OpenMC/tests/unit_tests/test_settings.py
Xinyan Wang 9cf2f22f24
Apply Weight Window Upon Surface Crossing (#2670)
Co-authored-by: Patrick Shriwise <pshriwise@gmail.com>
Co-authored-by: Paul Romano <paul.k.romano@gmail.com>
2023-09-26 05:03:49 +00:00

130 lines
5.7 KiB
Python

import openmc
import openmc.stats
def test_export_to_xml(run_in_tmpdir):
s = openmc.Settings(run_mode='fixed source', batches=1000, seed=17)
s.generations_per_batch = 10
s.inactive = 100
s.particles = 1000000
s.max_lost_particles = 5
s.rel_max_lost_particles = 1e-4
s.keff_trigger = {'type': 'std_dev', 'threshold': 0.001}
s.energy_mode = 'continuous-energy'
s.max_order = 5
s.max_tracks = 1234
s.source = openmc.IndependentSource(space=openmc.stats.Point())
s.output = {'summary': True, 'tallies': False, 'path': 'here'}
s.verbosity = 7
s.sourcepoint = {'batches': [50, 150, 500, 1000], 'separate': True,
'write': True, 'overwrite': True, 'mcpl': True}
s.statepoint = {'batches': [50, 150, 500, 1000]}
s.surf_source_read = {'path': 'surface_source_1.h5'}
s.surf_source_write = {'surface_ids': [2], 'max_particles': 200}
s.confidence_intervals = True
s.ptables = True
s.plot_seed = 100
s.survival_biasing = True
s.cutoff = {'weight': 0.25, 'weight_avg': 0.5, 'energy_neutron': 1.0e-5,
'energy_photon': 1000.0, 'energy_electron': 1.0e-5,
'energy_positron': 1.0e-5, 'time_neutron': 1.0e-5,
'time_photon': 1.0e-5, 'time_electron': 1.0e-5,
'time_positron': 1.0e-5}
mesh = openmc.RegularMesh()
mesh.lower_left = (-10., -10., -10.)
mesh.upper_right = (10., 10., 10.)
mesh.dimension = (5, 5, 5)
s.entropy_mesh = mesh
s.trigger_active = True
s.trigger_max_batches = 10000
s.trigger_batch_interval = 50
s.no_reduce = False
s.tabular_legendre = {'enable': True, 'num_points': 50}
s.temperature = {'default': 293.6, 'method': 'interpolation',
'multipole': True, 'range': (200., 1000.)}
s.trace = (10, 1, 20)
s.track = [(1, 1, 1), (2, 1, 1)]
s.ufs_mesh = mesh
s.resonance_scattering = {'enable': True, 'method': 'rvs',
'energy_min': 1.0, 'energy_max': 1000.0,
'nuclides': ['U235', 'U238', 'Pu239']}
s.volume_calculations = openmc.VolumeCalculation(
domains=[openmc.Cell()], samples=1000, lower_left=(-10., -10., -10.),
upper_right = (10., 10., 10.))
s.create_fission_neutrons = True
s.create_delayed_neutrons = False
s.log_grid_bins = 2000
s.photon_transport = False
s.electron_treatment = 'led'
s.write_initial_source = True
s.weight_window_checkpoints = {'surface': True, 'collision': False}
# Make sure exporting XML works
s.export_to_xml()
# Generate settings from XML
s = openmc.Settings.from_xml()
assert s.run_mode == 'fixed source'
assert s.batches == 1000
assert s.generations_per_batch == 10
assert s.inactive == 100
assert s.particles == 1000000
assert s.max_lost_particles == 5
assert s.rel_max_lost_particles == 1e-4
assert s.keff_trigger == {'type': 'std_dev', 'threshold': 0.001}
assert s.energy_mode == 'continuous-energy'
assert s.max_order == 5
assert s.max_tracks == 1234
assert isinstance(s.source[0], openmc.IndependentSource)
assert isinstance(s.source[0].space, openmc.stats.Point)
assert s.output == {'summary': True, 'tallies': False, 'path': 'here'}
assert s.verbosity == 7
assert s.sourcepoint == {'batches': [50, 150, 500, 1000], 'separate': True,
'write': True, 'overwrite': True, 'mcpl': True}
assert s.statepoint == {'batches': [50, 150, 500, 1000]}
assert s.surf_source_read == {'path': 'surface_source_1.h5'}
assert s.surf_source_write == {'surface_ids': [2], 'max_particles': 200}
assert s.confidence_intervals
assert s.ptables
assert s.plot_seed == 100
assert s.seed == 17
assert s.survival_biasing
assert s.cutoff == {'weight': 0.25, 'weight_avg': 0.5,
'energy_neutron': 1.0e-5, 'energy_photon': 1000.0,
'energy_electron': 1.0e-5, 'energy_positron': 1.0e-5,
'time_neutron': 1.0e-5, 'time_photon': 1.0e-5,
'time_electron': 1.0e-5, 'time_positron': 1.0e-5}
assert isinstance(s.entropy_mesh, openmc.RegularMesh)
assert s.entropy_mesh.lower_left == [-10., -10., -10.]
assert s.entropy_mesh.upper_right == [10., 10., 10.]
assert s.entropy_mesh.dimension == (5, 5, 5)
assert s.trigger_active
assert s.trigger_max_batches == 10000
assert s.trigger_batch_interval == 50
assert not s.no_reduce
assert s.tabular_legendre == {'enable': True, 'num_points': 50}
assert s.temperature == {'default': 293.6, 'method': 'interpolation',
'multipole': True, 'range': [200., 1000.]}
assert s.trace == [10, 1, 20]
assert s.track == [(1, 1, 1), (2, 1, 1)]
assert isinstance(s.ufs_mesh, openmc.RegularMesh)
assert s.ufs_mesh.lower_left == [-10., -10., -10.]
assert s.ufs_mesh.upper_right == [10., 10., 10.]
assert s.ufs_mesh.dimension == (5, 5, 5)
assert s.resonance_scattering == {'enable': True, 'method': 'rvs',
'energy_min': 1.0, 'energy_max': 1000.0,
'nuclides': ['U235', 'U238', 'Pu239']}
assert s.create_fission_neutrons
assert not s.create_delayed_neutrons
assert s.log_grid_bins == 2000
assert not s.photon_transport
assert s.electron_treatment == 'led'
assert s.write_initial_source == True
assert len(s.volume_calculations) == 1
vol = s.volume_calculations[0]
assert vol.domain_type == 'cell'
assert len(vol.ids) == 1
assert vol.samples == 1000
assert vol.lower_left == (-10., -10., -10.)
assert vol.upper_right == (10., 10., 10.)
assert s.weight_window_checkpoints == {'surface': True, 'collision': False}