Merge pull request #819 from Jesusbill/v0.6.0

udpate ifc2ca.py - major revision
This commit is contained in:
Dion Moult
2020-04-02 09:04:00 +11:00
committed by GitHub
+197 -94
View File
@@ -6,99 +6,102 @@ class IFC2CA:
self.filename = filename self.filename = filename
self.file = None self.file = None
self.result = {} self.result = {}
self.supports = []
def convert(self): def convert(self):
self.file = ifcopenshell.open(self.filename) self.file = ifcopenshell.open(self.filename)
for model in self.file.by_type('IfcStructuralAnalysisModel'): for model in self.file.by_type('IfcStructuralAnalysisModel'):
self.result = { self.result = {
'title': model.Name, 'ifcName': model.is_a() + '|' + str(model.id()),
'units': self.get_units(), 'name': model.Name,
'elements': self.get_elements(model), 'id': model.GlobalId,
'mesh': { 'meshSize': 0.2 }, # TODO: unhardcode 'elements': self.get_structural_items(model, item_type='IfcStructuralMember'),
'supports': self.get_supports() 'connections': self.get_structural_items(model, item_type='IfcStructuralConnection')
} }
def get_units(self): print('Number of elements: ', len(self.result['elements']))
# TODO: unhardcode print('Number of connections: ', len(self.result['connections']))
units = {}
for unit in self.file.by_type('IfcUnitAssignment')[0].Units:
if unit.UnitType == 'LENGTHUNIT':
units['length'] = 'm'
units['force'] = 'N'
units['angle'] = 'deg'
return units
def get_elements(self, model): break
elements = []
def get_structural_items(self, model, item_type='IfcStructuralItem'):
items = []
for group in model.IsGroupedBy: for group in model.IsGroupedBy:
for element in group.RelatedObjects: for item in group.RelatedObjects:
if not element.is_a('IfcStructuralMember'): if not item.is_a(item_type):
continue continue
data = self.get_element_data(element) data = self.get_item_data(item)
if data: if data:
elements.append(data) items.append(data)
return elements return items
def get_element_data(self, element): def get_item_data(self, item):
representation = self.get_representation(element) if item.is_a('IfcStructuralCurveMember'):
material_profile = self.get_material_profile(element) representation = self.get_representation(item, 'Edge')
if not representation or not material_profile: material_profile = self.get_material_profile(item)
return if not representation or not material_profile:
for connection in element.ConnectedBy: print(representation, material_profile)
if connection.RelatedStructuralConnection.AppliedCondition: return
self.supports.append(connection.RelatedStructuralConnection)
return {
'ifcName': element.is_a() + '|' + str(element.id()),
'name': element.Name,
'id': element.GlobalId,
'geometryType': self.get_geometry_type(representation),
'geometry': self.get_geometry(representation),
'rotation': 0, # TODO: unhardcode
'material': self.get_material_properties(material_profile),
'section': self.get_material_section(material_profile),
'elementType': 'EulerBeam' # TODO: unhardcode
}
def get_supports(self): return {
supports = [] 'ifcName': item.is_a() + '|' + str(item.id()),
for support in self.supports: 'name': item.Name,
supports.append({ 'id': item.GlobalId,
'ifcName': support.is_a() + '|' + str(support.id()), 'geometryType': 'line',
'name': support.Name, 'predefinedType': item.PredefinedType,
'id': support.GlobalId, 'geometry': self.get_geometry(representation),
'geometryType': self.get_support_geometry_type(support), 'material': self.get_material_properties(material_profile.Material),
'geometry': self.get_support_geometry(support), 'profile': self.get_profile_properties(material_profile.Profile),
'appliedCondition': self.get_support_input(support) 'connections': self.get_connection_data(item.ConnectedBy)
}) }
return supports
def get_support_geometry_type(self, support): elif item.is_a('IfcStructuralSurfaceMember'):
if support.is_a('IfcStructuralPointConnection'): representation = self.get_representation(item, 'Face')
return 'point' material = self.get_material_profile(item)
if not representation:
print(representation)
return
def get_support_geometry(self, support): return {
# TODO: make more robust 'ifcName': item.is_a() + '|' + str(item.id()),
return support.ObjectPlacement.RelativePlacement.Location.Coordinates 'name': item.Name,
'id': item.GlobalId,
'geometryType': 'surface',
'predefinedType': item.PredefinedType,
'thickness': item.Thickness,
'geometry': self.get_geometry(representation),
'material': self.get_material_properties(material),
'connections': self.get_connection_data(item.ConnectedBy)
}
def get_support_input(self, support): elif item.is_a('IfcStructuralPointConnection'):
return { representation = self.get_representation(item, 'Vertex')
'dx': support.AppliedCondition.TranslationalStiffnessX.wrappedValue, if not representation:
'dy': support.AppliedCondition.TranslationalStiffnessY.wrappedValue, print(representation)
'dz': support.AppliedCondition.TranslationalStiffnessZ.wrappedValue, return
'drx': support.AppliedCondition.RotationalStiffnessX.wrappedValue,
'dry': support.AppliedCondition.RotationalStiffnessY.wrappedValue,
'drz': support.AppliedCondition.RotationalStiffnessZ.wrappedValue
}
print(support.AppliedCondition)
def get_representation(self, element): return {
'ifcName': item.is_a() + '|' + str(item.id()),
'name': item.Name,
'id': item.GlobalId,
'geometryType': 'point',
'geometry': self.get_geometry(representation),
'appliedCondition': self.get_connection_input(item),
'relatedElements': self.get_connection_data(item.ConnectsStructuralMembers)
}
def get_representation(self, element, rep_type):
if not element.Representation: if not element.Representation:
return None return None
for representation in element.Representation.Representations: for representation in element.Representation.Representations:
rep = self.get_specific_representation(representation, 'Reference', 'Edge') rep = self.get_specific_representation(representation, 'Reference', rep_type)
if rep: if rep:
return rep return rep
else:
# print('Trying without rep identifier')
for representation in element.Representation.Representations:
rep = self.get_specific_representation(representation, None, rep_type)
if rep:
return rep
def get_specific_representation(self, representation, rep_id, rep_type): def get_specific_representation(self, representation, rep_id, rep_type):
if representation.RepresentationIdentifier == rep_id \ if representation.RepresentationIdentifier == rep_id \
@@ -109,11 +112,6 @@ class IFC2CA:
representation.Items[0].MappingSource.MappedRepresentation, representation.Items[0].MappingSource.MappedRepresentation,
rep_id, rep_type) rep_id, rep_type)
def get_geometry_type(self, representation):
if representation.Items[0].is_a('IfcEdgeCurve'):
return 'curvedLine' # TODO: Is this correct?
return 'straightLine'
def get_geometry(self, representation): def get_geometry(self, representation):
# Maybe IfcOpenShell can use create_shape here to simplify this, but # Maybe IfcOpenShell can use create_shape here to simplify this, but
# supposedly structural models are very simple anyway, so perhaps we # supposedly structural models are very simple anyway, so perhaps we
@@ -125,6 +123,16 @@ class IFC2CA:
self.get_coordinate(item.EdgeEnd.VertexGeometry) self.get_coordinate(item.EdgeEnd.VertexGeometry)
] ]
elif item.is_a('IfcFaceSurface'):
edges = item.Bounds[0].Bound.EdgeList
coords = []
for edge in edges:
coords.append(self.get_coordinate(edge.EdgeElement.EdgeStart.VertexGeometry))
return coords
elif item.is_a('IfcVertexPoint'):
return self.get_coordinate(item.VertexGeometry)
def get_coordinate(self, point): def get_coordinate(self, point):
if point.is_a('IfcCartesianPoint'): if point.is_a('IfcCartesianPoint'):
return point.Coordinates return point.Coordinates
@@ -139,34 +147,129 @@ class IFC2CA:
if material.is_a('IfcMaterialProfileSet'): if material.is_a('IfcMaterialProfileSet'):
# For now, we only deal with a single profile # For now, we only deal with a single profile
return material.MaterialProfiles[0] return material.MaterialProfiles[0]
if material.is_a('IfcMaterialProfileSetUsage'):
return material.ForProfileSet.MaterialProfiles[0]
if material.is_a('IfcMaterial'):
return material
def get_material_properties(self, material):
psets = material.HasProperties
if self.get_pset_properties(psets, 'Pset_MaterialMechanical'):
mechProps = self.get_pset_properties(psets, 'Pset_MaterialMechanical')
else:
mechProps = self.get_pset_properties(psets, None)
if self.get_pset_properties(psets, 'Pset_MaterialCommon'):
commonProps = self.get_pset_properties(psets, 'Pset_MaterialCommon')
else:
commonProps = self.get_pset_properties(psets, None)
def get_material_properties(self, profile):
psets = profile.Material.HasProperties
return { return {
'ifcName': profile.Material.is_a() + '|' + str(profile.Material.id()), 'ifcName': material.is_a() + '|' + str(material.id()),
'materialType': 'isotropic', # TODO: unhardcode 'name': material.Name,
'youngModulus': self.get_pset_property(psets, 'Pset_MaterialMechanical', 'YoungModulus'), 'mechProps': mechProps,
'poissonRatio': self.get_pset_property(psets, 'Pset_MaterialMechanical', 'PoissonRatio'), 'commonProps':commonProps
'massDensity': self.get_pset_property(psets, 'Pset_MaterialCommon', 'MassDensity')
} }
def get_pset_property(self, psets, pset_name, prop_name): def get_pset_property(self, psets, pset_name, prop_name):
for pset in psets: for pset in psets:
if pset.Name == pset_name: if pset.Name == pset_name or pset_name is None:
for prop in pset.Properties: for prop in pset.Properties:
if prop.Name == prop_name: if prop.Name == prop_name:
return prop.NominalValue.wrappedValue return prop.NominalValue.wrappedValue
def get_material_section(self, profile): def get_pset_properties(self, psets, pset_name):
if profile.Profile.is_a('IfcRectangleProfileDef'): for pset in psets:
if pset.Name == pset_name or pset_name is None:
d = {}
for prop in pset.Properties:
propName = prop.Name[0].lower() + prop.Name[1:]
d[propName] = prop.NominalValue.wrappedValue
return d
def get_profile_properties(self, profile):
if profile.is_a('IfcRectangleProfileDef'):
return { return {
'ifcName': profile.Profile.is_a() + '|' + str(profile.Profile.id()), 'ifcName': profile.is_a() + '|' + str(profile.id()),
'sectionType': 'rectangular', 'profileName': profile.ProfileName,
'sectionVariation': 'constant', 'profileType': profile.ProfileType,
'xDim': profile.Profile.XDim, 'profileShape': 'rectangular',
'yDim': profile.Profile.YDim 'xDim': profile.XDim,
'yDim': profile.YDim
} }
ifc2ca = IFC2CA('ifc2ca.blend.ifc') if profile.is_a('IfcIShapeProfileDef'):
ifc2ca.convert() psets = profile.HasProperties
print(json.dumps(ifc2ca.result, indent=4))
if self.get_pset_properties(psets, 'Pset_ProfileMechanical'):
mechProps = self.get_pset_properties(psets, 'Pset_ProfileMechanical')
else:
mechProps = self.get_i_section_properties(profile, 'iSymmetrical')
return {
'ifcName': profile.is_a() + '|' + str(profile.id()),
'profileName': profile.ProfileName,
'profileType': profile.ProfileType,
'profileShape': 'iSymmetrical',
'mechProps': mechProps,
'commonProps': {
'flangeThickness': profile.FlangeThickness,
'webThickness': profile.WebThickness,
'overallDepth': profile.OverallDepth,
'overallWidth': profile.OverallWidth,
'filletRadius': profile.FilletRadius,
}
}
def get_connection_data(self, itemList):
return [{
'ifcName': rel.is_a() + '|' + str(rel.id()),
'id': rel.GlobalId,
'relatingElement': rel.RelatingStructuralMember.is_a() + '|' + str(rel.RelatingStructuralMember.id()),
'relatedConnection': rel.RelatedStructuralConnection.is_a() + '|' + str(rel.RelatedStructuralConnection.id()),
'eccentricity': None if not rel.is_a('IfcRelConnectsWithEccentricity') else {
'inX': 0.0 if not rel.ConnectionConstraint.EccentricityInX else rel.ConnectionConstraint.EccentricityInX,
'inY': 0.0 if not rel.ConnectionConstraint.EccentricityInY else rel.ConnectionConstraint.EccentricityInY,
'inZ': 0.0 if not rel.ConnectionConstraint.EccentricityInZ else rel.ConnectionConstraint.EccentricityInZ,
'pointOnElement': self.get_coordinate(rel.ConnectionConstraint.PointOnRelatingElement)
}
# 'geometryPointIndex': None
} for rel in itemList]
def get_connection_input(self, connection):
if connection.AppliedCondition:
return {
'dx': connection.AppliedCondition.TranslationalStiffnessX.wrappedValue,
'dy': connection.AppliedCondition.TranslationalStiffnessY.wrappedValue,
'dz': connection.AppliedCondition.TranslationalStiffnessZ.wrappedValue,
'drx': connection.AppliedCondition.RotationalStiffnessX.wrappedValue,
'dry': connection.AppliedCondition.RotationalStiffnessY.wrappedValue,
'drz': connection.AppliedCondition.RotationalStiffnessZ.wrappedValue
}
return connection.AppliedCondition
def get_i_section_properties(self, profile, profileShape):
if profileShape == 'iSymmetrical':
tf = profile.FlangeThickness
tw = profile.WebThickness
h = profile.OverallDepth
b = profile.OverallWidth
A = b * h - (b - tw) * (h - 2 * tf)
Iy = b * (h ** 3) / 12 - (b - tw) * ((h - 2 * tf) ** 3) / 12
Iz = (2 * tf) * (b ** 3) / 12 + (h - 2 * tf) * (tw ** 3) / 12
Jx = 1 / 3 * ((h - tf) * (tw ** 3) + 2 * b * (tf ** 3))
return {
'crossSectionArea': A,
'momentOfInertiaY': Iy,
'momentOfInertiaZ': Iz,
'torsionalConstantX': Jx
}
if __name__ == '__main__':
IFC_FILENAME = ''
ifc2ca = IFC2CA(IFC_FILENAME)
ifc2ca.convert()
print(json.dumps(ifc2ca.result, indent=4))