1 | #Test Name: SquareSheetHydrologyDCTwoLayers
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2 | import numpy as np
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3 | from model import *
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4 | from socket import gethostname
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5 | from triangle import *
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6 | from setmask import *
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7 | from parameterize import *
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8 | from transient import *
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9 | from setflowequation import *
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10 | from solve import *
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11 | from generic import generic
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12 |
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13 | md=triangle(model(),'../Exp/Square.exp',100000.)
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14 | md=setmask(md,'','')
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15 | md=parameterize(md,'../Par/IceCube.py')
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16 |
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17 | md.transient=transient.setallnullparameters(md.transient)
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18 | md.transient.ishydrology=True
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19 | #md.transient.issmb=True
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20 | md=setflowequation(md,'SSA','all')
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21 | md.cluster=generic('name',gethostname(),'np',1)
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22 | md.hydrology=hydrologydc()
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23 | md.hydrology=md.hydrology.initialize(md)
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24 |
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25 | md.hydrology.isefficientlayer=1
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26 | md.hydrology.sedimentlimit_flag=1
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27 | md.hydrology.sedimentlimit=800.0
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28 | md.hydrology.mask_thawed_node=np.ones((md.mesh.numberofvertices))
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29 | md.initialization.sediment_head=np.zeros((md.mesh.numberofvertices))
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30 | md.hydrology.spcsediment_head=np.nan*np.ones((md.mesh.numberofvertices))
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31 |
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32 | md.basalforcings.groundedice_melting_rate = 2.0*np.ones((md.mesh.numberofvertices))
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33 | md.basalforcings.floatingice_melting_rate = 0.0*np.ones((md.mesh.numberofvertices))
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34 | md.hydrology.sediment_transmitivity= 3.0*np.ones((md.mesh.numberofvertices))
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35 |
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36 | md.initialization.epl_head=np.zeros((md.mesh.numberofvertices))
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37 | md.initialization.epl_thickness=np.ones((md.mesh.numberofvertices))
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38 | md.hydrology.spcepl_head=np.nan*np.ones((md.mesh.numberofvertices))
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39 | md.hydrology.mask_eplactive_node=np.zeros((md.mesh.numberofvertices))
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40 | md.hydrology.epl_conductivity=30
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41 | md.hydrology.epl_initial_thickness=1
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42 | md.hydrology.epl_colapse_thickness=1.0e-3
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43 | md.hydrology.epl_thick_comp=1
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44 | md.hydrology.epl_max_thickness=1
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45 | md.hydrology.steps_per_step=10
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46 | md.timestepping.time_step=2.0
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47 | md.timestepping.final_time=2.0
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48 |
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49 | #md.debug.valgrind=True
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50 | md=solve(md,'Transient')
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51 |
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52 | #re-run with no substeps
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53 | mdfine=copy.deepcopy(md)
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54 | mdfine.result=[]
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55 | mdfine.hydrology.steps_per_step=1
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56 | mdfine.timestepping.time_step=0.2
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57 | mdfine=solve(mdfine,'Transient')
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58 |
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59 |
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60 | sedmean=mdfine.results.TransientSolution[0].SedimentHeadHydrostep
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61 | eplmean=mdfine.results.TransientSolution[0].EplHeadHydrostep
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62 | for i in range(1,10):
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63 | sedmean=sedmean+(mdfine.results.TransientSolution[i].SedimentHeadHydrostep)
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64 | eplmean=eplmean+(mdfine.results.TransientSolution[i].EplHeadHydrostep)
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65 |
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66 | field_names=['SedimentWaterHead1','EplWaterHead1','SedimentHeadResidual1',
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67 | 'SedimentWaterHead4','EplWaterHead4','SedimentHeadResidual4',
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68 | 'SedimentWaterHead5','EplWaterHead5','SedimentHeadResidual5',
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69 | 'SedimentWaterHead9','EplWaterHead9','SedimentHeadResidual9',
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70 | 'EplWaterHead10']
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71 | field_tolerances=[1e-13, 1e-13, 1e-13,
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72 | 1e-13, 1e-13, 1e-13,
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73 | 1e-13, 5e-12, 1e-11,
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74 | 1e-13, 5e-12, 1e-11,
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75 | 1e-13]
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76 | field_values=[mdfine.results.TransientSolution[0].SedimentHeadHydrostep,
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77 | mdfine.results.TransientSolution[0].EplHeadHydrostep,
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78 | mdfine.results.TransientSolution[0].SedimentHeadResidual,
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79 | mdfine.results.TransientSolution[3].SedimentHeadHydrostep,
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80 | mdfine.results.TransientSolution[3].EplHeadHydrostep,
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81 | mdfine.results.TransientSolution[3].SedimentHeadResidual,
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82 | mdfine.results.TransientSolution[4].SedimentHeadHydrostep,
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83 | mdfine.results.TransientSolution[4].EplHeadHydrostep,
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84 | mdfine.results.TransientSolution[4].SedimentHeadResidual,
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85 | mdfine.results.TransientSolution[8].SedimentHeadHydrostep,
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86 | mdfine.results.TransientSolution[8].EplHeadHydrostep,
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87 | mdfine.results.TransientSolution[8].SedimentHeadResidual,
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88 | md.results.TransientSolution[-1].EplHead]
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