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| 1 | +import festim as F |
| 2 | +import numpy as np |
| 3 | + |
| 4 | + |
| 5 | +def test_profile(): |
| 6 | + my_model = F.HydrogenTransportProblem() |
| 7 | + |
| 8 | + protium = F.Species("H") |
| 9 | + deuterium = F.Species("D") |
| 10 | + tritium = F.Species("T") |
| 11 | + my_model.species = [protium, deuterium, tritium] |
| 12 | + |
| 13 | + my_model.mesh = F.Mesh1D(np.linspace(0, 1, 100)) |
| 14 | + |
| 15 | + left_surf = F.SurfaceSubdomain1D(id=1, x=0) |
| 16 | + right_surf = F.SurfaceSubdomain1D(id=2, x=1) |
| 17 | + |
| 18 | + # assumes the same diffusivity for all species |
| 19 | + material = F.Material(D_0=1, E_D=0) |
| 20 | + |
| 21 | + vol = F.VolumeSubdomain1D(id=1, borders=[0, 1], material=material) |
| 22 | + |
| 23 | + my_model.subdomains = [vol, left_surf, right_surf] |
| 24 | + |
| 25 | + my_model.boundary_conditions = [ |
| 26 | + # Protium BCs |
| 27 | + F.FixedConcentrationBC(left_surf, value=10, species=protium), |
| 28 | + F.FixedConcentrationBC(right_surf, value=0, species=protium), |
| 29 | + # Deuterium BCs |
| 30 | + F.FixedConcentrationBC(left_surf, value=5, species=deuterium), |
| 31 | + F.FixedConcentrationBC(right_surf, value=0, species=deuterium), |
| 32 | + # Tritium BCs |
| 33 | + F.FixedConcentrationBC(left_surf, value=0, species=tritium), |
| 34 | + F.FixedConcentrationBC(right_surf, value=2, species=tritium), |
| 35 | + ] |
| 36 | + |
| 37 | + my_model.temperature = 300 |
| 38 | + |
| 39 | + my_model.settings = F.Settings(atol=1e-10, rtol=1e-10, final_time=5) |
| 40 | + |
| 41 | + my_model.settings.stepsize = F.Stepsize(1) |
| 42 | + |
| 43 | + my_model.exports = [ |
| 44 | + F.Profile1DExport(protium), |
| 45 | + F.Profile1DExport(deuterium), |
| 46 | + ] |
| 47 | + |
| 48 | + my_model.initialise() |
| 49 | + my_model.run() |
| 50 | + |
| 51 | + assert my_model.exports[0].x is not None |
| 52 | + assert my_model.exports[1].x is not None |
| 53 | + assert len(my_model.exports[0].data) > 0 |
| 54 | + assert len(my_model.exports[1].data) > 0 |
| 55 | + |
| 56 | + |
| 57 | +def test_profile_discontinuous(): |
| 58 | + my_model = F.HydrogenTransportProblemDiscontinuous() |
| 59 | + |
| 60 | + protium = F.Species("H") |
| 61 | + deuterium = F.Species("D") |
| 62 | + tritium = F.Species("T") |
| 63 | + my_model.species = [protium, deuterium, tritium] |
| 64 | + |
| 65 | + vertices_left = np.linspace(0, 0.5, 50) |
| 66 | + vertices_right = np.linspace(0.5, 1, 50) |
| 67 | + vertices = np.concatenate((vertices_left, vertices_right)) |
| 68 | + |
| 69 | + my_model.mesh = F.Mesh1D(vertices) |
| 70 | + |
| 71 | + left_surf = F.SurfaceSubdomain1D(id=1, x=0) |
| 72 | + right_surf = F.SurfaceSubdomain1D(id=2, x=1) |
| 73 | + |
| 74 | + # assumes the same diffusivity for all species |
| 75 | + material_left = F.Material(D_0=1, E_D=0, K_S_0=1, E_K_S=0) |
| 76 | + material_right = F.Material(D_0=1, E_D=0, K_S_0=2, E_K_S=0) |
| 77 | + |
| 78 | + vol1 = F.VolumeSubdomain1D(id=1, borders=[0, 0.5], material=material_left) |
| 79 | + vol2 = F.VolumeSubdomain1D(id=2, borders=[0.5, 1], material=material_right) |
| 80 | + |
| 81 | + my_model.interfaces = [ |
| 82 | + F.Interface(id=3, subdomains=[vol1, vol2], penalty_term=1000) |
| 83 | + ] |
| 84 | + |
| 85 | + my_model.subdomains = [vol1, vol2, left_surf, right_surf] |
| 86 | + |
| 87 | + for spe in my_model.species: |
| 88 | + spe.subdomains = [vol1, vol2] |
| 89 | + |
| 90 | + my_model.surface_to_volume = { |
| 91 | + left_surf: vol1, |
| 92 | + right_surf: vol2, |
| 93 | + } |
| 94 | + |
| 95 | + my_model.boundary_conditions = [ |
| 96 | + # Protium BCs |
| 97 | + F.FixedConcentrationBC(left_surf, value=10, species=protium), |
| 98 | + F.FixedConcentrationBC(right_surf, value=0, species=protium), |
| 99 | + # Deuterium BCs |
| 100 | + F.FixedConcentrationBC(left_surf, value=5, species=deuterium), |
| 101 | + F.FixedConcentrationBC(right_surf, value=0, species=deuterium), |
| 102 | + # Tritium BCs |
| 103 | + F.FixedConcentrationBC(left_surf, value=0, species=tritium), |
| 104 | + F.FixedConcentrationBC(right_surf, value=2, species=tritium), |
| 105 | + ] |
| 106 | + |
| 107 | + my_model.temperature = 300 |
| 108 | + |
| 109 | + my_model.settings = F.Settings(atol=1e-10, rtol=1e-10, final_time=0.5) |
| 110 | + |
| 111 | + my_model.settings.stepsize = F.Stepsize(0.1) |
| 112 | + |
| 113 | + my_model.exports = [ |
| 114 | + F.Profile1DExport(field=protium, subdomain=vol1), |
| 115 | + F.Profile1DExport(field=deuterium, subdomain=vol1), |
| 116 | + F.Profile1DExport(field=tritium, subdomain=vol1), |
| 117 | + F.Profile1DExport(field=protium, subdomain=vol2), |
| 118 | + F.Profile1DExport(field=deuterium, subdomain=vol2), |
| 119 | + F.Profile1DExport(field=tritium, subdomain=vol2), |
| 120 | + ] |
| 121 | + |
| 122 | + my_model.initialise() |
| 123 | + my_model.run() |
| 124 | + |
| 125 | + for export in my_model.exports: |
| 126 | + assert export.x is not None |
| 127 | + assert len(export.data) > 0 |
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