1*9ba83ac0SJeremy L Thompson // Copyright (c) 2017-2026, Lawrence Livermore National Security, LLC and other CEED contributors.
23d8e8822SJeremy L Thompson // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
377841947SLeila Ghaffari //
43d8e8822SJeremy L Thompson // SPDX-License-Identifier: BSD-2-Clause
577841947SLeila Ghaffari //
63d8e8822SJeremy L Thompson // This file is part of CEED: http://github.com/ceed
777841947SLeila Ghaffari
877841947SLeila Ghaffari /// @file
977841947SLeila Ghaffari /// Density current initial condition and operator for Navier-Stokes example using PETSc
1077841947SLeila Ghaffari
1177841947SLeila Ghaffari // Model from:
1277841947SLeila Ghaffari // Semi-Implicit Formulations of the Navier-Stokes Equations: Application to
1377841947SLeila Ghaffari // Nonhydrostatic Atmospheric Modeling, Giraldo, Restelli, and Lauter (2010).
14c0b5abf0SJeremy L Thompson #include <ceed/types.h>
15c0b5abf0SJeremy L Thompson #ifndef CEED_RUNNING_JIT_PASS
16c9c2c079SJeremy L Thompson #include <math.h>
17c0b5abf0SJeremy L Thompson #endif
182b730f8bSJeremy L Thompson
19dc805cc4SLeila Ghaffari #include "newtonian_state.h"
20c9c2c079SJeremy L Thompson #include "newtonian_types.h"
2113fa47b2SJames Wright #include "utils.h"
2277841947SLeila Ghaffari
23dc805cc4SLeila Ghaffari typedef struct DensityCurrentContext_ *DensityCurrentContext;
24dc805cc4SLeila Ghaffari struct DensityCurrentContext_ {
25dc805cc4SLeila Ghaffari CeedScalar theta0;
26dc805cc4SLeila Ghaffari CeedScalar thetaC;
27dc805cc4SLeila Ghaffari CeedScalar P0;
28dc805cc4SLeila Ghaffari CeedScalar N;
29dc805cc4SLeila Ghaffari CeedScalar rc;
30dc805cc4SLeila Ghaffari CeedScalar center[3];
31dc805cc4SLeila Ghaffari CeedScalar dc_axis[3];
32dc805cc4SLeila Ghaffari struct NewtonianIdealGasContext_ newtonian_ctx;
33dc805cc4SLeila Ghaffari };
34dc805cc4SLeila Ghaffari
3577841947SLeila Ghaffari // *****************************************************************************
3677841947SLeila Ghaffari // This function sets the initial conditions and the boundary conditions
3777841947SLeila Ghaffari //
38ea61e9acSJeremy L Thompson // These initial conditions are given in terms of potential temperature and Exner pressure and then converted to density and total energy.
3977841947SLeila Ghaffari // Initial momentum density is zero.
4077841947SLeila Ghaffari //
4177841947SLeila Ghaffari // Initial Conditions:
4277841947SLeila Ghaffari // Potential Temperature:
4377841947SLeila Ghaffari // theta = thetabar + delta_theta
4477841947SLeila Ghaffari // thetabar = theta0 exp( N**2 z / g )
4577841947SLeila Ghaffari // delta_theta = r <= rc : thetaC(1 + cos(pi r/rc)) / 2
4677841947SLeila Ghaffari // r > rc : 0
4777841947SLeila Ghaffari // r = sqrt( (x - xc)**2 + (y - yc)**2 + (z - zc)**2 )
4877841947SLeila Ghaffari // with (xc,yc,zc) center of domain, rc characteristic radius of thermal bubble
4977841947SLeila Ghaffari // Exner Pressure:
5077841947SLeila Ghaffari // Pi = Pibar + deltaPi
5177841947SLeila Ghaffari // Pibar = 1. + g**2 (exp( - N**2 z / g ) - 1) / (cp theta0 N**2)
5277841947SLeila Ghaffari // deltaPi = 0 (hydrostatic balance)
5377841947SLeila Ghaffari // Velocity/Momentum Density:
5477841947SLeila Ghaffari // Ui = ui = 0
5577841947SLeila Ghaffari //
5677841947SLeila Ghaffari // Conversion to Conserved Variables:
5777841947SLeila Ghaffari // rho = P0 Pi**(cv/Rd) / (Rd theta)
5877841947SLeila Ghaffari // E = rho (cv T + (u u)/2 + g z)
5977841947SLeila Ghaffari //
6077841947SLeila Ghaffari // Boundary Conditions:
6177841947SLeila Ghaffari // Mass Density:
6277841947SLeila Ghaffari // 0.0 flux
6377841947SLeila Ghaffari // Momentum Density:
6477841947SLeila Ghaffari // 0.0
6577841947SLeila Ghaffari // Energy Density:
6677841947SLeila Ghaffari // 0.0 flux
6777841947SLeila Ghaffari //
6877841947SLeila Ghaffari // Constants:
6977841947SLeila Ghaffari // theta0 , Potential temperature constant
7077841947SLeila Ghaffari // thetaC , Potential temperature perturbation
7177841947SLeila Ghaffari // P0 , Pressure at the surface
7277841947SLeila Ghaffari // N , Brunt-Vaisala frequency
7377841947SLeila Ghaffari // cv , Specific heat, constant volume
7477841947SLeila Ghaffari // cp , Specific heat, constant pressure
7577841947SLeila Ghaffari // Rd = cp - cv, Specific heat difference
7677841947SLeila Ghaffari // g , Gravity
7777841947SLeila Ghaffari // rc , Characteristic radius of thermal bubble
7877841947SLeila Ghaffari // center , Location of bubble center
7977841947SLeila Ghaffari // dc_axis , Axis of density current cylindrical anomaly, or {0,0,0} for spherically symmetric
8077841947SLeila Ghaffari // *****************************************************************************
8177841947SLeila Ghaffari
8277841947SLeila Ghaffari // *****************************************************************************
8377841947SLeila Ghaffari // This helper function provides support for the exact, time-dependent solution
8477841947SLeila Ghaffari // (currently not implemented) and IC formulation for density current
8577841947SLeila Ghaffari // *****************************************************************************
Exact_DC(CeedInt dim,CeedScalar time,const CeedScalar X[],CeedInt Nf,void * ctx)862b730f8bSJeremy L Thompson CEED_QFUNCTION_HELPER State Exact_DC(CeedInt dim, CeedScalar time, const CeedScalar X[], CeedInt Nf, void *ctx) {
8777841947SLeila Ghaffari // Context
88dc805cc4SLeila Ghaffari const DensityCurrentContext context = (DensityCurrentContext)ctx;
8977841947SLeila Ghaffari const CeedScalar theta0 = context->theta0;
9077841947SLeila Ghaffari const CeedScalar thetaC = context->thetaC;
9177841947SLeila Ghaffari const CeedScalar P0 = context->P0;
9277841947SLeila Ghaffari const CeedScalar N = context->N;
9377841947SLeila Ghaffari const CeedScalar rc = context->rc;
9477841947SLeila Ghaffari const CeedScalar *center = context->center;
9577841947SLeila Ghaffari const CeedScalar *dc_axis = context->dc_axis;
96dc805cc4SLeila Ghaffari NewtonianIdealGasContext gas = &context->newtonian_ctx;
97dc805cc4SLeila Ghaffari const CeedScalar cp = gas->cp;
98dc805cc4SLeila Ghaffari const CeedScalar cv = gas->cv;
99e6225c47SLeila Ghaffari const CeedScalar Rd = cp - cv;
100dc805cc4SLeila Ghaffari const CeedScalar *g_vec = gas->g;
10188626eedSJames Wright const CeedScalar g = -g_vec[2];
10277841947SLeila Ghaffari
10377841947SLeila Ghaffari // Setup
10477841947SLeila Ghaffari // -- Coordinates
10577841947SLeila Ghaffari const CeedScalar x = X[0];
10677841947SLeila Ghaffari const CeedScalar y = X[1];
10777841947SLeila Ghaffari const CeedScalar z = X[2];
10877841947SLeila Ghaffari
10977841947SLeila Ghaffari // -- Potential temperature, density current
11077841947SLeila Ghaffari CeedScalar rr[3] = {x - center[0], y - center[1], z - center[2]};
11177841947SLeila Ghaffari // (I - q q^T) r: distance from dc_axis (or from center if dc_axis is the zero vector)
1122b730f8bSJeremy L Thompson for (CeedInt i = 0; i < 3; i++) rr[i] -= dc_axis[i] * Dot3(dc_axis, rr);
1132b89d87eSLeila Ghaffari const CeedScalar r = sqrt(Dot3(rr, rr));
11477841947SLeila Ghaffari const CeedScalar delta_theta = r <= rc ? thetaC * (1. + cos(M_PI * r / rc)) / 2. : 0.;
1152b89d87eSLeila Ghaffari const CeedScalar theta = theta0 * exp(Square(N) * z / g) + delta_theta;
11677841947SLeila Ghaffari
11777841947SLeila Ghaffari // -- Exner pressure, hydrostatic balance
1182b730f8bSJeremy L Thompson const CeedScalar Pi = 1. + Square(g) * (exp(-Square(N) * z / g) - 1.) / (cp * theta0 * Square(N));
11977841947SLeila Ghaffari
12077841947SLeila Ghaffari // Initial Conditions
121dc805cc4SLeila Ghaffari CeedScalar Y[5] = {0.};
122dc805cc4SLeila Ghaffari Y[0] = P0 * pow(Pi, cp / Rd);
123dc805cc4SLeila Ghaffari Y[1] = 0.0;
124dc805cc4SLeila Ghaffari Y[2] = 0.0;
125dc805cc4SLeila Ghaffari Y[3] = 0.0;
1260d674129SKenneth E. Jansen Y[4] = Pi * theta;
12777841947SLeila Ghaffari
1283bd61617SKenneth E. Jansen return StateFromY(gas, Y);
12977841947SLeila Ghaffari }
13077841947SLeila Ghaffari
13177841947SLeila Ghaffari // *****************************************************************************
13277841947SLeila Ghaffari // This QFunction sets the initial conditions for density current
13377841947SLeila Ghaffari // *****************************************************************************
ICsDC(void * ctx,CeedInt Q,const CeedScalar * const * in,CeedScalar * const * out)1342b730f8bSJeremy L Thompson CEED_QFUNCTION(ICsDC)(void *ctx, CeedInt Q, const CeedScalar *const *in, CeedScalar *const *out) {
13577841947SLeila Ghaffari const CeedScalar(*X)[CEED_Q_VLA] = (const CeedScalar(*)[CEED_Q_VLA])in[0];
13677841947SLeila Ghaffari CeedScalar(*q0)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0];
13777841947SLeila Ghaffari
138dc805cc4SLeila Ghaffari const DensityCurrentContext context = (DensityCurrentContext)ctx;
139a2d72b6fSJames Wright const NewtonianIdealGasContext gas = &context->newtonian_ctx;
140dc805cc4SLeila Ghaffari
14146603fc5SJames Wright CeedPragmaSIMD for (CeedInt i = 0; i < Q; i++) {
14277841947SLeila Ghaffari const CeedScalar x[] = {X[0][i], X[1][i], X[2][i]};
143dc805cc4SLeila Ghaffari State s = Exact_DC(3, 0., x, 5, ctx);
1442b89d87eSLeila Ghaffari CeedScalar q[5] = {0};
145a2d72b6fSJames Wright StateToQ(gas, s, q, gas->state_var);
1462b730f8bSJeremy L Thompson for (CeedInt j = 0; j < 5; j++) q0[j][i] = q[j];
147f0b01153SJames Wright }
14877841947SLeila Ghaffari return 0;
14977841947SLeila Ghaffari }
150