb8a0c61SJames Wright } 121bb8a0c61SJames Wright 122bb8a0c61SJames Wright // ***************************************************************************** 123bb8a0c61SJames Wright // This QFunction sets a Blasius boundary layer for the initial condition 124bb8a0c61SJames Wright // ***************************************************************************** 125bb8a0c61SJames Wright CEED_QFUNCTION(ICsBlasius)(void *ctx, CeedInt Q, 126bb8a0c61SJames Wright const CeedScalar *const *in, CeedScalar *const *out) { 127bb8a0c61SJames Wright // Inputs 128bb8a0c61SJames Wright const CeedScalar (*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0]; 129bb8a0c61SJames Wright 130bb8a0c61SJames Wright // Outputs 131bb8a0c61SJames Wright CeedScalar (*q0)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 132bb8a0c61SJames Wright 133bb8a0c61SJames Wright const BlasiusContext context = (BlasiusContext)ctx; 134bb8a0c61SJames Wright const CeedScalar cv = context->newtonian_ctx.cv; 135bb8a0c61SJames Wright const CeedScalar cp = context->newtonian_ctx.cp; 136bb8a0c61SJames Wright const CeedScalar gamma = cp/cv; 137bb8a0c61SJames Wright const CeedScalar mu = context->newtonian_ctx.mu; 138bb8a0c61SJames Wright 139bb8a0c61SJames Wright const CeedScalar theta0 = context->theta0; 140bb8a0c61SJames Wright const CeedScalar P0 = context->P0; 141bb8a0c61SJames Wright const CeedScalar delta0 = context->delta0; 142bb8a0c61SJames Wright const CeedScalar Uinf = context->Uinf; 143*ef2c71fdSJames Wright const CeedScalar x_inflow = context->x_inflow; 144bb8a0c61SJames Wright 145bb8a0c61SJames Wright const CeedScalar e_internal = cv * theta0; 146bb8a0c61SJames Wright const CeedScalar rho = P0 / ((gamma - 1) * e_internal); 147bb8a0c61SJames Wright const CeedScalar x0 = Uinf*rho / (mu*25/ (delta0*delta0) ); 148bb8a0c61SJames Wright CeedScalar u, v, t12; 149bb8a0c61SJames Wright 150bb8a0c61SJames Wright // Quadrature Point Loop 151bb8a0c61SJames Wright CeedPragmaSIMD 152bb8a0c61SJames Wright for (CeedInt i=0; i<Q; i++) { 153bb8a0c61SJames Wright const CeedScalar x[] = {X[0][i], X[1][i], X[2][i]}; 154bb8a0c61SJames Wright 155*ef2c71fdSJames Wright BlasiusSolution(x[1], Uinf, x0, x[0] - x_inflow, rho, &u, &v, &t12, 156bb8a0c61SJames Wright &context->newtonian_ctx); 157bb8a0c61SJames Wright 158bb8a0c61SJames Wright q0[0][i] = rho; 159bb8a0c61SJames Wright q0[1][i] = u * rho; 160bb8a0c61SJames Wright q0[2][i] = v * rho; 161bb8a0c61SJames Wright q0[3][i] = 0.; 162bb8a0c61SJames Wright q0[4][i] = rho * e_internal + 0.5*(u*u + v*v)*rho; 163bb8a0c61SJames Wright } // End of Quadrature Point Loop 164bb8a0c61SJames Wright return 0; 165bb8a0c61SJames Wright } 166bb8a0c61SJames Wright 167bb8a0c61SJames Wright // ***************************************************************************** 168bb8a0c61SJames Wright CEED_QFUNCTION(Blasius_Inflow)(void *ctx, CeedInt Q, 169bb8a0c61SJames Wright const CeedScalar *const *in, 170bb8a0c61SJames Wright CeedScalar *const *out) { 171bb8a0c61SJames Wright // *INDENT-OFF* 172bb8a0c61SJames Wright // Inputs 173bb8a0c61SJames Wright const CeedScalar (*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0], 174bb8a0c61SJames Wright (*q_data_sur)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[1], 175bb8a0c61SJames Wright (*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[2]; 176bb8a0c61SJames Wright 177bb8a0c61SJames Wright // Outputs 178bb8a0c61SJames Wright CeedScalar (*v)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 179bb8a0c61SJames Wright // *INDENT-ON* 180bb8a0c61SJames Wright const BlasiusContext context = (BlasiusContext)ctx; 181bb8a0c61SJames Wright const bool implicit = context->implicit; 182bb8a0c61SJames Wright const CeedScalar mu = context->newtonian_ctx.mu; 183bb8a0c61SJames Wright const CeedScalar cv = context->newtonian_ctx.cv; 184bb8a0c61SJames Wright const CeedScalar cp = context->newtonian_ctx.cp; 185bb8a0c61SJames Wright const CeedScalar Rd = cp - cv; 1862acc7cbcSKenneth E. Jansen const CeedScalar gamma = cp/cv; 187bb8a0c61SJames Wright 188bb8a0c61SJames Wright const CeedScalar theta0 = context->theta0; 189bb8a0c61SJames Wright const CeedScalar P0 = context->P0; 190bb8a0c61SJames Wright const CeedScalar delta0 = context->delta0; 191bb8a0c61SJames Wright const CeedScalar Uinf = context->Uinf; 192*ef2c71fdSJames Wright const CeedScalar x_inflow = context->x_inflow; 1932acc7cbcSKenneth E. Jansen const bool weakT = context->weakT; 194bb8a0c61SJames Wright const CeedScalar rho_0 = P0 / (Rd * theta0); 195bb8a0c61SJames Wright const CeedScalar x0 = Uinf*rho_0 / (mu*25/ (delta0*delta0) ); 196bb8a0c61SJames Wright 197bb8a0c61SJames Wright CeedPragmaSIMD 198bb8a0c61SJames Wright // Quadrature Point Loop 199bb8a0c61SJames Wright for (CeedInt i=0; i<Q; i++) { 200bb8a0c61SJames Wright // Setup 201bb8a0c61SJames Wright // -- Interp-to-Interp q_data 202bb8a0c61SJames Wright // For explicit mode, the surface integral is on the RHS of ODE q_dot = f(q). 203bb8a0c61SJames Wright // For implicit mode, it gets pulled to the LHS of implicit ODE/DAE g(q_dot, q). 204bb8a0c61SJames Wright // We can effect this by swapping the sign on this weight 205bb8a0c61SJames Wright const CeedScalar wdetJb = (implicit ? -1. : 1.) * q_data_sur[0][i]; 206bb8a0c61SJames Wright 2072acc7cbcSKenneth E. Jansen // Calculate inflow values 208bb8a0c61SJames Wright const CeedScalar x[3] = {X[0][i], X[1][i], X[2][i]}; 209bb8a0c61SJames Wright CeedScalar velocity[3] = {0.}; 210bb8a0c61SJames Wright CeedScalar t12; 211*ef2c71fdSJames Wright BlasiusSolution(x[1], Uinf, x0, x[0] - x_inflow, rho_0, &velocity[0], 212*ef2c71fdSJames Wright &velocity[1], &t12, &context->newtonian_ctx); 213bb8a0c61SJames Wright 2142acc7cbcSKenneth E. Jansen // enabling user to choose between weak T and weak rho inflow 2152acc7cbcSKenneth E. Jansen CeedScalar rho,E_internal, P, E_kinetic; 2162acc7cbcSKenneth E. Jansen if (weakT) { 2172acc7cbcSKenneth E. Jansen // rho should be from the current solution 2182acc7cbcSKenneth E. Jansen rho = q[0][i]; 2192acc7cbcSKenneth E. Jansen // Temperature is being set weakly (theta0) and for constant cv this sets E_internal 2202acc7cbcSKenneth E. Jansen E_internal = rho * cv * theta0; 2212acc7cbcSKenneth E. Jansen // Find pressure using 2222acc7cbcSKenneth E. Jansen P=rho*Rd*theta0; // interior rho with exterior T 2232acc7cbcSKenneth E. Jansen E_kinetic = .5 * rho * (velocity[0]*velocity[0] + 224bb8a0c61SJames Wright velocity[1]*velocity[1] + 225bb8a0c61SJames Wright velocity[2]*velocity[2]); 2262acc7cbcSKenneth E. Jansen } else { 2272acc7cbcSKenneth E. Jansen // Fixing rho weakly on the inflow to a value consistent with theta0 and P0 2282acc7cbcSKenneth E. Jansen rho = rho_0; 2292acc7cbcSKenneth E. Jansen E_kinetic = .5 * rho * (velocity[0]*velocity[0] + 2302acc7cbcSKenneth E. Jansen velocity[1]*velocity[1] + 2312acc7cbcSKenneth E. Jansen velocity[2]*velocity[2]); 2322acc7cbcSKenneth E. Jansen E_internal = q[4][i] - E_kinetic; // uses set rho and u but E from solution 2332acc7cbcSKenneth E. Jansen P = E_internal * (gamma - 1.); 2342acc7cbcSKenneth E. Jansen } 2352acc7cbcSKenneth E. Jansen const CeedScalar E = E_internal + E_kinetic; 236bb8a0c61SJames Wright // ---- Normal vect 237bb8a0c61SJames Wright const CeedScalar norm[3] = {q_data_sur[1][i], 238bb8a0c61SJames Wright q_data_sur[2][i], 239bb8a0c61SJames Wright q_data_sur[3][i] 240bb8a0c61SJames Wright }; 241bb8a0c61SJames Wright 242bb8a0c61SJames Wright // The Physics 243bb8a0c61SJames Wright // Zero v so all future terms can safely sum into it 244493642f1SJames Wright for (CeedInt j=0; j<5; j++) v[j][i] = 0.; 245bb8a0c61SJames Wright 246bb8a0c61SJames Wright const CeedScalar u_normal = norm[0]*velocity[0] + 247bb8a0c61SJames Wright norm[1]*velocity[1] + 248bb8a0c61SJames Wright norm[2]*velocity[2]; 249bb8a0c61SJames Wright 250bb8a0c61SJames Wright // The Physics 251bb8a0c61SJames Wright // -- Density 252bb8a0c61SJames Wright v[0][i] -= wdetJb * rho * u_normal; // interior rho 253bb8a0c61SJames Wright 254bb8a0c61SJames Wright // -- Momentum 255493642f1SJames Wright for (CeedInt j=0; j<3; j++) 256bb8a0c61SJames Wright v[j+1][i] -= wdetJb * (rho * u_normal * velocity[j] + // interior rho 257bb8a0c61SJames Wright norm[j] * P); // mixed P 258bb8a0c61SJames Wright v[2][i] -= wdetJb * t12 ; 259bb8a0c61SJames Wright 260bb8a0c61SJames Wright // -- Total Energy Density 261bb8a0c61SJames Wright v[4][i] -= wdetJb * u_normal * (E + P); 262bb8a0c61SJames Wright v[4][i] -= wdetJb * t12 * velocity[1]; 263bb8a0c61SJames Wright 264bb8a0c61SJames Wright } // End Quadrature Point Loop 265bb8a0c61SJames Wright return 0; 266bb8a0c61SJames Wright } 267bb8a0c61SJames Wright 268bb8a0c61SJames Wright // ***************************************************************************** 269bb8a0c61SJames Wright CEED_QFUNCTION(Blasius_Outflow)(void *ctx, CeedInt Q, 270bb8a0c61SJames Wright const CeedScalar *const *in, 271bb8a0c61SJames Wright CeedScalar *const *out) { 272bb8a0c61SJames Wright // *INDENT-OFF* 273bb8a0c61SJames Wright // Inputs 274bb8a0c61SJames Wright const CeedScalar (*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0], 275bb8a0c61SJames Wright (*q_data_sur)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[1], 276bb8a0c61SJames Wright (*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[2]; 277bb8a0c61SJames Wright // Outputs 278bb8a0c61SJames Wright CeedScalar (*v)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 279bb8a0c61SJames Wright // *INDENT-ON* 280bb8a0c61SJames Wright 281bb8a0c61SJames Wright const BlasiusContext context = (BlasiusContext)ctx; 282bb8a0c61SJames Wright const bool implicit = context->implicit; 283bb8a0c61SJames Wright const CeedScalar mu = context->newtonian_ctx.mu; 284bb8a0c61SJames Wright const CeedScalar cv = context->newtonian_ctx.cv; 285bb8a0c61SJames Wright const CeedScalar cp = context->newtonian_ctx.cp; 286bb8a0c61SJames Wright const CeedScalar Rd = cp - cv; 287bb8a0c61SJames Wright 288bb8a0c61SJames Wright const CeedScalar theta0 = context->theta0; 289bb8a0c61SJames Wright const CeedScalar P0 = context->P0; 290bb8a0c61SJames Wright const CeedScalar rho_0 = P0 / (Rd*theta0); 291bb8a0c61SJames Wright const CeedScalar delta0 = context->delta0; 292bb8a0c61SJames Wright const CeedScalar Uinf = context->Uinf; 293bb8a0c61SJames Wright const CeedScalar x0 = Uinf*rho_0 / (mu*25/ (delta0*delta0) ); 294*ef2c71fdSJames Wright const CeedScalar x_inflow = context->x_inflow; 295bb8a0c61SJames Wright 296bb8a0c61SJames Wright CeedPragmaSIMD 297bb8a0c61SJames Wright // Quadrature Point Loop 298bb8a0c61SJames Wright for (CeedInt i=0; i<Q; i++) { 299bb8a0c61SJames Wright // Setup 300bb8a0c61SJames Wright // -- Interp in 301bb8a0c61SJames Wright const CeedScalar rho = q[0][i]; 302bb8a0c61SJames Wright const CeedScalar u[3] = {q[1][i] / rho, 303bb8a0c61SJames Wright q[2][i] / rho, 304bb8a0c61SJames Wright q[3][i] / rho 305bb8a0c61SJames Wright }; 306bb8a0c61SJames Wright const CeedScalar E = q[4][i]; 307bb8a0c61SJames Wright 308bb8a0c61SJames Wright // -- Interp-to-Interp q_data 309bb8a0c61SJames Wright // For explicit mode, the surface integral is on the RHS of ODE q_dot = f(q). 310bb8a0c61SJames Wright // For implicit mode, it gets pulled to the LHS of implicit ODE/DAE g(q_dot, q). 311bb8a0c61SJames Wright // We can effect this by swapping the sign on this weight 312bb8a0c61SJames Wright const CeedScalar wdetJb = (implicit ? -1. : 1.) * q_data_sur[0][i]; 313bb8a0c61SJames Wright 314bb8a0c61SJames Wright // ---- Normal vect 315bb8a0c61SJames Wright const CeedScalar norm[3] = {q_data_sur[1][i], 316bb8a0c61SJames Wright q_data_sur[2][i], 317bb8a0c61SJames Wright q_data_sur[3][i] 318bb8a0c61SJames Wright }; 319bb8a0c61SJames Wright 320bb8a0c61SJames Wright // The Physics 321bb8a0c61SJames Wright // Zero v so all future terms can safely sum into it 322493642f1SJames Wright for (CeedInt j=0; j<5; j++) v[j][i] = 0.; 323bb8a0c61SJames Wright 324bb8a0c61SJames Wright // Implementing outflow condition 325bb8a0c61SJames Wright const CeedScalar P = P0; // pressure 326bb8a0c61SJames Wright const CeedScalar u_normal = norm[0]*u[0] + norm[1]*u[1] + 327bb8a0c61SJames Wright norm[2]*u[2]; // Normal velocity 328bb8a0c61SJames Wright 329bb8a0c61SJames Wright // Calculate prescribed outflow traction values 330bb8a0c61SJames Wright const CeedScalar x[3] = {X[0][i], X[1][i], X[2][i]}; 331bb8a0c61SJames Wright CeedScalar velocity[3] = {0.}; 332bb8a0c61SJames Wright CeedScalar t12; 333*ef2c71fdSJames Wright BlasiusSolution(x[1], Uinf, x0, x[0] - x_inflow, rho_0, &velocity[0], 334*ef2c71fdSJames Wright &velocity[1], &t12, &context->newtonian_ctx); 335bb8a0c61SJames Wright // The Physics 336bb8a0c61SJames Wright // -- Density 337bb8a0c61SJames Wright v[0][i] -= wdetJb * rho * u_normal; 338bb8a0c61SJames Wright 339bb8a0c61SJames Wright // -- Momentum 340493642f1SJames Wright for (CeedInt j=0; j<3; j++) 341bb8a0c61SJames Wright v[j+1][i] -= wdetJb *(rho * u_normal * u[j] + norm[j] * P); 342bb8a0c61SJames Wright v[2][i] += wdetJb * t12 ; 343bb8a0c61SJames Wright 344bb8a0c61SJames Wright // -- Total Energy Density 345bb8a0c61SJames Wright v[4][i] -= wdetJb * u_normal * (E + P); 346bb8a0c61SJames Wright v[4][i] += wdetJb * t12 * velocity[1]; 347bb8a0c61SJames Wright 348bb8a0c61SJames Wright } // End Quadrature Point Loop 349bb8a0c61SJames Wright return 0; 350bb8a0c61SJames Wright } 351bb8a0c61SJames Wright #endif // blasius_h 352