xref: /honee/qfunctions/advection.h (revision c58dce4f72dc45b1921f9f8c30a01590ba75e826)
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.
3a515125bSLeila Ghaffari //
4727da7e7SJeremy L Thompson // SPDX-License-Identifier: BSD-2-Clause
5a515125bSLeila Ghaffari //
6727da7e7SJeremy L Thompson // This file is part of CEED:  http://github.com/ceed
7a515125bSLeila Ghaffari 
8a515125bSLeila Ghaffari /// @file
9a515125bSLeila Ghaffari /// Advection initial condition and operator for Navier-Stokes example using PETSc
10a515125bSLeila Ghaffari 
11a515125bSLeila Ghaffari #ifndef advection_h
12a515125bSLeila Ghaffari #define advection_h
13a515125bSLeila Ghaffari 
14a515125bSLeila Ghaffari #include <math.h>
15a515125bSLeila Ghaffari 
16a515125bSLeila Ghaffari typedef struct SetupContext_ *SetupContext;
17a515125bSLeila Ghaffari struct SetupContext_ {
18a515125bSLeila Ghaffari   CeedScalar rc;
19a515125bSLeila Ghaffari   CeedScalar lx;
20a515125bSLeila Ghaffari   CeedScalar ly;
21a515125bSLeila Ghaffari   CeedScalar lz;
22a515125bSLeila Ghaffari   CeedScalar wind[3];
23a515125bSLeila Ghaffari   CeedScalar time;
24a515125bSLeila Ghaffari   int wind_type;              // See WindType: 0=ROTATION, 1=TRANSLATION
25a515125bSLeila Ghaffari   int bubble_type;            // See BubbleType: 0=SPHERE, 1=CYLINDER
26a515125bSLeila Ghaffari   int bubble_continuity_type; // See BubbleContinuityType: 0=SMOOTH, 1=BACK_SHARP 2=THICK
27a515125bSLeila Ghaffari };
28a515125bSLeila Ghaffari 
29a515125bSLeila Ghaffari typedef struct AdvectionContext_ *AdvectionContext;
30a515125bSLeila Ghaffari struct AdvectionContext_ {
31a515125bSLeila Ghaffari   CeedScalar CtauS;
32a515125bSLeila Ghaffari   CeedScalar strong_form;
33a515125bSLeila Ghaffari   CeedScalar E_wind;
34a515125bSLeila Ghaffari   bool implicit;
35a515125bSLeila Ghaffari   int stabilization; // See StabilizationType: 0=none, 1=SU, 2=SUPG
36a515125bSLeila Ghaffari };
37a515125bSLeila Ghaffari 
38*c58dce4fSJed Brown CEED_QFUNCTION_HELPER CeedScalar Square(CeedScalar x) { return x*x; }
39*c58dce4fSJed Brown 
40a515125bSLeila Ghaffari // *****************************************************************************
41a515125bSLeila Ghaffari // This QFunction sets the initial conditions and the boundary conditions
42a515125bSLeila Ghaffari //   for two test cases: ROTATION and TRANSLATION
43a515125bSLeila Ghaffari //
44a515125bSLeila Ghaffari // -- ROTATION (default)
45a515125bSLeila Ghaffari //      Initial Conditions:
46a515125bSLeila Ghaffari //        Mass Density:
47a515125bSLeila Ghaffari //          Constant mass density of 1.0
48a515125bSLeila Ghaffari //        Momentum Density:
49a515125bSLeila Ghaffari //          Rotational field in x,y
50a515125bSLeila Ghaffari //        Energy Density:
51a515125bSLeila Ghaffari //          Maximum of 1. x0 decreasing linearly to 0. as radial distance
52a515125bSLeila Ghaffari //            increases to (1.-r/rc), then 0. everywhere else
53a515125bSLeila Ghaffari //
54a515125bSLeila Ghaffari //      Boundary Conditions:
55a515125bSLeila Ghaffari //        Mass Density:
56a515125bSLeila Ghaffari //          0.0 flux
57a515125bSLeila Ghaffari //        Momentum Density:
58a515125bSLeila Ghaffari //          0.0
59a515125bSLeila Ghaffari //        Energy Density:
60a515125bSLeila Ghaffari //          0.0 flux
61a515125bSLeila Ghaffari //
62a515125bSLeila Ghaffari // -- TRANSLATION
63a515125bSLeila Ghaffari //      Initial Conditions:
64a515125bSLeila Ghaffari //        Mass Density:
65a515125bSLeila Ghaffari //          Constant mass density of 1.0
66a515125bSLeila Ghaffari //        Momentum Density:
67a515125bSLeila Ghaffari //           Constant rectilinear field in x,y
68a515125bSLeila Ghaffari //        Energy Density:
69a515125bSLeila Ghaffari //          Maximum of 1. x0 decreasing linearly to 0. as radial distance
70a515125bSLeila Ghaffari //            increases to (1.-r/rc), then 0. everywhere else
71a515125bSLeila Ghaffari //
72a515125bSLeila Ghaffari //      Boundary Conditions:
73a515125bSLeila Ghaffari //        Mass Density:
74a515125bSLeila Ghaffari //          0.0 flux
75a515125bSLeila Ghaffari //        Momentum Density:
76a515125bSLeila Ghaffari //          0.0
77a515125bSLeila Ghaffari //        Energy Density:
78a515125bSLeila Ghaffari //          Inflow BCs:
79a515125bSLeila Ghaffari //            E = E_wind
80a515125bSLeila Ghaffari //          Outflow BCs:
81a515125bSLeila Ghaffari //            E = E(boundary)
82a515125bSLeila Ghaffari //          Both In/Outflow BCs for E are applied weakly in the
83a515125bSLeila Ghaffari //            QFunction "Advection_Sur"
84a515125bSLeila Ghaffari //
85a515125bSLeila Ghaffari // *****************************************************************************
86a515125bSLeila Ghaffari 
87a515125bSLeila Ghaffari // *****************************************************************************
88a515125bSLeila Ghaffari // This helper function provides support for the exact, time-dependent solution
89a515125bSLeila Ghaffari //   (currently not implemented) and IC formulation for 3D advection
90a515125bSLeila Ghaffari // *****************************************************************************
91a515125bSLeila Ghaffari CEED_QFUNCTION_HELPER int Exact_Advection(CeedInt dim, CeedScalar time,
92a515125bSLeila Ghaffari     const CeedScalar X[], CeedInt Nf, CeedScalar q[], void *ctx) {
93a515125bSLeila Ghaffari   const SetupContext context = (SetupContext)ctx;
94a515125bSLeila Ghaffari   const CeedScalar rc    = context->rc;
95a515125bSLeila Ghaffari   const CeedScalar lx    = context->lx;
96a515125bSLeila Ghaffari   const CeedScalar ly    = context->ly;
97a515125bSLeila Ghaffari   const CeedScalar lz    = context->lz;
98a515125bSLeila Ghaffari   const CeedScalar *wind = context->wind;
99a515125bSLeila Ghaffari 
100a515125bSLeila Ghaffari   // Setup
101a515125bSLeila Ghaffari   const CeedScalar x0[3] = {0.25*lx, 0.5*ly, 0.5*lz};
102a515125bSLeila Ghaffari   const CeedScalar center[3] = {0.5*lx, 0.5*ly, 0.5*lz};
103a515125bSLeila Ghaffari 
104a515125bSLeila Ghaffari   // -- Coordinates
105a515125bSLeila Ghaffari   const CeedScalar x = X[0];
106a515125bSLeila Ghaffari   const CeedScalar y = X[1];
107a515125bSLeila Ghaffari   const CeedScalar z = X[2];
108a515125bSLeila Ghaffari 
109a515125bSLeila Ghaffari   // -- Energy
110a515125bSLeila Ghaffari   CeedScalar r = 0.;
111a515125bSLeila Ghaffari   switch (context->bubble_type) {
112a515125bSLeila Ghaffari   //  original sphere
113a515125bSLeila Ghaffari   case 0: { // (dim=3)
114*c58dce4fSJed Brown     r = sqrt(Square(x - x0[0]) +
115*c58dce4fSJed Brown              Square(y - x0[1]) +
116*c58dce4fSJed Brown              Square(z - x0[2]));
117a515125bSLeila Ghaffari   } break;
118a515125bSLeila Ghaffari   // cylinder (needs periodicity to work properly)
119a515125bSLeila Ghaffari   case 1: { // (dim=2)
120*c58dce4fSJed Brown     r = sqrt(Square(x - x0[0]) + Square(y - x0[1]));
121a515125bSLeila Ghaffari   } break;
122a515125bSLeila Ghaffari   }
123a515125bSLeila Ghaffari 
124a515125bSLeila Ghaffari   // Initial Conditions
125a515125bSLeila Ghaffari   switch (context->wind_type) {
126a515125bSLeila Ghaffari   case 0:    // Rotation
127a515125bSLeila Ghaffari     q[0] = 1.;
128a515125bSLeila Ghaffari     q[1] = -(y - center[1]);
129a515125bSLeila Ghaffari     q[2] =  (x - center[0]);
130a515125bSLeila Ghaffari     q[3] = 0;
131a515125bSLeila Ghaffari     break;
132a515125bSLeila Ghaffari   case 1:    // Translation
133a515125bSLeila Ghaffari     q[0] = 1.;
134a515125bSLeila Ghaffari     q[1] = wind[0];
135a515125bSLeila Ghaffari     q[2] = wind[1];
136a515125bSLeila Ghaffari     q[3] = wind[2];
137a515125bSLeila Ghaffari     break;
138a515125bSLeila Ghaffari   }
139a515125bSLeila Ghaffari 
140a515125bSLeila Ghaffari   switch (context->bubble_continuity_type) {
141a515125bSLeila Ghaffari   // original continuous, smooth shape
142a515125bSLeila Ghaffari   case 0: {
143a515125bSLeila Ghaffari     q[4] = r <= rc ? (1.-r/rc) : 0.;
144a515125bSLeila Ghaffari   } break;
145a515125bSLeila Ghaffari   // discontinuous, sharp back half shape
146a515125bSLeila Ghaffari   case 1: {
147a515125bSLeila Ghaffari     q[4] = ((r <= rc) && (y<center[1])) ? (1.-r/rc) : 0.;
148a515125bSLeila Ghaffari   } break;
149a515125bSLeila Ghaffari   // attempt to define a finite thickness that will get resolved under grid refinement
150a515125bSLeila Ghaffari   case 2: {
151a515125bSLeila Ghaffari     q[4] = ((r <= rc)
152a515125bSLeila Ghaffari             && (y<center[1])) ? (1.-r/rc)*fmin(1.0,(center[1]-y)/1.25) : 0.;
153a515125bSLeila Ghaffari   } break;
154a515125bSLeila Ghaffari   }
155a515125bSLeila Ghaffari   return 0;
156a515125bSLeila Ghaffari }
157a515125bSLeila Ghaffari 
158a515125bSLeila Ghaffari // *****************************************************************************
159a515125bSLeila Ghaffari // This QFunction sets the initial conditions for 3D advection
160a515125bSLeila Ghaffari // *****************************************************************************
161a515125bSLeila Ghaffari CEED_QFUNCTION(ICsAdvection)(void *ctx, CeedInt Q,
162a515125bSLeila Ghaffari                              const CeedScalar *const *in,
163a515125bSLeila Ghaffari                              CeedScalar *const *out) {
164a515125bSLeila Ghaffari   // Inputs
165a515125bSLeila Ghaffari   const CeedScalar (*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
166a515125bSLeila Ghaffari   // Outputs
167a515125bSLeila Ghaffari   CeedScalar (*q0)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0];
168a515125bSLeila Ghaffari 
169a515125bSLeila Ghaffari   CeedPragmaSIMD
170a515125bSLeila Ghaffari   // Quadrature Point Loop
171a515125bSLeila Ghaffari   for (CeedInt i=0; i<Q; i++) {
172a515125bSLeila Ghaffari     const CeedScalar x[] = {X[0][i], X[1][i], X[2][i]};
173139613f2SLeila Ghaffari     CeedScalar q[5] = {0.};
174a515125bSLeila Ghaffari 
175a515125bSLeila Ghaffari     Exact_Advection(3, 0., x, 5, q, ctx);
176a515125bSLeila Ghaffari     for (CeedInt j=0; j<5; j++) q0[j][i] = q[j];
177a515125bSLeila Ghaffari   } // End of Quadrature Point Loop
178a515125bSLeila Ghaffari 
179a515125bSLeila Ghaffari   // Return
180a515125bSLeila Ghaffari   return 0;
181a515125bSLeila Ghaffari }
182a515125bSLeila Ghaffari 
183a515125bSLeila Ghaffari // *****************************************************************************
184a515125bSLeila Ghaffari // This QFunction implements the following formulation of the advection equation
185a515125bSLeila Ghaffari //
186a515125bSLeila Ghaffari // This is 3D advection given in two formulations based upon the weak form.
187a515125bSLeila Ghaffari //
188a515125bSLeila Ghaffari // State Variables: q = ( rho, U1, U2, U3, E )
189a515125bSLeila Ghaffari //   rho - Mass Density
190a515125bSLeila Ghaffari //   Ui  - Momentum Density    ,  Ui = rho ui
191a515125bSLeila Ghaffari //   E   - Total Energy Density
192a515125bSLeila Ghaffari //
193a515125bSLeila Ghaffari // Advection Equation:
194a515125bSLeila Ghaffari //   dE/dt + div( E u ) = 0
195a515125bSLeila Ghaffari //
196a515125bSLeila Ghaffari // *****************************************************************************
197a515125bSLeila Ghaffari CEED_QFUNCTION(Advection)(void *ctx, CeedInt Q,
198a515125bSLeila Ghaffari                           const CeedScalar *const *in, CeedScalar *const *out) {
199a515125bSLeila Ghaffari   // Inputs
200a515125bSLeila Ghaffari   // *INDENT-OFF*
201a515125bSLeila Ghaffari   const CeedScalar (*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0],
202a515125bSLeila Ghaffari                    (*dq)[5][CEED_Q_VLA] = (const CeedScalar(*)[5][CEED_Q_VLA])in[1],
203a515125bSLeila Ghaffari                    (*q_data)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[2];
204a515125bSLeila Ghaffari 
205a515125bSLeila Ghaffari   // Outputs
206a515125bSLeila Ghaffari   CeedScalar (*v)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0],
207a515125bSLeila Ghaffari              (*dv)[5][CEED_Q_VLA] = (CeedScalar(*)[5][CEED_Q_VLA])out[1];
208a515125bSLeila Ghaffari   // *INDENT-ON*
209a515125bSLeila Ghaffari 
210a515125bSLeila Ghaffari   // Context
211a515125bSLeila Ghaffari   AdvectionContext context = (AdvectionContext)ctx;
212a515125bSLeila Ghaffari   const CeedScalar CtauS       = context->CtauS;
213a515125bSLeila Ghaffari   const CeedScalar strong_form = context->strong_form;
214a515125bSLeila Ghaffari 
215a515125bSLeila Ghaffari   CeedPragmaSIMD
216a515125bSLeila Ghaffari   // Quadrature Point Loop
217a515125bSLeila Ghaffari   for (CeedInt i=0; i<Q; i++) {
218a515125bSLeila Ghaffari     // Setup
219a515125bSLeila Ghaffari     // -- Interp in
220a515125bSLeila Ghaffari     const CeedScalar rho        =    q[0][i];
221a515125bSLeila Ghaffari     const CeedScalar u[3]       =   {q[1][i] / rho,
222a515125bSLeila Ghaffari                                      q[2][i] / rho,
223a515125bSLeila Ghaffari                                      q[3][i] / rho
224a515125bSLeila Ghaffari                                     };
225a515125bSLeila Ghaffari     const CeedScalar E          =    q[4][i];
226a515125bSLeila Ghaffari     // -- Grad in
227a515125bSLeila Ghaffari     const CeedScalar drho[3]    =   {dq[0][0][i],
228a515125bSLeila Ghaffari                                      dq[1][0][i],
229a515125bSLeila Ghaffari                                      dq[2][0][i]
230a515125bSLeila Ghaffari                                     };
231a515125bSLeila Ghaffari     // *INDENT-OFF*
232a515125bSLeila Ghaffari     const CeedScalar du[3][3]   = {{(dq[0][1][i] - drho[0]*u[0]) / rho,
233a515125bSLeila Ghaffari                                     (dq[1][1][i] - drho[1]*u[0]) / rho,
234a515125bSLeila Ghaffari                                     (dq[2][1][i] - drho[2]*u[0]) / rho},
235a515125bSLeila Ghaffari                                    {(dq[0][2][i] - drho[0]*u[1]) / rho,
236a515125bSLeila Ghaffari                                     (dq[1][2][i] - drho[1]*u[1]) / rho,
237a515125bSLeila Ghaffari                                     (dq[2][2][i] - drho[2]*u[1]) / rho},
238a515125bSLeila Ghaffari                                    {(dq[0][3][i] - drho[0]*u[2]) / rho,
239a515125bSLeila Ghaffari                                     (dq[1][3][i] - drho[1]*u[2]) / rho,
240a515125bSLeila Ghaffari                                     (dq[2][3][i] - drho[2]*u[2]) / rho}
241a515125bSLeila Ghaffari                                   };
242a515125bSLeila Ghaffari     // *INDENT-ON*
243a515125bSLeila Ghaffari     const CeedScalar dE[3]      =   {dq[0][4][i],
244a515125bSLeila Ghaffari                                      dq[1][4][i],
245a515125bSLeila Ghaffari                                      dq[2][4][i]
246a515125bSLeila Ghaffari                                     };
247a515125bSLeila Ghaffari     // -- Interp-to-Interp q_data
248a515125bSLeila Ghaffari     const CeedScalar wdetJ      =    q_data[0][i];
249a515125bSLeila Ghaffari     // -- Interp-to-Grad q_data
250a515125bSLeila Ghaffari     // ---- Inverse of change of coordinate matrix: X_i,j
251a515125bSLeila Ghaffari     // *INDENT-OFF*
252a515125bSLeila Ghaffari     const CeedScalar dXdx[3][3] =  {{q_data[1][i],
253a515125bSLeila Ghaffari                                      q_data[2][i],
254a515125bSLeila Ghaffari                                      q_data[3][i]},
255a515125bSLeila Ghaffari                                     {q_data[4][i],
256a515125bSLeila Ghaffari                                      q_data[5][i],
257a515125bSLeila Ghaffari                                      q_data[6][i]},
258a515125bSLeila Ghaffari                                     {q_data[7][i],
259a515125bSLeila Ghaffari                                      q_data[8][i],
260a515125bSLeila Ghaffari                                      q_data[9][i]}
261a515125bSLeila Ghaffari                                    };
262a515125bSLeila Ghaffari     // *INDENT-ON*
263a515125bSLeila Ghaffari     // The Physics
264a515125bSLeila Ghaffari     // Note with the order that du was filled and the order that dXdx was filled
265a515125bSLeila Ghaffari     //   du[j][k]= du_j / dX_K    (note cap K to be clear this is u_{j,xi_k})
266a515125bSLeila Ghaffari     //   dXdx[k][j] = dX_K / dx_j
267a515125bSLeila Ghaffari     //   X_K=Kth reference element coordinate (note cap X and K instead of xi_k}
268a515125bSLeila Ghaffari     //   x_j and u_j are jth  physical position and velocity components
269a515125bSLeila Ghaffari 
270a515125bSLeila Ghaffari     // No Change in density or momentum
271a515125bSLeila Ghaffari     for (CeedInt f=0; f<4; f++) {
272a515125bSLeila Ghaffari       for (CeedInt j=0; j<3; j++)
273a515125bSLeila Ghaffari         dv[j][f][i] = 0;
274a515125bSLeila Ghaffari       v[f][i] = 0;
275a515125bSLeila Ghaffari     }
276a515125bSLeila Ghaffari 
277a515125bSLeila Ghaffari     // -- Total Energy
278a515125bSLeila Ghaffari     // Evaluate the strong form using div(E u) = u . grad(E) + E div(u)
279a515125bSLeila Ghaffari     // or in index notation: (u_j E)_{,j} = u_j E_j + E u_{j,j}
280a515125bSLeila Ghaffari     CeedScalar div_u = 0, u_dot_grad_E = 0;
281a515125bSLeila Ghaffari     for (CeedInt j=0; j<3; j++) {
282a515125bSLeila Ghaffari       CeedScalar dEdx_j = 0;
283a515125bSLeila Ghaffari       for (CeedInt k=0; k<3; k++) {
284a515125bSLeila Ghaffari         div_u += du[j][k] * dXdx[k][j]; // u_{j,j} = u_{j,K} X_{K,j}
285a515125bSLeila Ghaffari         dEdx_j += dE[k] * dXdx[k][j];
286a515125bSLeila Ghaffari       }
287a515125bSLeila Ghaffari       u_dot_grad_E += u[j] * dEdx_j;
288a515125bSLeila Ghaffari     }
289a515125bSLeila Ghaffari     CeedScalar strong_conv = E*div_u + u_dot_grad_E;
290a515125bSLeila Ghaffari 
291a515125bSLeila Ghaffari     // Weak Galerkin convection term: dv \cdot (E u)
292a515125bSLeila Ghaffari     for (CeedInt j=0; j<3; j++)
293a515125bSLeila Ghaffari       dv[j][4][i] = (1 - strong_form) * wdetJ * E * (u[0]*dXdx[j][0] +
294a515125bSLeila Ghaffari                     u[1]*dXdx[j][1] +
295a515125bSLeila Ghaffari                     u[2]*dXdx[j][2]);
296a515125bSLeila Ghaffari     v[4][i] = 0;
297a515125bSLeila Ghaffari 
298a515125bSLeila Ghaffari     // Strong Galerkin convection term: - v div(E u)
299a515125bSLeila Ghaffari     v[4][i] = -strong_form * wdetJ * strong_conv;
300a515125bSLeila Ghaffari 
301a515125bSLeila Ghaffari     // Stabilization requires a measure of element transit time in the velocity
302a515125bSLeila Ghaffari     //   field u.
303a515125bSLeila Ghaffari     CeedScalar uX[3];
304a515125bSLeila Ghaffari     for (CeedInt j=0; j<3;
305a515125bSLeila Ghaffari          j++) uX[j] = dXdx[j][0]*u[0] + dXdx[j][1]*u[1] + dXdx[j][2]*u[2];
306a515125bSLeila Ghaffari     const CeedScalar TauS = CtauS / sqrt(uX[0]*uX[0] + uX[1]*uX[1] + uX[2]*uX[2]);
307a515125bSLeila Ghaffari     for (CeedInt j=0; j<3; j++)
308a515125bSLeila Ghaffari       dv[j][4][i] -= wdetJ * TauS * strong_conv * uX[j];
309a515125bSLeila Ghaffari   } // End Quadrature Point Loop
310a515125bSLeila Ghaffari 
311a515125bSLeila Ghaffari   return 0;
312a515125bSLeila Ghaffari }
313a515125bSLeila Ghaffari 
314a515125bSLeila Ghaffari // *****************************************************************************
315a515125bSLeila Ghaffari // This QFunction implements 3D (mentioned above) with
316a515125bSLeila Ghaffari //   implicit time stepping method
317a515125bSLeila Ghaffari //
318a515125bSLeila Ghaffari // *****************************************************************************
319a515125bSLeila Ghaffari CEED_QFUNCTION(IFunction_Advection)(void *ctx, CeedInt Q,
320a515125bSLeila Ghaffari                                     const CeedScalar *const *in,
321a515125bSLeila Ghaffari                                     CeedScalar *const *out) {
322a515125bSLeila Ghaffari   // *INDENT-OFF*
323a515125bSLeila Ghaffari   // Inputs
324a515125bSLeila Ghaffari   const CeedScalar (*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0],
325a515125bSLeila Ghaffari                    (*dq)[5][CEED_Q_VLA] = (const CeedScalar(*)[5][CEED_Q_VLA])in[1],
326a515125bSLeila Ghaffari                    (*q_dot)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[2],
327a515125bSLeila Ghaffari                    (*q_data)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[3];
328a515125bSLeila Ghaffari   // Outputs
329a515125bSLeila Ghaffari   CeedScalar (*v)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0],
330a515125bSLeila Ghaffari              (*dv)[5][CEED_Q_VLA] = (CeedScalar(*)[5][CEED_Q_VLA])out[1];
331a515125bSLeila Ghaffari   // *INDENT-ON*
332a515125bSLeila Ghaffari   AdvectionContext context = (AdvectionContext)ctx;
333a515125bSLeila Ghaffari   const CeedScalar CtauS       = context->CtauS;
334a515125bSLeila Ghaffari   const CeedScalar strong_form = context->strong_form;
335a515125bSLeila Ghaffari 
336a515125bSLeila Ghaffari   CeedPragmaSIMD
337a515125bSLeila Ghaffari   // Quadrature Point Loop
338a515125bSLeila Ghaffari   for (CeedInt i=0; i<Q; i++) {
339a515125bSLeila Ghaffari     // Setup
340a515125bSLeila Ghaffari     // -- Interp in
341a515125bSLeila Ghaffari     const CeedScalar rho        =    q[0][i];
342a515125bSLeila Ghaffari     const CeedScalar u[3]       =   {q[1][i] / rho,
343a515125bSLeila Ghaffari                                      q[2][i] / rho,
344a515125bSLeila Ghaffari                                      q[3][i] / rho
345a515125bSLeila Ghaffari                                     };
346a515125bSLeila Ghaffari     const CeedScalar E          =    q[4][i];
347a515125bSLeila Ghaffari     // -- Grad in
348a515125bSLeila Ghaffari     const CeedScalar drho[3]    =   {dq[0][0][i],
349a515125bSLeila Ghaffari                                      dq[1][0][i],
350a515125bSLeila Ghaffari                                      dq[2][0][i]
351a515125bSLeila Ghaffari                                     };
352a515125bSLeila Ghaffari     // *INDENT-OFF*
353a515125bSLeila Ghaffari     const CeedScalar du[3][3]   = {{(dq[0][1][i] - drho[0]*u[0]) / rho,
354a515125bSLeila Ghaffari                                     (dq[1][1][i] - drho[1]*u[0]) / rho,
355a515125bSLeila Ghaffari                                     (dq[2][1][i] - drho[2]*u[0]) / rho},
356a515125bSLeila Ghaffari                                    {(dq[0][2][i] - drho[0]*u[1]) / rho,
357a515125bSLeila Ghaffari                                     (dq[1][2][i] - drho[1]*u[1]) / rho,
358a515125bSLeila Ghaffari                                     (dq[2][2][i] - drho[2]*u[1]) / rho},
359a515125bSLeila Ghaffari                                    {(dq[0][3][i] - drho[0]*u[2]) / rho,
360a515125bSLeila Ghaffari                                     (dq[1][3][i] - drho[1]*u[2]) / rho,
361a515125bSLeila Ghaffari                                     (dq[2][3][i] - drho[2]*u[2]) / rho}
362a515125bSLeila Ghaffari                                   };
363a515125bSLeila Ghaffari     // *INDENT-ON*
364a515125bSLeila Ghaffari     const CeedScalar dE[3]      =   {dq[0][4][i],
365a515125bSLeila Ghaffari                                      dq[1][4][i],
366a515125bSLeila Ghaffari                                      dq[2][4][i]
367a515125bSLeila Ghaffari                                     };
368a515125bSLeila Ghaffari     // -- Interp-to-Interp q_data
369a515125bSLeila Ghaffari     const CeedScalar wdetJ      =    q_data[0][i];
370a515125bSLeila Ghaffari     // -- Interp-to-Grad q_data
371a515125bSLeila Ghaffari     // ---- Inverse of change of coordinate matrix: X_i,j
372a515125bSLeila Ghaffari     // *INDENT-OFF*
373a515125bSLeila Ghaffari     const CeedScalar dXdx[3][3] =  {{q_data[1][i],
374a515125bSLeila Ghaffari                                      q_data[2][i],
375a515125bSLeila Ghaffari                                      q_data[3][i]},
376a515125bSLeila Ghaffari                                     {q_data[4][i],
377a515125bSLeila Ghaffari                                      q_data[5][i],
378a515125bSLeila Ghaffari                                      q_data[6][i]},
379a515125bSLeila Ghaffari                                     {q_data[7][i],
380a515125bSLeila Ghaffari                                      q_data[8][i],
381a515125bSLeila Ghaffari                                      q_data[9][i]}
382a515125bSLeila Ghaffari                                    };
383a515125bSLeila Ghaffari     // *INDENT-ON*
384a515125bSLeila Ghaffari     // The Physics
385a515125bSLeila Ghaffari     // Note with the order that du was filled and the order that dXdx was filled
386a515125bSLeila Ghaffari     //   du[j][k]= du_j / dX_K    (note cap K to be clear this is u_{j,xi_k} )
387a515125bSLeila Ghaffari     //   dXdx[k][j] = dX_K / dx_j
388a515125bSLeila Ghaffari     //   X_K=Kth reference element coordinate (note cap X and K instead of xi_k}
389a515125bSLeila Ghaffari     //   x_j and u_j are jth  physical position and velocity components
390a515125bSLeila Ghaffari 
391a515125bSLeila Ghaffari     // No Change in density or momentum
392a515125bSLeila Ghaffari     for (CeedInt f=0; f<4; f++) {
393a515125bSLeila Ghaffari       for (CeedInt j=0; j<3; j++)
394a515125bSLeila Ghaffari         dv[j][f][i] = 0;
395a515125bSLeila Ghaffari       v[f][i] = wdetJ * q_dot[f][i]; //K Mass/transient term
396a515125bSLeila Ghaffari     }
397a515125bSLeila Ghaffari 
398a515125bSLeila Ghaffari     // -- Total Energy
399a515125bSLeila Ghaffari     // Evaluate the strong form using div(E u) = u . grad(E) + E div(u)
400a515125bSLeila Ghaffari     //   or in index notation: (u_j E)_{,j} = u_j E_j + E u_{j,j}
401a515125bSLeila Ghaffari     CeedScalar div_u = 0, u_dot_grad_E = 0;
402a515125bSLeila Ghaffari     for (CeedInt j=0; j<3; j++) {
403a515125bSLeila Ghaffari       CeedScalar dEdx_j = 0;
404a515125bSLeila Ghaffari       for (CeedInt k=0; k<3; k++) {
405a515125bSLeila Ghaffari         div_u += du[j][k] * dXdx[k][j]; // u_{j,j} = u_{j,K} X_{K,j}
406a515125bSLeila Ghaffari         dEdx_j += dE[k] * dXdx[k][j];
407a515125bSLeila Ghaffari       }
408a515125bSLeila Ghaffari       u_dot_grad_E += u[j] * dEdx_j;
409a515125bSLeila Ghaffari     }
410a515125bSLeila Ghaffari     CeedScalar strong_conv = E*div_u + u_dot_grad_E;
411a515125bSLeila Ghaffari     CeedScalar strong_res = q_dot[4][i] + strong_conv;
412a515125bSLeila Ghaffari 
413a515125bSLeila Ghaffari     v[4][i] = wdetJ * q_dot[4][i]; // transient part (ALWAYS)
414a515125bSLeila Ghaffari 
415a515125bSLeila Ghaffari     // Weak Galerkin convection term: -dv \cdot (E u)
416a515125bSLeila Ghaffari     for (CeedInt j=0; j<3; j++)
417a515125bSLeila Ghaffari       dv[j][4][i] = -wdetJ * (1 - strong_form) * E * (u[0]*dXdx[j][0] +
418a515125bSLeila Ghaffari                     u[1]*dXdx[j][1] +
419a515125bSLeila Ghaffari                     u[2]*dXdx[j][2]);
420a515125bSLeila Ghaffari 
421a515125bSLeila Ghaffari     // Strong Galerkin convection term: v div(E u)
422a515125bSLeila Ghaffari     v[4][i] += wdetJ * strong_form * strong_conv;
423a515125bSLeila Ghaffari 
424a515125bSLeila Ghaffari     // Stabilization requires a measure of element transit time in the velocity
425a515125bSLeila Ghaffari     //   field u.
426a515125bSLeila Ghaffari     CeedScalar uX[3];
427a515125bSLeila Ghaffari     for (CeedInt j=0; j<3;
428a515125bSLeila Ghaffari          j++) uX[j] = dXdx[j][0]*u[0] + dXdx[j][1]*u[1] + dXdx[j][2]*u[2];
429a515125bSLeila Ghaffari     const CeedScalar TauS = CtauS / sqrt(uX[0]*uX[0] + uX[1]*uX[1] + uX[2]*uX[2]);
430a515125bSLeila Ghaffari 
431a515125bSLeila Ghaffari     for (CeedInt j=0; j<3; j++)
432a515125bSLeila Ghaffari       switch (context->stabilization) {
433a515125bSLeila Ghaffari       case 0:
434a515125bSLeila Ghaffari         break;
435a515125bSLeila Ghaffari       case 1: dv[j][4][i] += wdetJ * TauS * strong_conv * uX[j];  //SU
436a515125bSLeila Ghaffari         break;
437a515125bSLeila Ghaffari       case 2: dv[j][4][i] += wdetJ * TauS * strong_res * uX[j];  //SUPG
438a515125bSLeila Ghaffari         break;
439a515125bSLeila Ghaffari       }
440a515125bSLeila Ghaffari   } // End Quadrature Point Loop
441a515125bSLeila Ghaffari 
442a515125bSLeila Ghaffari   return 0;
443a515125bSLeila Ghaffari }
444a515125bSLeila Ghaffari 
445a515125bSLeila Ghaffari // *****************************************************************************
446a515125bSLeila Ghaffari // This QFunction implements consistent outflow and inflow BCs
447a515125bSLeila Ghaffari //      for 3D advection
448a515125bSLeila Ghaffari //
449a515125bSLeila Ghaffari //  Inflow and outflow faces are determined based on sign(dot(wind, normal)):
450a515125bSLeila Ghaffari //    sign(dot(wind, normal)) > 0 : outflow BCs
451a515125bSLeila Ghaffari //    sign(dot(wind, normal)) < 0 : inflow BCs
452a515125bSLeila Ghaffari //
453a515125bSLeila Ghaffari //  Outflow BCs:
454a515125bSLeila Ghaffari //    The validity of the weak form of the governing equations is extended
455a515125bSLeila Ghaffari //    to the outflow and the current values of E are applied.
456a515125bSLeila Ghaffari //
457a515125bSLeila Ghaffari //  Inflow BCs:
458a515125bSLeila Ghaffari //    A prescribed Total Energy (E_wind) is applied weakly.
459a515125bSLeila Ghaffari //
460a515125bSLeila Ghaffari // *****************************************************************************
461002797a3SLeila Ghaffari CEED_QFUNCTION(Advection_InOutFlow)(void *ctx, CeedInt Q,
462a515125bSLeila Ghaffari                                     const CeedScalar *const *in,
463a515125bSLeila Ghaffari                                     CeedScalar *const *out) {
464a515125bSLeila Ghaffari   // *INDENT-OFF*
465a515125bSLeila Ghaffari   // Inputs
466a515125bSLeila Ghaffari   const CeedScalar (*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0],
467a515125bSLeila Ghaffari                    (*q_data_sur)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[1];
468a515125bSLeila Ghaffari   // Outputs
469a515125bSLeila Ghaffari   CeedScalar (*v)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0];
470a515125bSLeila Ghaffari   // *INDENT-ON*
471a515125bSLeila Ghaffari   AdvectionContext context = (AdvectionContext)ctx;
472a515125bSLeila Ghaffari   const CeedScalar E_wind      = context->E_wind;
473a515125bSLeila Ghaffari   const CeedScalar strong_form = context->strong_form;
474a515125bSLeila Ghaffari   const bool implicit          = context->implicit;
475a515125bSLeila Ghaffari 
476a515125bSLeila Ghaffari   CeedPragmaSIMD
477a515125bSLeila Ghaffari   // Quadrature Point Loop
478a515125bSLeila Ghaffari   for (CeedInt i=0; i<Q; i++) {
479a515125bSLeila Ghaffari     // Setup
480a515125bSLeila Ghaffari     // -- Interp in
481a515125bSLeila Ghaffari     const CeedScalar rho        =    q[0][i];
482a515125bSLeila Ghaffari     const CeedScalar u[3]       =   {q[1][i] / rho,
483a515125bSLeila Ghaffari                                      q[2][i] / rho,
484a515125bSLeila Ghaffari                                      q[3][i] / rho
485a515125bSLeila Ghaffari                                     };
486a515125bSLeila Ghaffari     const CeedScalar E          =    q[4][i];
487a515125bSLeila Ghaffari 
488a515125bSLeila Ghaffari     // -- Interp-to-Interp q_data
489a515125bSLeila Ghaffari     // For explicit mode, the surface integral is on the RHS of ODE q_dot = f(q).
490a515125bSLeila Ghaffari     // For implicit mode, it gets pulled to the LHS of implicit ODE/DAE g(q_dot, q).
491a515125bSLeila Ghaffari     // We can effect this by swapping the sign on this weight
492a515125bSLeila Ghaffari     const CeedScalar wdetJb     =   (implicit ? -1. : 1.) * q_data_sur[0][i];
493a515125bSLeila Ghaffari 
494a515125bSLeila Ghaffari     // ---- Normal vectors
495a515125bSLeila Ghaffari     const CeedScalar norm[3]    =   {q_data_sur[1][i],
496a515125bSLeila Ghaffari                                      q_data_sur[2][i],
497a515125bSLeila Ghaffari                                      q_data_sur[3][i]
498a515125bSLeila Ghaffari                                     };
499a515125bSLeila Ghaffari     // Normal velocity
500a515125bSLeila Ghaffari     const CeedScalar u_normal = norm[0]*u[0] + norm[1]*u[1] + norm[2]*u[2];
501a515125bSLeila Ghaffari 
502a515125bSLeila Ghaffari     // No Change in density or momentum
503a515125bSLeila Ghaffari     for (CeedInt j=0; j<4; j++) {
504a515125bSLeila Ghaffari       v[j][i] = 0;
505a515125bSLeila Ghaffari     }
506a515125bSLeila Ghaffari     // Implementing in/outflow BCs
507a515125bSLeila Ghaffari     if (u_normal > 0) { // outflow
508a515125bSLeila Ghaffari       v[4][i] = -(1 - strong_form) * wdetJb * E * u_normal;
509a515125bSLeila Ghaffari     } else { // inflow
510a515125bSLeila Ghaffari       v[4][i] = -(1 - strong_form) * wdetJb * E_wind * u_normal;
511a515125bSLeila Ghaffari     }
512a515125bSLeila Ghaffari   } // End Quadrature Point Loop
513a515125bSLeila Ghaffari   return 0;
514a515125bSLeila Ghaffari }
515a515125bSLeila Ghaffari // *****************************************************************************
516a515125bSLeila Ghaffari 
517a515125bSLeila Ghaffari #endif // advection_h
518