xref: /libCEED/examples/fluids/qfunctions/channel.h (revision c0b5abf0f23b15c4f0ada76f8abe9f8d2b6fa247)
1 // Copyright (c) 2017-2024, Lawrence Livermore National Security, LLC and other CEED contributors.
2 // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
3 //
4 // SPDX-License-Identifier: BSD-2-Clause
5 //
6 // This file is part of CEED:  http://github.com/ceed
7 
8 /// @file
9 /// Operator for Navier-Stokes example using PETSc
10 #include <ceed/types.h>
11 #ifndef CEED_RUNNING_JIT_PASS
12 #include <math.h>
13 #include <stdbool.h>
14 #endif
15 
16 #include "newtonian_state.h"
17 #include "newtonian_types.h"
18 #include "utils.h"
19 
20 typedef struct ChannelContext_ *ChannelContext;
21 struct ChannelContext_ {
22   bool                             implicit;  // !< Using implicit timesteping or not
23   CeedScalar                       theta0;    // !< Reference temperature
24   CeedScalar                       P0;        // !< Reference Pressure
25   CeedScalar                       umax;      // !< Centerline velocity
26   CeedScalar                       center;    // !< Y Coordinate for center of channel
27   CeedScalar                       H;         // !< Channel half-height
28   CeedScalar                       B;         // !< Body-force driving the flow
29   struct NewtonianIdealGasContext_ newtonian_ctx;
30 };
31 
32 CEED_QFUNCTION_HELPER State Exact_Channel(CeedInt dim, CeedScalar time, const CeedScalar X[], CeedInt Nf, void *ctx) {
33   const ChannelContext     context = (ChannelContext)ctx;
34   const CeedScalar         theta0  = context->theta0;
35   const CeedScalar         P0      = context->P0;
36   const CeedScalar         umax    = context->umax;
37   const CeedScalar         center  = context->center;
38   const CeedScalar         H       = context->H;
39   NewtonianIdealGasContext gas     = &context->newtonian_ctx;
40   const CeedScalar         cp      = gas->cp;
41   const CeedScalar         mu      = gas->mu;
42   const CeedScalar         k       = gas->k;
43   // There is a gravity body force but it is excluded from
44   //   the potential energy due to periodicity.
45   //     g = (g, 0, 0)
46   //     x = (0, x_2, x_3)
47   //     e_potential = dot(g, x) = 0
48   const CeedScalar x[3] = {0, X[1], X[2]};
49 
50   const CeedScalar Pr    = mu / (cp * k);
51   const CeedScalar Ec    = (umax * umax) / (cp * theta0);
52   const CeedScalar theta = theta0 * (1 + (Pr * Ec / 3) * (1 - Square(Square((x[1] - center) / H))));
53   CeedScalar       Y[5]  = {0.};
54   Y[0]                   = P0;
55   Y[1]                   = umax * (1 - Square((x[1] - center) / H));
56   Y[2]                   = 0.;
57   Y[3]                   = 0.;
58   Y[4]                   = theta;
59 
60   return StateFromY(gas, Y);
61 }
62 
63 // *****************************************************************************
64 // This QFunction set the initial condition
65 // *****************************************************************************
66 CEED_QFUNCTION(ICsChannel)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) {
67   const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
68   CeedScalar(*q0)[CEED_Q_VLA]      = (CeedScalar(*)[CEED_Q_VLA])out[0];
69 
70   const ChannelContext           context = (ChannelContext)ctx;
71   const NewtonianIdealGasContext gas     = &context->newtonian_ctx;
72 
73   CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) {
74     const CeedScalar x[]  = {X[0][i], X[1][i], X[2][i]};
75     State            s    = Exact_Channel(3, 0., x, 5, ctx);
76     CeedScalar       q[5] = {0};
77     StateToQ(gas, s, q, gas->state_var);
78     for (CeedInt j = 0; j < 5; j++) q0[j][i] = q[j];
79   }
80   return 0;
81 }
82 
83 // *****************************************************************************
84 // This QFunction set the inflow boundary condition for conservative variables
85 // *****************************************************************************
86 CEED_QFUNCTION(Channel_Inflow)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) {
87   const CeedScalar(*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
88   const CeedScalar(*q_data_sur)    = in[2];
89   const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[3];
90   CeedScalar(*v)[CEED_Q_VLA]       = (CeedScalar(*)[CEED_Q_VLA])out[0];
91 
92   const ChannelContext     context     = (ChannelContext)ctx;
93   const bool               is_implicit = context->implicit;
94   NewtonianIdealGasContext gas         = &context->newtonian_ctx;
95   const CeedScalar         gamma       = HeatCapacityRatio(&context->newtonian_ctx);
96 
97   CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) {
98     CeedScalar wdetJb, norm[3];
99     QdataBoundaryUnpack_3D(Q, i, q_data_sur, &wdetJb, NULL, norm);
100     wdetJb *= is_implicit ? -1. : 1.;
101 
102     // There is a gravity body force but it is excluded from
103     //   the potential energy due to periodicity.
104     //     g = (g, 0, 0)
105     //     x = (0, x_2, x_3)
106     //     e_potential = dot(g, x) = 0
107     const CeedScalar x[3] = {0, X[1][i], X[2][i]};
108 
109     // Calculate prescribed inflow values
110     State      s_exact    = Exact_Channel(3, 0., x, 5, ctx);
111     CeedScalar q_exact[5] = {0.};
112     UnpackState_U(s_exact.U, q_exact);
113 
114     // Find pressure using state inside the domain
115     CeedScalar q_inside[5] = {0};
116     for (CeedInt j = 0; j < 5; j++) q_inside[j] = q[j][i];
117     State            s_inside = StateFromU(gas, q_inside);
118     const CeedScalar P        = s_inside.Y.pressure;
119 
120     // Find inflow state using calculated P and prescribed velocity, theta0
121     const CeedScalar e_internal = gas->cv * s_exact.Y.temperature;
122     const CeedScalar rho_in     = P / ((gamma - 1) * e_internal);
123     const CeedScalar E_kinetic  = .5 * rho_in * Dot3(s_exact.Y.velocity, s_exact.Y.velocity);
124     const CeedScalar E          = rho_in * e_internal + E_kinetic;
125 
126     // The Physics
127     // Zero v so all future terms can safely sum into it
128     for (CeedInt j = 0; j < 5; j++) v[j][i] = 0.;
129 
130     const CeedScalar u_normal = Dot3(norm, s_exact.Y.velocity);
131 
132     // The Physics
133     // -- Density
134     v[0][i] -= wdetJb * rho_in * u_normal;
135 
136     // -- Momentum
137     for (CeedInt j = 0; j < 3; j++) v[j + 1][i] -= wdetJb * (rho_in * u_normal * s_exact.Y.velocity[j] + norm[j] * P);
138 
139     // -- Total Energy Density
140     v[4][i] -= wdetJb * u_normal * (E + P);
141   }
142   return 0;
143 }
144 
145 // *****************************************************************************
146 // This QFunction set the outflow boundary condition for conservative variables
147 // *****************************************************************************
148 CEED_QFUNCTION(Channel_Outflow)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) {
149   const CeedScalar(*q)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
150   const CeedScalar(*q_data_sur)    = in[2];
151   CeedScalar(*v)[CEED_Q_VLA]       = (CeedScalar(*)[CEED_Q_VLA])out[0];
152 
153   const ChannelContext context     = (ChannelContext)ctx;
154   const bool           is_implicit = context->implicit;
155 
156   CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) {
157     CeedScalar wdetJb, norm[3];
158     QdataBoundaryUnpack_3D(Q, i, q_data_sur, &wdetJb, NULL, norm);
159     wdetJb *= is_implicit ? -1. : 1.;
160 
161     const CeedScalar rho  = q[0][i];
162     const CeedScalar u[3] = {q[1][i] / rho, q[2][i] / rho, q[3][i] / rho};
163     const CeedScalar E    = q[4][i];
164 
165     // The Physics
166     // Zero v so all future terms can safely sum into it
167     for (CeedInt j = 0; j < 5; j++) v[j][i] = 0.;
168 
169     // Implementing outflow condition
170     const CeedScalar P        = context->P0;    // pressure
171     const CeedScalar u_normal = Dot3(norm, u);  // Normal velocity
172     // The Physics
173     // -- Density
174     v[0][i] -= wdetJb * rho * u_normal;
175 
176     // -- Momentum
177     for (CeedInt j = 0; j < 3; j++) v[j + 1][i] -= wdetJb * (rho * u_normal * u[j] + norm[j] * P);
178 
179     // -- Total Energy Density
180     v[4][i] -= wdetJb * u_normal * (E + P);
181   }
182   return 0;
183 }
184