mesh/grid type transparent handling of coordinates
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@ -40,19 +40,14 @@ if options.con is None: options.con=[]
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for filename in options.filenames:
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for filename in options.filenames:
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results = damask.DADF5(filename)
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results = damask.DADF5(filename)
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Polydata = vtk.vtkPolyData()
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Points = vtk.vtkPoints()
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Points = vtk.vtkPoints()
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Vertices = vtk.vtkCellArray()
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Vertices = vtk.vtkCellArray()
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for c in results.cell_coordinates():
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pointID = Points.InsertNextPoint(c)
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Vertices.InsertNextCell(1)
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Vertices.InsertCellPoint(pointID)
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if results.structured: # for grid solvers calculate points
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Polydata = vtk.vtkPolyData()
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delta = results.size/results.grid*0.5
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for z in np.linspace(delta[2],results.size[2]-delta[2],results.grid[2]):
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for y in np.linspace(delta[1],results.size[1]-delta[1],results.grid[1]):
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for x in np.linspace(delta[0],results.size[0]-delta[0],results.grid[0]):
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pointID = Points.InsertNextPoint([x,y,z])
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Vertices.InsertNextCell(1)
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Vertices.InsertCellPoint(pointID)
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Polydata.SetPoints(Points)
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Polydata.SetPoints(Points)
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Polydata.SetVerts(Vertices)
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Polydata.SetVerts(Vertices)
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Polydata.Modified()
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Polydata.Modified()
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@ -335,6 +335,20 @@ class DADF5():
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return dataset
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return dataset
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def cell_coordinates(self):
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"""Initial coordinates of the cell centers."""
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if self.structured:
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delta = self.size/self.grid*0.5
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z, y, x = np.meshgrid(np.linspace(delta[2],self.size[2]-delta[2],self.grid[2]),
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np.linspace(delta[1],self.size[1]-delta[1],self.grid[1]),
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np.linspace(delta[0],self.size[0]-delta[0],self.grid[0]),
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)
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return np.concatenate((x[:,:,:,None],y[:,:,:,None],y[:,:,:,None]),axis = 3).reshape([np.product(self.grid),3])
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else:
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with h5py.File(self.filename,'r') as f:
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return f['geometry/x_c'][()]
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def add_Cauchy(self,P='P',F='F'):
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def add_Cauchy(self,P='P',F='F'):
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"""
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"""
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Adds Cauchy stress calculated from 1st Piola-Kirchhoff stress and deformation gradient.
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Adds Cauchy stress calculated from 1st Piola-Kirchhoff stress and deformation gradient.
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