1965d9f74SJames Wright# Runtime options 2965d9f74SJames Wright 3965d9f74SJames Wright## Common Options 4ce03971bSJames WrightThe Navier-Stokes HONEE app is controlled via command-line options. 5965d9f74SJames WrightThe following options are common among all problem types: 6965d9f74SJames Wright 7965d9f74SJames Wright:::{list-table} Common Runtime Options 8965d9f74SJames Wright:header-rows: 1 9965d9f74SJames Wright 10965d9f74SJames Wright* - Option 11965d9f74SJames Wright - Description 12965d9f74SJames Wright - Default value 13965d9f74SJames Wright 14965d9f74SJames Wright* - `-ceed` 15965d9f74SJames Wright - CEED resource specifier 16965d9f74SJames Wright - `/cpu/self/opt/blocked` 17965d9f74SJames Wright 18965d9f74SJames Wright* - `-problem` 19965d9f74SJames Wright - Problem to solve (`advection`, `density_current`, `euler_vortex`, `shocktube`, `blasius`, `channel`, `gaussian_wave`, and `taylor_green`) 20965d9f74SJames Wright - `density_current` 21965d9f74SJames Wright 22965d9f74SJames Wright* - `-implicit` 23965d9f74SJames Wright - Use implicit time integrator formulation 24965d9f74SJames Wright - 25965d9f74SJames Wright 26965d9f74SJames Wright* - `-degree` 27965d9f74SJames Wright - Polynomial degree of tensor product basis (must be >= 1) 28965d9f74SJames Wright - `1` 29965d9f74SJames Wright 30965d9f74SJames Wright* - `-q_extra` 31965d9f74SJames Wright - Number of extra quadrature points 32965d9f74SJames Wright - `0` 33965d9f74SJames Wright 34965d9f74SJames Wright* - `-ts_monitor_turbulence_spanstats_collect_interval` 35965d9f74SJames Wright - Number of timesteps between statistics collection 36965d9f74SJames Wright - `1` 37965d9f74SJames Wright 38965d9f74SJames Wright* - `-ts_monitor_turbulence_spanstats_viewer` 39965d9f74SJames Wright - Sets the PetscViewer for the statistics file writing, such as `cgns:output-%d.cgns` (requires PETSc `--download-cgns`). Also turns the statistics collection on. 40965d9f74SJames Wright - 41965d9f74SJames Wright 42965d9f74SJames Wright* - `-ts_monitor_turbulence_spanstats_viewer_interval` 43965d9f74SJames Wright - Number of timesteps between statistics file writing (`-1` means only at end of run) 44965d9f74SJames Wright - `-1` 45965d9f74SJames Wright 46965d9f74SJames Wright* - `-ts_monitor_turbulence_spanstats_viewer_cgns_batch_size` 47965d9f74SJames Wright - Number of frames written per CGNS file if the CGNS file name includes a format specifier (`%d`). 48965d9f74SJames Wright - `20` 49965d9f74SJames Wright 50965d9f74SJames Wright* - `-ts_monitor_wall_force` 51965d9f74SJames Wright - Viewer for the force on each no-slip wall, e.g., `ascii:force.csv:ascii_csv` to write a CSV file. 52965d9f74SJames Wright - 53965d9f74SJames Wright 5425125139SJames Wright* - `-ts_monitor_total_kinetic_energy` 5525125139SJames Wright - Viewer for the total kinetic energy in the domain and other terms, e.g., `ascii:total_ke.csv:ascii_csv` to write a CSV file. 5625125139SJames Wright - 5725125139SJames Wright 5825125139SJames Wright* - `-ts_monitor_total_kinetic_energy_interval` 5925125139SJames Wright - Number of timesteps between calculating and printing the total kinetic energy 6025125139SJames Wright - `1` 6125125139SJames Wright 628b774af8SJames Wright* - `-honee_check_step_interval` 638b774af8SJames Wright - Number of time steps between checking the solution for Nans. Negative interval indicates it will not run. 648b774af8SJames Wright - `-1` 658b774af8SJames Wright 66354560d1SJames Wright* - `-honee_max_wall_time_duration` 67354560d1SJames Wright - Wall clock duration of simulation before it should be stopped. Acceptable formats are `hh`, `hh:mm`, and `hh:mm:ss`. Simulation is stopped at `start_time + duration - buffer` 68354560d1SJames Wright - `'0'` 69354560d1SJames Wright 70354560d1SJames Wright* - `-honee_max_wall_time_buffer` 71354560d1SJames Wright - Approximate time required to exit simulation cleanly (write checkpoints, etc.) 72354560d1SJames Wright - `'00:01'` 73354560d1SJames Wright 74354560d1SJames Wright* - `-honee_max_wall_time_interval` 75354560d1SJames Wright - Number of time steps between checking whether simulation should stop based on `-honee_max_wall_time_duration` 76354560d1SJames Wright - `1` 77354560d1SJames Wright 78965d9f74SJames Wright* - `-mesh_transform` 79965d9f74SJames Wright - Transform the mesh, usually for an initial box mesh. 80965d9f74SJames Wright - `none` 81965d9f74SJames Wright 82965d9f74SJames Wright* - `-snes_view` 83965d9f74SJames Wright - View PETSc `SNES` nonlinear solver configuration 84965d9f74SJames Wright - 85965d9f74SJames Wright 86965d9f74SJames Wright* - `-log_view` 87965d9f74SJames Wright - View PETSc performance log 88965d9f74SJames Wright - 89965d9f74SJames Wright 90965d9f74SJames Wright* - `-help` 91965d9f74SJames Wright - View comprehensive information about run-time options 92965d9f74SJames Wright - 93ce03971bSJames Wright 94ce03971bSJames Wright* - `-test_type` 95ce03971bSJames Wright - Run in test mode and specify whether solution (`solver`) or turbulent statistics (`turb_spanstats`) output should be verified 96ce03971bSJames Wright - `none` 97ce03971bSJames Wright 98ce03971bSJames Wright* - `-compare_final_state_atol` 99ce03971bSJames Wright - Test absolute tolerance 100ce03971bSJames Wright - `1E-11` 101ce03971bSJames Wright 102ce03971bSJames Wright* - `-compare_final_state_filename` 103ce03971bSJames Wright - Test filename 104ce03971bSJames Wright - 105ce03971bSJames Wright 106965d9f74SJames Wright::: 107965d9f74SJames Wright 108*78a26750SJames Wright### File I/O Options 109*78a26750SJames Wright 110*78a26750SJames Wright:::{list-table} File I/O Runtime Options 111*78a26750SJames Wright:header-rows: 1 112*78a26750SJames Wright 113*78a26750SJames Wright* - Option 114*78a26750SJames Wright - Description 115*78a26750SJames Wright - Default value 116*78a26750SJames Wright 117*78a26750SJames Wright* - `-dm_plex_filename` 118*78a26750SJames Wright - Filename of mesh file to load in 119*78a26750SJames Wright - 120*78a26750SJames Wright 121*78a26750SJames Wright* - `-ts_monitor_solution` 122*78a26750SJames Wright - PETSc output format, such as `cgns:output-%d.cgns` (requires PETSc `--download-cgns`) 123*78a26750SJames Wright - 124*78a26750SJames Wright 125*78a26750SJames Wright* - `-ts_monitor_solution_interval` 126*78a26750SJames Wright - Number of time steps between visualization output frames. 127*78a26750SJames Wright - `1` 128*78a26750SJames Wright 129*78a26750SJames Wright* - `-viewer_cgns_batch_size` 130*78a26750SJames Wright - Number of frames written per CGNS file if the CGNS file name includes a format specifier (`%d`). 131*78a26750SJames Wright - `20` 132*78a26750SJames Wright 133*78a26750SJames Wright* - `-checkpoint_interval` 134*78a26750SJames Wright - Number of steps between writing binary checkpoints. `0` has no output, `-1` outputs final state only 135*78a26750SJames Wright - `10` 136*78a26750SJames Wright 137*78a26750SJames Wright* - `-checkpoint_vtk` 138*78a26750SJames Wright - Checkpoints include VTK (`*.vtu`) files for visualization. Consider `-ts_monitor_solution`instead. 139*78a26750SJames Wright - `false` 140*78a26750SJames Wright 141*78a26750SJames Wright* - `-viz_refine` 142*78a26750SJames Wright - Use regular refinement for VTK visualization 143*78a26750SJames Wright - `0` 144*78a26750SJames Wright 145*78a26750SJames Wright* - `-output_dir` 146*78a26750SJames Wright - Output directory for binary checkpoints and VTK files (if enabled). 147*78a26750SJames Wright - `.` 148*78a26750SJames Wright 149*78a26750SJames Wright* - `-output_add_stepnum2bin` 150*78a26750SJames Wright - Whether to add step numbers to output binary files 151*78a26750SJames Wright - `false` 152*78a26750SJames Wright 153*78a26750SJames Wright* - `-continue_filename` 154*78a26750SJames Wright - Path to file from which to continue from. Either binary file or CGNS 155*78a26750SJames Wright - 156*78a26750SJames Wright 157*78a26750SJames Wright::: 158*78a26750SJames Wright 159*78a26750SJames WrightNote that to use `-continue_filename` with CGNS files, the same file must be used with `-dm_plex_filename` and `-dm_plex_cgns_parallel`. 160*78a26750SJames Wright 161*78a26750SJames Wright## Boundary conditions 162*78a26750SJames Wright 163*78a26750SJames Wright:::{list-table} Boundary Condition Options 164*78a26750SJames Wright:header-rows: 1 165*78a26750SJames Wright 166*78a26750SJames Wright* - Option 167*78a26750SJames Wright - Description 168*78a26750SJames Wright 169*78a26750SJames Wright* - `-bc_wall` 170*78a26750SJames Wright - Use wall boundary conditions on this list of faces 171*78a26750SJames Wright 172*78a26750SJames Wright* - `-wall_comps` 173*78a26750SJames Wright - An array of constrained component numbers for wall BCs 174*78a26750SJames Wright 175*78a26750SJames Wright* - `-bc_slip` 176*78a26750SJames Wright - Use weak slip boundary condition on this list of faces 177*78a26750SJames Wright 178*78a26750SJames Wright* - `-bc_symmetry_x` 179*78a26750SJames Wright - Use symmetry boundary conditions, for the x component, on this list of faces 180*78a26750SJames Wright 181*78a26750SJames Wright* - `-bc_symmetry_y` 182*78a26750SJames Wright - Use symmetry boundary conditions, for the y component, on this list of faces 183*78a26750SJames Wright 184*78a26750SJames Wright* - `-bc_symmetry_z` 185*78a26750SJames Wright - Use symmetry boundary conditions, for the z component, on this list of faces 186*78a26750SJames Wright 187*78a26750SJames Wright* - `-bc_inflow` 188*78a26750SJames Wright - Use inflow boundary conditions on this list of faces 189*78a26750SJames Wright 190*78a26750SJames Wright* - `-bc_outflow` 191*78a26750SJames Wright - Use outflow boundary conditions on this list of faces 192*78a26750SJames Wright 193*78a26750SJames Wright* - `-bc_freestream` 194*78a26750SJames Wright - Use freestream boundary conditions on this list of faces 195*78a26750SJames Wright 196*78a26750SJames Wright::: 197*78a26750SJames Wright 198965d9f74SJames WrightFor the case of a square/cubic mesh, the list of face indices to be used with `-bc_wall`, `bc_inflow`, `bc_outflow`, `bc_freestream` and/or `-bc_symmetry_x`, `-bc_symmetry_y`, and `-bc_symmetry_z` are: 199965d9f74SJames Wright 200965d9f74SJames Wright:::{list-table} 2D Face ID Labels 201965d9f74SJames Wright:header-rows: 1 202965d9f74SJames Wright* - PETSc Face Name 203965d9f74SJames Wright - Cartesian direction 204965d9f74SJames Wright - Face ID 205965d9f74SJames Wright 206965d9f74SJames Wright* - faceMarkerBottom 207965d9f74SJames Wright - -z 208965d9f74SJames Wright - 1 209965d9f74SJames Wright 210965d9f74SJames Wright* - faceMarkerRight 211965d9f74SJames Wright - +x 212965d9f74SJames Wright - 2 213965d9f74SJames Wright 214965d9f74SJames Wright* - faceMarkerTop 215965d9f74SJames Wright - +z 216965d9f74SJames Wright - 3 217965d9f74SJames Wright 218965d9f74SJames Wright* - faceMarkerLeft 219965d9f74SJames Wright - -x 220965d9f74SJames Wright - 4 221965d9f74SJames Wright::: 222965d9f74SJames Wright 223965d9f74SJames Wright:::{list-table} 3D Face ID Labels 224965d9f74SJames Wright:header-rows: 1 225965d9f74SJames Wright* - PETSc Face Name 226965d9f74SJames Wright - Cartesian direction 227965d9f74SJames Wright - Face ID 228965d9f74SJames Wright 229965d9f74SJames Wright* - faceMarkerBottom 230965d9f74SJames Wright - -z 231965d9f74SJames Wright - 1 232965d9f74SJames Wright 233965d9f74SJames Wright* - faceMarkerTop 234965d9f74SJames Wright - +z 235965d9f74SJames Wright - 2 236965d9f74SJames Wright 237965d9f74SJames Wright* - faceMarkerFront 238965d9f74SJames Wright - -y 239965d9f74SJames Wright - 3 240965d9f74SJames Wright 241965d9f74SJames Wright* - faceMarkerBack 242965d9f74SJames Wright - +y 243965d9f74SJames Wright - 4 244965d9f74SJames Wright 245965d9f74SJames Wright* - faceMarkerRight 246965d9f74SJames Wright - +x 247965d9f74SJames Wright - 5 248965d9f74SJames Wright 249965d9f74SJames Wright* - faceMarkerLeft 250965d9f74SJames Wright - -x 251965d9f74SJames Wright - 6 252*78a26750SJames Wright 253965d9f74SJames Wright::: 254965d9f74SJames Wright 255965d9f74SJames Wright 256965d9f74SJames WrightBoundary conditions for compressible viscous flows are notoriously tricky. 257965d9f74SJames WrightHere we offer some recommendations. 258965d9f74SJames Wright 259965d9f74SJames Wright### Inflow 260965d9f74SJames Wright 261965d9f74SJames WrightIf in a region where the flow velocity is known (e.g., away from viscous walls), use `bc_freestream`, which solves a Riemann problem and can handle inflow and outflow (simultaneously and dynamically). 262965d9f74SJames WrightIt is stable and the least reflective boundary condition for acoustics. 263965d9f74SJames Wright 264965d9f74SJames WrightIf near a viscous wall, you may want a specified inflow profile. 265965d9f74SJames WrightUse `bc_inflow` and see {ref}`example-blasius` and discussion of synthetic turbulence generation for ways to analytically generate developed inflow profiles. 266965d9f74SJames WrightThese conditions may be either weak or strong, with the latter specifying velocity and temperature as essential boundary conditions and evaluating a boundary integral for the mass flux. 267965d9f74SJames WrightThe strong approach gives sharper resolution of velocity structures. 268965d9f74SJames WrightWe have described the primitive variable formulation here; the conservative variants are similar, but not equivalent. 269965d9f74SJames Wright 270965d9f74SJames Wright### Outflow 271965d9f74SJames Wright 272965d9f74SJames WrightIf you know the complete exterior state, `bc_freestream` is the least reflective boundary condition, but is disruptive to viscous flow structures. 273965d9f74SJames WrightIf thermal anomalies must exit the domain, the Riemann solver must resolve the contact wave to avoid reflections. 274965d9f74SJames WrightThe default Riemann solver, HLLC, is sufficient in this regard while the simpler HLL converts thermal structures exiting the domain into grid-scale reflecting acoustics. 275965d9f74SJames Wright 276965d9f74SJames WrightIf acoustic reflections are not a concern and/or the flow is impacted by walls or interior structures that you wish to resolve to near the boundary, choose `bc_outflow`. This condition (with default `outflow_type: riemann`) is stable for both inflow and outflow, so can be used in areas that have recirculation and lateral boundaries in which the flow fluctuates. 277965d9f74SJames Wright 278965d9f74SJames WrightThe simpler `bc_outflow` variant, `outflow_type: pressure`, requires that the flow be a strict outflow (or the problem becomes ill-posed and the solver will diverge). 279965d9f74SJames WrightIn our experience, `riemann` is slightly less reflective but produces similar flows in cases of strict outflow. 280965d9f74SJames WrightThe `pressure` variant is retained to facilitate comparison with other codes, such as PHASTA-C, but we recommend `riemann` for general use. 281965d9f74SJames Wright 282965d9f74SJames Wright### Periodicity 283965d9f74SJames Wright 284965d9f74SJames WrightPETSc provides two ways to specify periodicity: 285965d9f74SJames Wright 286965d9f74SJames Wright1. Topological periodicity, in which the donor and receiver dofs are the same, obtained using: 287965d9f74SJames Wright 288965d9f74SJames Wright```yaml 289965d9f74SJames Wrightdm_plex: 290965d9f74SJames Wright shape: box 291965d9f74SJames Wright box_faces: 10,12,4 292965d9f74SJames Wright box_bd: none,none,periodic 293965d9f74SJames Wright``` 294965d9f74SJames Wright 295965d9f74SJames WrightThe coordinates for such cases are stored as a new field with special cell-based indexing to enable wrapping through the boundary. 296965d9f74SJames WrightThis choice of coordinates prevents evaluating boundary integrals that cross the periodicity, such as for the outflow Riemann problem in the presence of spanwise periodicity. 297965d9f74SJames Wright 298965d9f74SJames Wright2. Isoperiodicity, in which the donor and receiver dofs are distinct in local vectors. This is obtained using `zbox`, as in: 299965d9f74SJames Wright 300965d9f74SJames Wright```yaml 301965d9f74SJames Wrightdm_plex: 302965d9f74SJames Wright shape: zbox 303965d9f74SJames Wright box_faces: 10,12,4 304965d9f74SJames Wright box_bd: none,none,periodic 305965d9f74SJames Wright``` 306965d9f74SJames Wright 307965d9f74SJames WrightIsoperiodicity enables standard boundary integrals, and is recommended for general use. 308965d9f74SJames WrightAt the time of this writing, it only supports one direction of periodicity. 309965d9f74SJames WrightThe `zbox` method uses [Z-ordering](https://en.wikipedia.org/wiki/Z-order_curve) to construct the mesh in parallel and provide an adequate initial partition, which makes it higher performance and avoids needing a partitioning package. 310965d9f74SJames Wright 311da02a6e7SJames Wright## Advection-Diffusion 312965d9f74SJames Wright 313da02a6e7SJames WrightThere is a reduced mode for pure advection, which holds density $\rho$ and momentum density $\rho \bm u$ constant while advecting "total energy density" $E$. 314965d9f74SJames WrightThe advection problems can be run in both 2D and 3D, based on the DM defined for the problem. 315965d9f74SJames WrightThe following additional command-line options are available: 316965d9f74SJames Wright 317965d9f74SJames Wright:::{list-table} Advection Runtime Options 318965d9f74SJames Wright:header-rows: 1 319965d9f74SJames Wright 320965d9f74SJames Wright* - Option 321965d9f74SJames Wright - Description 322965d9f74SJames Wright - Default value 323965d9f74SJames Wright - Unit 324965d9f74SJames Wright 325965d9f74SJames Wright* - `-units_meter` 326965d9f74SJames Wright - 1 meter in scaled length units 327965d9f74SJames Wright - `1E-2` 328965d9f74SJames Wright - 329965d9f74SJames Wright 330965d9f74SJames Wright* - `-units_second` 331965d9f74SJames Wright - 1 second in scaled time units 332965d9f74SJames Wright - `1E-2` 333965d9f74SJames Wright - 334965d9f74SJames Wright 335965d9f74SJames Wright* - `-units_kilogram` 336965d9f74SJames Wright - 1 kilogram in scaled mass units 337965d9f74SJames Wright - `1E-6` 338965d9f74SJames Wright - 339965d9f74SJames Wright 340965d9f74SJames Wright* - `-strong_form` 341965d9f74SJames Wright - Strong (1) or weak/integrated by parts (0) residual 342965d9f74SJames Wright - `0` 343965d9f74SJames Wright - 344965d9f74SJames Wright 345965d9f74SJames Wright* - `-stab` 346965d9f74SJames Wright - Stabilization method (`none`, `su`, or `supg`) 347965d9f74SJames Wright - `none` 348965d9f74SJames Wright - 349965d9f74SJames Wright 350965d9f74SJames Wright* - `-stab_tau` 351965d9f74SJames Wright - Formulation for $\tau$ in stabilization (`ctau`, `advdiff_shakib`) 352965d9f74SJames Wright - `ctau` 353965d9f74SJames Wright - 354965d9f74SJames Wright 355965d9f74SJames Wright* - `-Ctau_t` 356965d9f74SJames Wright - Scaling factor on the temporal portion of the $\tau$ formulation 357965d9f74SJames Wright - 0. 358965d9f74SJames Wright - 359965d9f74SJames Wright 360965d9f74SJames Wright* - `-Ctau_a` 361965d9f74SJames Wright - Scaling factor on the advection portion of the $\tau$ formulation 362965d9f74SJames Wright - $P^2$ 363965d9f74SJames Wright - 364965d9f74SJames Wright 365fbabb365SJames Wright* - `-Ctau_d` 366fbabb365SJames Wright - Scaling factor on the diffusion portion of the $\tau$ formulation 367fbabb365SJames Wright - $P^4$ 368fbabb365SJames Wright - 369fbabb365SJames Wright 370965d9f74SJames Wright* - `-CtauS` 371965d9f74SJames Wright - Scale coefficient for stabilization tau (nondimensional) 372965d9f74SJames Wright - `0` 373965d9f74SJames Wright - 374965d9f74SJames Wright 375965d9f74SJames Wright* - `-wind_type` 3763d1afcc1SJames Wright - Wind type in Advection (`rotation`, `translation`, `boundary_layer`) 377965d9f74SJames Wright - `rotation` 378965d9f74SJames Wright - 379965d9f74SJames Wright 380965d9f74SJames Wright* - `-wind_translation` 381965d9f74SJames Wright - Constant wind vector when `-wind_type translation` 382965d9f74SJames Wright - `1,0,0` 383965d9f74SJames Wright - 384965d9f74SJames Wright 385965d9f74SJames Wright* - `-diffusion_coeff` 386965d9f74SJames Wright - Diffusion coefficient 387965d9f74SJames Wright - `0` 388965d9f74SJames Wright - 389965d9f74SJames Wright 390965d9f74SJames Wright* - `-E_wind` 391965d9f74SJames Wright - Total energy of inflow wind when `-wind_type translation` 392965d9f74SJames Wright - `1E6` 393965d9f74SJames Wright - `J` 394965d9f74SJames Wright 395965d9f74SJames Wright* - `-advection_ic_type` 3963d1afcc1SJames Wright - Initial condition type, (`sphere`, `cylinder`, `cosine_hill`, `skew`, `wave`, `boundary_layer`) 397965d9f74SJames Wright - `sphere` 398965d9f74SJames Wright - 399965d9f74SJames Wright 40080e9ac5bSJames Wright* - `-advection_ic_bubble_rc` 40180e9ac5bSJames Wright - For `sphere` or `cylinder` IC, characteristic radius of thermal bubble 40280e9ac5bSJames Wright - `1000` 40380e9ac5bSJames Wright - `m` 40480e9ac5bSJames Wright 40580e9ac5bSJames Wright* - `-advection_ic_bubble_continuity` 40680e9ac5bSJames Wright - For `sphere` or `cylinder` IC, different shapes of bubble, (`smooth`, `back_sharp`, `thick`, `cosine`) 407965d9f74SJames Wright - `smooth` 408965d9f74SJames Wright - 409da02a6e7SJames Wright 41080e9ac5bSJames Wright* - `-advection_ic_wave_type` 41180e9ac5bSJames Wright - For `wave` IC, the wave form used for `-advection_ic_type wave` (`sine`, `square`) 412da02a6e7SJames Wright - `sine` 413da02a6e7SJames Wright - 414da02a6e7SJames Wright 41580e9ac5bSJames Wright* - `-advection_ic_wave_frequency` 41680e9ac5bSJames Wright - For `wave` IC, frequency of the wave 417da02a6e7SJames Wright - $2\pi$ 418da02a6e7SJames Wright - `1/s` 419da02a6e7SJames Wright 42080e9ac5bSJames Wright* - `-advection_ic_wave_phase` 42180e9ac5bSJames Wright - For `wave` IC, phase angle of the wave 422da02a6e7SJames Wright - $2\pi$ 423da02a6e7SJames Wright - 424b4fd18dfSJames Wright 42580e9ac5bSJames Wright* - `-advection_ic_bl_height_factor` 426b4fd18dfSJames Wright - For `boundary_layer` IC, sets the height of the linear boundary layer initial condition in proportion to the domain height 427b4fd18dfSJames Wright - $1$ 428b4fd18dfSJames Wright - 429965d9f74SJames Wright::: 430965d9f74SJames Wright 431965d9f74SJames WrightFor 3D advection, an example of the `rotation` mode can be run with: 432965d9f74SJames Wright 433965d9f74SJames Wright``` 434965d9f74SJames Wright./navierstokes -problem advection -dm_plex_box_faces 10,10,10 -dm_plex_dim 3 -dm_plex_box_lower 0,0,0 -dm_plex_box_upper 8000,8000,8000 -bc_wall 1,2,3,4,5,6 -wall_comps 4 -wind_type rotation -implicit -stab su 435965d9f74SJames Wright``` 436965d9f74SJames Wright 437965d9f74SJames Wrightand the `translation` mode with: 438965d9f74SJames Wright 439965d9f74SJames Wright``` 440965d9f74SJames Wright./navierstokes -problem advection -dm_plex_box_faces 10,10,10 -dm_plex_dim 3 -dm_plex_box_lower 0,0,0 -dm_plex_box_upper 8000,8000,8000 -wind_type translation -wind_translation .5,-1,0 -bc_inflow 1,2,3,4,5,6 441965d9f74SJames Wright``` 442965d9f74SJames Wright 443965d9f74SJames WrightFor 2D advection, an example of the `rotation` mode can be run with: 444965d9f74SJames Wright 445965d9f74SJames Wright``` 446965d9f74SJames Wright./navierstokes -problem advection -dm_plex_box_faces 20,20 -dm_plex_box_lower 0,0 -dm_plex_box_upper 1000,1000 -bc_wall 1,2,3,4 -wall_comps 4 -wind_type rotation -implicit -stab supg 447965d9f74SJames Wright``` 448965d9f74SJames Wright 449965d9f74SJames Wrightand the `translation` mode with: 450965d9f74SJames Wright 451965d9f74SJames Wright``` 452965d9f74SJames Wright./navierstokes -problem advection -dm_plex_box_faces 20,20 -dm_plex_box_lower 0,0 -dm_plex_box_upper 1000,1000 -units_meter 1e-4 -wind_type translation -wind_translation 1,-.5 -bc_inflow 1,2,3,4 453965d9f74SJames Wright``` 454965d9f74SJames WrightNote the lengths in `-dm_plex_box_upper` are given in meters, and will be nondimensionalized according to `-units_meter`. 455965d9f74SJames Wright 456965d9f74SJames Wright## Inviscid Ideal Gas 457965d9f74SJames Wright 458965d9f74SJames Wright### Isentropic Euler vortex 459965d9f74SJames Wright 460965d9f74SJames WrightFor the Isentropic Vortex problem, the following additional command-line options are available: 461965d9f74SJames Wright 462965d9f74SJames Wright:::{list-table} Isentropic Vortex Runtime Options 463965d9f74SJames Wright:header-rows: 1 464965d9f74SJames Wright 465965d9f74SJames Wright* - Option 466965d9f74SJames Wright - Description 467965d9f74SJames Wright - Default value 468965d9f74SJames Wright - Unit 469965d9f74SJames Wright 470965d9f74SJames Wright* - `-center` 471965d9f74SJames Wright - Location of vortex center 472965d9f74SJames Wright - `(lx,ly,lz)/2` 473965d9f74SJames Wright - `(m,m,m)` 474965d9f74SJames Wright 475965d9f74SJames Wright* - `-units_meter` 476965d9f74SJames Wright - 1 meter in scaled length units 477965d9f74SJames Wright - `1E-2` 478965d9f74SJames Wright - 479965d9f74SJames Wright 480965d9f74SJames Wright* - `-units_second` 481965d9f74SJames Wright - 1 second in scaled time units 482965d9f74SJames Wright - `1E-2` 483965d9f74SJames Wright - 484965d9f74SJames Wright 485965d9f74SJames Wright* - `-mean_velocity` 486965d9f74SJames Wright - Background velocity vector 487965d9f74SJames Wright - `(1,1,0)` 488965d9f74SJames Wright - 489965d9f74SJames Wright 490965d9f74SJames Wright* - `-vortex_strength` 491965d9f74SJames Wright - Strength of vortex < 10 492965d9f74SJames Wright - `5` 493965d9f74SJames Wright - 494965d9f74SJames Wright 495965d9f74SJames Wright* - `-c_tau` 496965d9f74SJames Wright - Stabilization constant 497965d9f74SJames Wright - `0.5` 498965d9f74SJames Wright - 499965d9f74SJames Wright::: 500965d9f74SJames Wright 501965d9f74SJames WrightThis problem can be run with: 502965d9f74SJames Wright 503965d9f74SJames Wright``` 504965d9f74SJames Wright./navierstokes -problem euler_vortex -dm_plex_box_faces 20,20,1 -dm_plex_box_lower 0,0,0 -dm_plex_box_upper 1000,1000,50 -dm_plex_dim 3 -bc_inflow 4,6 -bc_outflow 3,5 -bc_symmetry_z 1,2 -mean_velocity .5,-.8,0. 505965d9f74SJames Wright``` 506965d9f74SJames Wright 507965d9f74SJames Wright### Sod shock tube 508965d9f74SJames Wright 509965d9f74SJames WrightFor the Shock Tube problem, the following additional command-line options are available: 510965d9f74SJames Wright 511965d9f74SJames Wright:::{list-table} Shock Tube Runtime Options 512965d9f74SJames Wright:header-rows: 1 513965d9f74SJames Wright 514965d9f74SJames Wright* - Option 515965d9f74SJames Wright - Description 516965d9f74SJames Wright - Default value 517965d9f74SJames Wright - Unit 518965d9f74SJames Wright 519965d9f74SJames Wright* - `-units_meter` 520965d9f74SJames Wright - 1 meter in scaled length units 521965d9f74SJames Wright - `1E-2` 522965d9f74SJames Wright - 523965d9f74SJames Wright 524965d9f74SJames Wright* - `-units_second` 525965d9f74SJames Wright - 1 second in scaled time units 526965d9f74SJames Wright - `1E-2` 527965d9f74SJames Wright - 528965d9f74SJames Wright 529965d9f74SJames Wright* - `-yzb` 530965d9f74SJames Wright - Use YZB discontinuity capturing 531965d9f74SJames Wright - `none` 532965d9f74SJames Wright - 533965d9f74SJames Wright 534965d9f74SJames Wright* - `-stab` 535965d9f74SJames Wright - Stabilization method (`none`, `su`, or `supg`) 536965d9f74SJames Wright - `none` 537965d9f74SJames Wright - 538965d9f74SJames Wright::: 539965d9f74SJames Wright 540965d9f74SJames WrightThis problem can be run with: 541965d9f74SJames Wright 542965d9f74SJames Wright``` 543965d9f74SJames Wright./navierstokes -problem shocktube -yzb -stab su -bc_symmetry_z 3,4 -bc_symmetry_y 1,2 -bc_wall 5,6 -dm_plex_dim 3 -dm_plex_box_lower 0,0,0 -dm_plex_box_upper 1000,100,100 -dm_plex_box_faces 200,1,1 -units_second 0.1 544965d9f74SJames Wright``` 545965d9f74SJames Wright 546965d9f74SJames Wright## Newtonian viscosity, Ideal Gas 547965d9f74SJames Wright 548965d9f74SJames WrightFor the Density Current, Channel, and Blasius problems, the following common command-line options are available: 549965d9f74SJames Wright 550965d9f74SJames Wright:::{list-table} Newtonian Ideal Gas problems Runtime Options 551965d9f74SJames Wright:header-rows: 1 552965d9f74SJames Wright 553965d9f74SJames Wright* - Option 554965d9f74SJames Wright - Description 555965d9f74SJames Wright - Default value 556965d9f74SJames Wright - Unit 557965d9f74SJames Wright 558965d9f74SJames Wright* - `-units_meter` 559965d9f74SJames Wright - 1 meter in scaled length units 560965d9f74SJames Wright - `1` 561965d9f74SJames Wright - 562965d9f74SJames Wright 563965d9f74SJames Wright* - `-units_second` 564965d9f74SJames Wright - 1 second in scaled time units 565965d9f74SJames Wright - `1` 566965d9f74SJames Wright - 567965d9f74SJames Wright 568965d9f74SJames Wright* - `-units_kilogram` 569965d9f74SJames Wright - 1 kilogram in scaled mass units 570965d9f74SJames Wright - `1` 571965d9f74SJames Wright - 572965d9f74SJames Wright 573965d9f74SJames Wright* - `-units_Kelvin` 574965d9f74SJames Wright - 1 Kelvin in scaled temperature units 575965d9f74SJames Wright - `1` 576965d9f74SJames Wright - 577965d9f74SJames Wright 578965d9f74SJames Wright* - `-stab` 579965d9f74SJames Wright - Stabilization method (`none`, `su`, or `supg`) 580965d9f74SJames Wright - `none` 581965d9f74SJames Wright - 582965d9f74SJames Wright 583965d9f74SJames Wright* - `-c_tau` 584965d9f74SJames Wright - Stabilization constant, $c_\tau$ 585965d9f74SJames Wright - `0.5` 586965d9f74SJames Wright - 587965d9f74SJames Wright 588965d9f74SJames Wright* - `-Ctau_t` 589965d9f74SJames Wright - Stabilization time constant, $C_t$ 590965d9f74SJames Wright - `1.0` 591965d9f74SJames Wright - 592965d9f74SJames Wright 593965d9f74SJames Wright* - `-Ctau_v` 594965d9f74SJames Wright - Stabilization viscous constant, $C_v$ 595965d9f74SJames Wright - `36, 60, 128 for degree = 1, 2, 3` 596965d9f74SJames Wright - 597965d9f74SJames Wright 598965d9f74SJames Wright* - `-Ctau_C` 599965d9f74SJames Wright - Stabilization continuity constant, $C_c$ 600965d9f74SJames Wright - `1.0` 601965d9f74SJames Wright - 602965d9f74SJames Wright 603965d9f74SJames Wright* - `-Ctau_M` 604965d9f74SJames Wright - Stabilization momentum constant, $C_m$ 605965d9f74SJames Wright - `1.0` 606965d9f74SJames Wright - 607965d9f74SJames Wright 608965d9f74SJames Wright* - `-Ctau_E` 609965d9f74SJames Wright - Stabilization energy constant, $C_E$ 610965d9f74SJames Wright - `1.0` 611965d9f74SJames Wright - 612965d9f74SJames Wright 613cbdfeaf4SJames Wright* - `-div_diff_flux_projection_method` 614cbdfeaf4SJames Wright - Method used to calculate divergence of diffusive flux projection (`none`, `direct`, or `indirect`) 615cbdfeaf4SJames Wright - `none` 616cbdfeaf4SJames Wright - 617cbdfeaf4SJames Wright 618cbdfeaf4SJames Wright* - `-div_diff_flux_projection_ksp*` 619cbdfeaf4SJames Wright - Control the KSP object for the projection of the divergence of diffusive flux 620cbdfeaf4SJames Wright - N/A 621cbdfeaf4SJames Wright - 622cbdfeaf4SJames Wright 623965d9f74SJames Wright* - `-cv` 624965d9f74SJames Wright - Heat capacity at constant volume 625965d9f74SJames Wright - `717` 626965d9f74SJames Wright - `J/(kg K)` 627965d9f74SJames Wright 628965d9f74SJames Wright* - `-cp` 629965d9f74SJames Wright - Heat capacity at constant pressure 630965d9f74SJames Wright - `1004` 631965d9f74SJames Wright - `J/(kg K)` 632965d9f74SJames Wright 633965d9f74SJames Wright* - `-gravity` 634965d9f74SJames Wright - Gravitational acceleration vector 635965d9f74SJames Wright - `0,0,0` 636965d9f74SJames Wright - `m/s^2` 637965d9f74SJames Wright 638965d9f74SJames Wright* - `-lambda` 639965d9f74SJames Wright - Stokes hypothesis second viscosity coefficient 640965d9f74SJames Wright - `-2/3` 641965d9f74SJames Wright - 642965d9f74SJames Wright 643965d9f74SJames Wright* - `-mu` 644965d9f74SJames Wright - Shear dynamic viscosity coefficient 645965d9f74SJames Wright - `1.8e-5` 646965d9f74SJames Wright - `Pa s` 647965d9f74SJames Wright 648965d9f74SJames Wright* - `-k` 649965d9f74SJames Wright - Thermal conductivity 650965d9f74SJames Wright - `0.02638` 651965d9f74SJames Wright - `W/(m K)` 652965d9f74SJames Wright 653965d9f74SJames Wright* - `-newtonian_unit_tests` 654965d9f74SJames Wright - Developer option to test properties 655965d9f74SJames Wright - `false` 656965d9f74SJames Wright - boolean 657965d9f74SJames Wright 658965d9f74SJames Wright* - `-state_var` 659965d9f74SJames Wright - State variables to solve solution with. `conservative` ($\rho, \rho \bm{u}, \rho e$), `primitive` ($P, \bm{u}, T$), or `entropy` ($\frac{\gamma - s}{\gamma - 1} - \frac{\rho}{P} (e - c_v T),\ \frac{\rho}{P} \bm{u},\ -\frac{\rho}{P}$) where $s = \ln(P\rho^{-\gamma})$ 660965d9f74SJames Wright - `conservative` 661965d9f74SJames Wright - string 662965d9f74SJames Wright 663965d9f74SJames Wright* - `-idl_decay_time` 664965d9f74SJames Wright - Characteristic timescale of the pressure deviance decay. The timestep is good starting point 665965d9f74SJames Wright - `-1` (disabled) 666965d9f74SJames Wright - `s` 667965d9f74SJames Wright 668965d9f74SJames Wright* - `-idl_start` 669965d9f74SJames Wright - Start of IDL in the x direction 670965d9f74SJames Wright - `0` 671965d9f74SJames Wright - `m` 672965d9f74SJames Wright 673965d9f74SJames Wright* - `-idl_length` 674965d9f74SJames Wright - Length of IDL in the positive x direction 675965d9f74SJames Wright - `0` 676965d9f74SJames Wright - `m` 677965d9f74SJames Wright 678965d9f74SJames Wright* - `-idl_pressure` 679965d9f74SJames Wright - Pressure used for IDL reference pressure 680965d9f74SJames Wright - `-reference_pressure` 681965d9f74SJames Wright - `Pa` 682965d9f74SJames Wright 683965d9f74SJames Wright* - `-sgs_model_type` 684965d9f74SJames Wright - Type of subgrid stress model to use. Currently only `data_driven` is available 685965d9f74SJames Wright - `none` 686965d9f74SJames Wright - string 687965d9f74SJames Wright 688965d9f74SJames Wright* - `-sgs_model_dd_leakyrelu_alpha` 689965d9f74SJames Wright - Slope parameter for Leaky ReLU activation function. `0` corresponds to normal ReLU 690965d9f74SJames Wright - 0 691965d9f74SJames Wright - 692965d9f74SJames Wright 693965d9f74SJames Wright* - `-sgs_model_dd_parameter_dir` 694965d9f74SJames Wright - Path to directory with data-driven model parameters (weights, biases, etc.) 695965d9f74SJames Wright - `./dd_sgs_parameters` 696965d9f74SJames Wright - string 697965d9f74SJames Wright 698965d9f74SJames Wright* - `-sgs_model_dd_model_implementation` 699965d9f74SJames Wright - Which computational implementation to use for SGS DD model (`fused`, `sequential_ceed`, `sequential_torch`) 700965d9f74SJames Wright - `fused` 701965d9f74SJames Wright - string 702965d9f74SJames Wright 703965d9f74SJames Wright* - `-sgs_model_dd_torch_model_path` 704965d9f74SJames Wright - Path to the PyTorch `*.pt` file containing the DD inference model 705965d9f74SJames Wright - 706965d9f74SJames Wright - string 707965d9f74SJames Wright 708965d9f74SJames Wright* - `-sgs_model_dd_torch_model_device` 709965d9f74SJames Wright - What hardware to perform the model inference on (`cpu`, `cuda`, `hip`, `xpu`) 710965d9f74SJames Wright - Default matches the libCEED backend 711965d9f74SJames Wright - string 712965d9f74SJames Wright 713965d9f74SJames Wright* - `-diff_filter_monitor` 714965d9f74SJames Wright - Enable differential filter TSMonitor 715965d9f74SJames Wright - `false` 716965d9f74SJames Wright - boolean 717965d9f74SJames Wright 718965d9f74SJames Wright* - `-diff_filter_grid_based_width` 719965d9f74SJames Wright - Use filter width based on the grid size 720965d9f74SJames Wright - `false` 721965d9f74SJames Wright - boolean 722965d9f74SJames Wright 723965d9f74SJames Wright* - `-diff_filter_width_scaling` 724965d9f74SJames Wright - Anisotropic scaling for filter width in wall-aligned coordinates (snz) 725965d9f74SJames Wright - `1,1,1` 726965d9f74SJames Wright - `m` 727965d9f74SJames Wright 728965d9f74SJames Wright* - `-diff_filter_kernel_scaling` 729965d9f74SJames Wright - Scaling to make differential kernel size equivalent to other filter kernels 730965d9f74SJames Wright - `0.1` 731965d9f74SJames Wright - `m^2` 732965d9f74SJames Wright 733965d9f74SJames Wright* - `-diff_filter_wall_damping_function` 734965d9f74SJames Wright - Damping function to use at the wall for anisotropic filtering (`none`, `van_driest`) 735965d9f74SJames Wright - `none` 736965d9f74SJames Wright - string 737965d9f74SJames Wright 738965d9f74SJames Wright* - `-diff_filter_wall_damping_constant` 739965d9f74SJames Wright - Constant for the wall-damping function. $A^+$ for `van_driest` damping function. 740965d9f74SJames Wright - 25 741965d9f74SJames Wright - 742965d9f74SJames Wright 743965d9f74SJames Wright* - `-diff_filter_friction_length` 744965d9f74SJames Wright - Friction length associated with the flow, $\delta_\nu$. Used in wall-damping functions 745965d9f74SJames Wright - 0 746965d9f74SJames Wright - `m` 747965d9f74SJames Wright 748965d9f74SJames Wright* - `-sgs_train_enable` 749965d9f74SJames Wright - Whether to enable *in situ* training of data-driven SGS model. Require building with SmartRedis. 750965d9f74SJames Wright - `false` 751965d9f74SJames Wright - boolean 752965d9f74SJames Wright 753965d9f74SJames Wright* - `-sgs_train_write_data_interval` 754965d9f74SJames Wright - Number of timesteps between writing training data into SmartRedis database 755965d9f74SJames Wright - `1` 756965d9f74SJames Wright - 757965d9f74SJames Wright 758965d9f74SJames Wright* - `-sgs_train_overwrite_data` 759965d9f74SJames Wright - Whether new training data should overwrite old data on database 760965d9f74SJames Wright - `true` 761965d9f74SJames Wright - boolean 762965d9f74SJames Wright 763965d9f74SJames Wright* - `-sgs_train_filter_widths` 764965d9f74SJames Wright - List of scalar values for different filter widths to calculate for training data 765965d9f74SJames Wright - 766965d9f74SJames Wright - `m` 767965d9f74SJames Wright 768965d9f74SJames Wright* - `-smartsim_collocated_num_ranks` 769965d9f74SJames Wright - Number of MPI ranks associated with each collocated database (i.e. ranks per node) 770965d9f74SJames Wright - `1` 771965d9f74SJames Wright - 772965d9f74SJames Wright::: 773965d9f74SJames Wright 774965d9f74SJames Wright### Gaussian Wave 775965d9f74SJames Wright 776965d9f74SJames WrightThe Gaussian wave problem has the following command-line options in addition to the Newtonian Ideal Gas options: 777965d9f74SJames Wright 778965d9f74SJames Wright:::{list-table} Gaussian Wave Runtime Options 779965d9f74SJames Wright:header-rows: 1 780965d9f74SJames Wright 781965d9f74SJames Wright* - Option 782965d9f74SJames Wright - Description 783965d9f74SJames Wright - Default value 784965d9f74SJames Wright - Unit 785965d9f74SJames Wright 786965d9f74SJames Wright* - `-freestream_riemann` 787965d9f74SJames Wright - Riemann solver for boundaries (HLL or HLLC) 788965d9f74SJames Wright - `hllc` 789965d9f74SJames Wright - 790965d9f74SJames Wright 791965d9f74SJames Wright* - `-freestream_velocity` 792965d9f74SJames Wright - Freestream velocity vector 793965d9f74SJames Wright - `0,0,0` 794965d9f74SJames Wright - `m/s` 795965d9f74SJames Wright 796965d9f74SJames Wright* - `-freestream_temperature` 797965d9f74SJames Wright - Freestream temperature 798965d9f74SJames Wright - `288` 799965d9f74SJames Wright - `K` 800965d9f74SJames Wright 801965d9f74SJames Wright* - `-freestream_pressure` 802965d9f74SJames Wright - Freestream pressure 803965d9f74SJames Wright - `1.01e5` 804965d9f74SJames Wright - `Pa` 805965d9f74SJames Wright 806965d9f74SJames Wright* - `-epicenter` 807965d9f74SJames Wright - Coordinates of center of perturbation 808965d9f74SJames Wright - `0,0,0` 809965d9f74SJames Wright - `m` 810965d9f74SJames Wright 811965d9f74SJames Wright* - `-amplitude` 812965d9f74SJames Wright - Amplitude of the perturbation 813965d9f74SJames Wright - `0.1` 814965d9f74SJames Wright - 815965d9f74SJames Wright 816965d9f74SJames Wright* - `-width` 817965d9f74SJames Wright - Width parameter of the perturbation 818965d9f74SJames Wright - `0.002` 819965d9f74SJames Wright - `m` 820965d9f74SJames Wright 821965d9f74SJames Wright::: 822965d9f74SJames Wright 823fc37ad8cSJames WrightThis problem can be run with the `examples/gaussianwave.yaml` file via: 824965d9f74SJames Wright 825965d9f74SJames Wright``` 826fc37ad8cSJames Wright./build/navierstokes -options_file examples/gaussianwave.yaml 827965d9f74SJames Wright``` 828965d9f74SJames Wright 829fc37ad8cSJames Wright```{literalinclude} ../examples/gaussianwave.yaml 830965d9f74SJames Wright:language: yaml 831965d9f74SJames Wright``` 832965d9f74SJames Wright 833965d9f74SJames Wright### Vortex Shedding - Flow past Cylinder 834965d9f74SJames Wright 835965d9f74SJames WrightThe vortex shedding, flow past cylinder problem has the following command-line options in addition to the Newtonian Ideal Gas options: 836965d9f74SJames Wright 837965d9f74SJames Wright:::{list-table} Vortex Shedding Runtime Options 838965d9f74SJames Wright:header-rows: 1 839965d9f74SJames Wright 840965d9f74SJames Wright* - Option 841965d9f74SJames Wright - Description 842965d9f74SJames Wright - Default value 843965d9f74SJames Wright - Unit 844965d9f74SJames Wright 845965d9f74SJames Wright* - `-freestream_velocity` 846965d9f74SJames Wright - Freestream velocity vector 847965d9f74SJames Wright - `0,0,0` 848965d9f74SJames Wright - `m/s` 849965d9f74SJames Wright 850965d9f74SJames Wright* - `-freestream_temperature` 851965d9f74SJames Wright - Freestream temperature 852965d9f74SJames Wright - `288` 853965d9f74SJames Wright - `K` 854965d9f74SJames Wright 855965d9f74SJames Wright* - `-freestream_pressure` 856965d9f74SJames Wright - Freestream pressure 857965d9f74SJames Wright - `1.01e5` 858965d9f74SJames Wright - `Pa` 859965d9f74SJames Wright 860965d9f74SJames Wright::: 861965d9f74SJames Wright 862965d9f74SJames WrightThe initial condition is taken from `-reference_temperature` and `-reference_pressure`. 863965d9f74SJames WrightTo run this problem, first generate a mesh: 864965d9f74SJames Wright 865965d9f74SJames Wright```console 866fc37ad8cSJames Wright$ make -C examples/meshes 867965d9f74SJames Wright``` 868965d9f74SJames Wright 869965d9f74SJames WrightThen run by building the executable and running: 870965d9f74SJames Wright 871965d9f74SJames Wright```console 872fc37ad8cSJames Wright$ make -j 873fc37ad8cSJames Wright$ mpiexec -n 6 build/navierstokes -options_file examples/vortexshedding.yaml -{ts,snes}_monitor_ 874965d9f74SJames Wright``` 875965d9f74SJames Wright 876965d9f74SJames WrightThe vortex shedding period is roughly 5.6 and this problem runs until time 100 (2000 time steps). 877fc37ad8cSJames WrightThe above run writes a file named `force.csv` (see `ts_monitor_wall_force` in `examples/vortexshedding.yaml`), which can be postprocessed by running to create a figure showing lift and drag coefficients over time. 878965d9f74SJames Wright 879965d9f74SJames Wright```console 880965d9f74SJames Wright$ python postprocess/vortexshedding.py 881965d9f74SJames Wright``` 882965d9f74SJames Wright 883fc37ad8cSJames Wright```{literalinclude} ../examples/vortexshedding.yaml 884965d9f74SJames Wright:language: yaml 885965d9f74SJames Wright``` 886965d9f74SJames Wright 887965d9f74SJames Wright### Density current 888965d9f74SJames Wright 889965d9f74SJames WrightThe Density Current problem has the following command-line options in addition to the Newtonian Ideal Gas options: 890965d9f74SJames Wright 891965d9f74SJames Wright:::{list-table} Density Current Runtime Options 892965d9f74SJames Wright:header-rows: 1 893965d9f74SJames Wright 894965d9f74SJames Wright* - Option 895965d9f74SJames Wright - Description 896965d9f74SJames Wright - Default value 897965d9f74SJames Wright - Unit 898965d9f74SJames Wright 899965d9f74SJames Wright* - `-center` 900965d9f74SJames Wright - Location of bubble center 901965d9f74SJames Wright - `(lx,ly,lz)/2` 902965d9f74SJames Wright - `(m,m,m)` 903965d9f74SJames Wright 904965d9f74SJames Wright* - `-dc_axis` 905965d9f74SJames Wright - Axis of density current cylindrical anomaly, or `(0,0,0)` for spherically symmetric 906965d9f74SJames Wright - `(0,0,0)` 907965d9f74SJames Wright - 908965d9f74SJames Wright 909965d9f74SJames Wright* - `-rc` 910965d9f74SJames Wright - Characteristic radius of thermal bubble 911965d9f74SJames Wright - `1000` 912965d9f74SJames Wright - `m` 913965d9f74SJames Wright 914965d9f74SJames Wright* - `-theta0` 915965d9f74SJames Wright - Reference potential temperature 916965d9f74SJames Wright - `300` 917965d9f74SJames Wright - `K` 918965d9f74SJames Wright 919965d9f74SJames Wright* - `-thetaC` 920965d9f74SJames Wright - Perturbation of potential temperature 921965d9f74SJames Wright - `-15` 922965d9f74SJames Wright - `K` 923965d9f74SJames Wright 924965d9f74SJames Wright* - `-P0` 925965d9f74SJames Wright - Atmospheric pressure 926965d9f74SJames Wright - `1E5` 927965d9f74SJames Wright - `Pa` 928965d9f74SJames Wright 929965d9f74SJames Wright* - `-N` 930965d9f74SJames Wright - Brunt-Vaisala frequency 931965d9f74SJames Wright - `0.01` 932965d9f74SJames Wright - `1/s` 933965d9f74SJames Wright::: 934965d9f74SJames Wright 935965d9f74SJames WrightThis problem can be run with: 936965d9f74SJames Wright 937965d9f74SJames Wright``` 938965d9f74SJames Wright./navierstokes -problem density_current -dm_plex_box_faces 16,1,8 -degree 1 -dm_plex_box_lower 0,0,0 -dm_plex_box_upper 2000,125,1000 -dm_plex_dim 3 -rc 400. -bc_wall 1,2,5,6 -wall_comps 1,2,3 -bc_symmetry_y 3,4 -mu 75 939965d9f74SJames Wright``` 940965d9f74SJames Wright 941965d9f74SJames Wright### Channel flow 942965d9f74SJames Wright 943965d9f74SJames WrightThe Channel problem has the following command-line options in addition to the Newtonian Ideal Gas options: 944965d9f74SJames Wright 945965d9f74SJames Wright:::{list-table} Channel Runtime Options 946965d9f74SJames Wright:header-rows: 1 947965d9f74SJames Wright 948965d9f74SJames Wright* - Option 949965d9f74SJames Wright - Description 950965d9f74SJames Wright - Default value 951965d9f74SJames Wright - Unit 952965d9f74SJames Wright 953965d9f74SJames Wright* - `-umax` 954965d9f74SJames Wright - Maximum/centerline velocity of the flow 955965d9f74SJames Wright - `10` 956965d9f74SJames Wright - `m/s` 957965d9f74SJames Wright 958965d9f74SJames Wright* - `-theta0` 959965d9f74SJames Wright - Reference potential temperature 960965d9f74SJames Wright - `300` 961965d9f74SJames Wright - `K` 962965d9f74SJames Wright 963965d9f74SJames Wright* - `-P0` 964965d9f74SJames Wright - Atmospheric pressure 965965d9f74SJames Wright - `1E5` 966965d9f74SJames Wright - `Pa` 967965d9f74SJames Wright 968965d9f74SJames Wright* - `-body_force_scale` 969965d9f74SJames Wright - Multiplier for body force (`-1` for flow reversal) 970965d9f74SJames Wright - 1 971965d9f74SJames Wright - 972965d9f74SJames Wright::: 973965d9f74SJames Wright 974fc37ad8cSJames WrightThis problem can be run with the `examples/channel.yaml` file via: 975965d9f74SJames Wright 976965d9f74SJames Wright``` 977fc37ad8cSJames Wright./build/navierstokes -options_file examples/channel.yaml 978965d9f74SJames Wright``` 979fc37ad8cSJames Wright```{literalinclude} ../examples/channel.yaml 980965d9f74SJames Wright:language: yaml 981965d9f74SJames Wright``` 982965d9f74SJames Wright 983965d9f74SJames Wright(example-blasius)= 984965d9f74SJames Wright 985965d9f74SJames Wright### Blasius boundary layer 986965d9f74SJames Wright 987965d9f74SJames WrightThe Blasius problem has the following command-line options in addition to the Newtonian Ideal Gas options: 988965d9f74SJames Wright 989965d9f74SJames Wright:::{list-table} Blasius Runtime Options 990965d9f74SJames Wright:header-rows: 1 991965d9f74SJames Wright 992965d9f74SJames Wright* - Option 993965d9f74SJames Wright - Description 994965d9f74SJames Wright - Default value 995965d9f74SJames Wright - Unit 996965d9f74SJames Wright 997965d9f74SJames Wright* - `-velocity_infinity` 998965d9f74SJames Wright - Freestream velocity 999965d9f74SJames Wright - `40` 1000965d9f74SJames Wright - `m/s` 1001965d9f74SJames Wright 1002965d9f74SJames Wright* - `-temperature_infinity` 1003965d9f74SJames Wright - Freestream temperature 1004965d9f74SJames Wright - `288` 1005965d9f74SJames Wright - `K` 1006965d9f74SJames Wright 1007965d9f74SJames Wright* - `-pressure_infinity` 1008965d9f74SJames Wright - Atmospheric pressure, also sets IDL reference pressure 1009965d9f74SJames Wright - `1.01E5` 1010965d9f74SJames Wright - `Pa` 1011965d9f74SJames Wright 1012965d9f74SJames Wright* - `-temperature_wall` 1013965d9f74SJames Wright - Wall temperature 1014965d9f74SJames Wright - `288` 1015965d9f74SJames Wright - `K` 1016965d9f74SJames Wright 1017965d9f74SJames Wright* - `-delta0` 1018965d9f74SJames Wright - Boundary layer height at the inflow 1019965d9f74SJames Wright - `4.2e-3` 1020965d9f74SJames Wright - `m` 1021965d9f74SJames Wright 1022965d9f74SJames Wright* - `-platemesh_modify_mesh` 1023965d9f74SJames Wright - Whether to modify the mesh using the given options below. 1024965d9f74SJames Wright - `false` 1025965d9f74SJames Wright - 1026965d9f74SJames Wright 1027965d9f74SJames Wright* - `-platemesh_refine_height` 1028965d9f74SJames Wright - Height at which `-platemesh_Ndelta` number of elements should refined into 1029965d9f74SJames Wright - `5.9E-4` 1030965d9f74SJames Wright - `m` 1031965d9f74SJames Wright 1032965d9f74SJames Wright* - `-platemesh_Ndelta` 1033965d9f74SJames Wright - Number of elements to keep below `-platemesh_refine_height` 1034965d9f74SJames Wright - `45` 1035965d9f74SJames Wright - 1036965d9f74SJames Wright 1037965d9f74SJames Wright* - `-platemesh_growth` 1038965d9f74SJames Wright - Growth rate of the elements in the refinement region 1039965d9f74SJames Wright - `1.08` 1040965d9f74SJames Wright - 1041965d9f74SJames Wright 1042965d9f74SJames Wright* - `-platemesh_top_angle` 1043965d9f74SJames Wright - Downward angle of the top face of the domain. This face serves as an outlet. 1044965d9f74SJames Wright - `5` 1045965d9f74SJames Wright - `degrees` 1046965d9f74SJames Wright 1047965d9f74SJames Wright* - `-platemesh_y_node_locs_path` 1048965d9f74SJames Wright - Path to file with y node locations. If empty, will use mesh warping instead. 1049965d9f74SJames Wright - `""` 1050965d9f74SJames Wright - 1051965d9f74SJames Wright 1052965d9f74SJames Wright* - `-stg_use` 1053965d9f74SJames Wright - Whether to use STG for the inflow conditions 1054965d9f74SJames Wright - `false` 1055965d9f74SJames Wright - 1056965d9f74SJames Wright 1057965d9f74SJames Wright* - `-n_chebyshev` 1058965d9f74SJames Wright - Number of Chebyshev terms 1059965d9f74SJames Wright - `20` 1060965d9f74SJames Wright - 1061965d9f74SJames Wright 1062965d9f74SJames Wright* - `-chebyshev_` 1063965d9f74SJames Wright - Prefix for Chebyshev snes solve 1064965d9f74SJames Wright - 1065965d9f74SJames Wright - 1066965d9f74SJames Wright 1067965d9f74SJames Wright::: 1068965d9f74SJames Wright 1069fc37ad8cSJames WrightThis problem can be run with the `examples/blasius.yaml` file via: 1070965d9f74SJames Wright 1071965d9f74SJames Wright``` 1072fc37ad8cSJames Wright./build/navierstokes -options_file examples/blasius.yaml 1073965d9f74SJames Wright``` 1074965d9f74SJames Wright 1075fc37ad8cSJames Wright```{literalinclude} ../examples/blasius.yaml 1076965d9f74SJames Wright:language: yaml 1077965d9f74SJames Wright``` 1078965d9f74SJames Wright 1079965d9f74SJames Wright### STG Inflow for Flat Plate 1080965d9f74SJames Wright 1081965d9f74SJames WrightUsing the STG Inflow for the blasius problem adds the following command-line options: 1082965d9f74SJames Wright 1083965d9f74SJames Wright:::{list-table} Blasius Runtime Options 1084965d9f74SJames Wright:header-rows: 1 1085965d9f74SJames Wright 1086965d9f74SJames Wright* - Option 1087965d9f74SJames Wright - Description 1088965d9f74SJames Wright - Default value 1089965d9f74SJames Wright - Unit 1090965d9f74SJames Wright 1091965d9f74SJames Wright* - `-stg_inflow_path` 1092965d9f74SJames Wright - Path to the STGInflow file 1093965d9f74SJames Wright - `./STGInflow.dat` 1094965d9f74SJames Wright - 1095965d9f74SJames Wright 1096965d9f74SJames Wright* - `-stg_rand_path` 1097965d9f74SJames Wright - Path to the STGRand file 1098965d9f74SJames Wright - `./STGRand.dat` 1099965d9f74SJames Wright - 1100965d9f74SJames Wright 1101965d9f74SJames Wright* - `-stg_alpha` 1102965d9f74SJames Wright - Growth rate of the wavemodes 1103965d9f74SJames Wright - `1.01` 1104965d9f74SJames Wright - 1105965d9f74SJames Wright 1106965d9f74SJames Wright* - `-stg_u0` 1107965d9f74SJames Wright - Convective velocity, $U_0$ 1108965d9f74SJames Wright - `0.0` 1109965d9f74SJames Wright - `m/s` 1110965d9f74SJames Wright 1111965d9f74SJames Wright* - `-stg_mean_only` 1112965d9f74SJames Wright - Only impose the mean velocity (no fluctutations) 1113965d9f74SJames Wright - `false` 1114965d9f74SJames Wright - 1115965d9f74SJames Wright 1116965d9f74SJames Wright* - `-stg_strong` 1117965d9f74SJames Wright - Strongly enforce the STG inflow boundary condition 1118965d9f74SJames Wright - `false` 1119965d9f74SJames Wright - 1120965d9f74SJames Wright 1121965d9f74SJames Wright* - `-stg_fluctuating_IC` 1122965d9f74SJames Wright - "Extrude" the fluctuations through the domain as an initial condition 1123965d9f74SJames Wright - `false` 1124965d9f74SJames Wright - 1125965d9f74SJames Wright 1126965d9f74SJames Wright* - `-stg_dx` 1127965d9f74SJames Wright - Set the element size in the x direction. Default is calculated for box meshes, assuming equispaced elements. 1128965d9f74SJames Wright - 1129965d9f74SJames Wright - `m` 1130965d9f74SJames Wright 1131965d9f74SJames Wright* - `-stg_h_scale_factor` 1132965d9f74SJames Wright - Scale element size for cutoff frequency calculation 1133965d9f74SJames Wright - $1/p$ 1134965d9f74SJames Wright - 1135965d9f74SJames Wright 1136965d9f74SJames Wright::: 1137965d9f74SJames Wright 1138fc37ad8cSJames WrightThis problem can be run with the `examples/blasius.yaml` file via: 1139965d9f74SJames Wright 1140965d9f74SJames Wright``` 1141fc37ad8cSJames Wright./build/navierstokes -options_file examples/blasius.yaml -stg_use true 1142965d9f74SJames Wright``` 1143965d9f74SJames Wright 1144965d9f74SJames WrightNote the added `-stg_use true` flag 1145fc37ad8cSJames WrightThis overrides the `stg: use: false` setting in the `examples/blasius.yaml` file, enabling the use of the STG inflow. 1146