# BlenderBIM Add-on - OpenBIM Blender Add-on # Copyright (C) 2022 @Andrej730 # # This file is part of BlenderBIM Add-on. # # BlenderBIM Add-on is free software: you can redistribute it and/or modify # it under the terms of the GNU General Public License as published by # the Free Software Foundation, either version 3 of the License, or # (at your option) any later version. # # BlenderBIM Add-on is distributed in the hope that it will be useful, # but WITHOUT ANY WARRANTY; without even the implied warranty of # MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the # GNU General Public License for more details. # # You should have received a copy of the GNU General Public License # along with BlenderBIM Add-on. If not, see . # fmt: off # pylint: skip-file import ifcopenshell import ifcopenshell.api import boltspy as bolts from math import cos, pi from pathlib import Path from mathutils import Vector V = lambda *x: Vector([float(i) for i in x]) def create_simple_2dcurve(coords, fillets, fillet_radius, closed=True, ifc_file=None): """ Creates simple 2D curve from set of 2d coords and list of points with fillets. Simple curve means that all fillets are based on 90 degree angle. > coords: list of 2d coords. Example: ((x0,y0), (x1,y1), (x2, y2)) > fillets: list of points from `coords` to base fillet on. Example: (1,) > fillet_radius: list of fillet radius for each of corresponding point form `fillets`. Example: (5.,) Note: filler_radius could be just 1 float value if it's the same for all fillets. Optional arguments: > closed: boolean whether curve should be closed (whether last point connected to first one). Default: True > ifc_file: ifc file to create IfcIndexedPolyCurve for the function output < returns (points, segments, ifc_curve) for the created simple curve if both points in e are equally far from pt, then v1 is returned.""" # option to use same fillet radius for all fillets if isinstance(fillet_radius, float): fillet_radius = [fillet_radius] * len(fillets) fillets = dict(zip(fillets, fillet_radius)) segments = [] points = [] for co_i, co in enumerate(coords, 0): current_point = len(points) if co_i in fillets: r = fillets[co_i] rsb = r * cos(pi/4) # radius shift big rss = r - rsb # radius shift small next_co = coords[(co_i+1) % len(coords)] previous_co = coords[co_i-1] # identify fillet type (1 of 4 possible types) x_direction = 1 if coords[co_i][0] < previous_co[0] or coords[co_i][0] < next_co[0] else -1 y_direction = 1 if coords[co_i][1] < previous_co[1] or coords[co_i][1] < next_co[1] else -1 xshift_point = (co[0] + r * x_direction, co[1]) middle_point = (co[0] + rss * x_direction, co[1] + rss * y_direction) yshift_point = (co[0], co[1] + r * y_direction) # identify fillet direction if co[1] == previous_co[1]: points.extend( (xshift_point, middle_point, yshift_point)) else: points.extend( (yshift_point, middle_point, xshift_point)) segments.append( [current_point-1, current_point] ) segments.append( [current_point, current_point+1, current_point+2] ) else: points.append( co ) if co_i != 0: segments.append( [current_point-1, current_point] ) if closed: segments.append( [0, len(points)-1] ) # replace negative index if segments[0][0] == -1: segments[0][0] = len(points) - 1 ifc_curve = None if ifc_file: ifc_points = ifc_file.createIfcCartesianPointList2D(points) ifc_segments = [] for segment in segments: segment = [i+1 for i in segment] if len(segment) == 2: ifc_segments.append( ifc_file.createIfcLineIndex( segment )) elif len(segment) == 3: ifc_segments.append( ifc_file.createIfcArcIndex( segment )) ifc_curve = ifc_file.createIfcIndexedPolyCurve(Points=ifc_points, Segments=ifc_segments) return (points, segments, ifc_curve) def create_z_profile_lips_curve(ifc_file, FirstFlangeWidth, SecondFlangeWidth, Depth, Girth, WallThickness, FilletRadius): x1 = FirstFlangeWidth x2 = SecondFlangeWidth y = Depth / 2 g = Girth t = WallThickness r = FilletRadius coords = ( (-t/2, y), (x2, y), (x2, y-g), (x2-t, y-g), (x2-t, y-t), (t/2, y-t), (t/2, -y), (-x1, -y), (-x1, -y+g), (-x1+t, -y+g), (-x1+t, -y+t), (-t/2, -y+t) ) # no additional thickness in outer radius option # points, segments, ifc_curve = create_curve_from_coords(coords, fillets = (0, 1, 4, 5, 6, 7, 10, 11), fillet_radius=r, closed=True, ifc_file=ifc_file) points, segments, ifc_curve = create_simple_2dcurve(coords, fillets = (0, 1, 4, 5, 6, 7, 10, 11), fillet_radius=(r+t, r+t, r, r, r+t, r+t, r, r), closed=True, ifc_file=ifc_file) return ifc_curve class LibraryGenerator: def generate(self, parse_profiles_type="EU", output_filename="IFC4 EU Steel.ifc"): print(f'Generating {parse_profiles_type} steel library "{output_filename}"') ifcopenshell.api.pre_listeners = {} ifcopenshell.api.post_listeners = {} self.materials = {} self.file = ifcopenshell.api.run("project.create_file") self.project = ifcopenshell.api.run( "root.create_entity", self.file, ifc_class="IfcProject", name=f"{parse_profiles_type} Steel Profiles Library" ) self.library = ifcopenshell.api.run( "root.create_entity", self.file, ifc_class="IfcProjectLibrary", name=f"{parse_profiles_type} Steel Profiles Library" ) ifcopenshell.api.run( "project.assign_declaration", self.file, definition=self.library, relating_context=self.project ) dim_exponents = self.file.createIfcDimensionalExponents(0, 0, 0, 0, 0, 0, 0) length_unit = ifcopenshell.api.run("unit.add_si_unit", self.file, unit_type="LENGTHUNIT", prefix="MILLI") # define angle unit to use degrees for IfcPlaneAngleMeasure: # https://ifc43-docs.standards.buildingsmart.org/IFC/RELEASE/IFC4x3/HTML/lexical/IfcPlaneAngleMeasure.htm angle_unit = ifcopenshell.api.run("unit.add_si_unit", self.file, unit_type="PLANEANGLEUNIT") value_component = self.file.createIfcReal(pi/180) angle_unit = self.file.createIfcMeasureWithUnit(ValueComponent=value_component, UnitComponent=angle_unit) angle_unit = self.file.createIfcConversionBasedUnit(Name="degree", Dimensions=dim_exponents, UnitType="PLANEANGLEUNIT", ConversionFactor=angle_unit) ifcopenshell.api.run("unit.assign_unit", self.file, units=[length_unit, angle_unit]) self.material = ifcopenshell.api.run("material.add_material", self.file, name="Unknown") # NOTE: parameters could be optional (example: welded i-beams don't have FilletRadius) profiles_translation = { "profile_i": ("IfcIShapeProfileDef", {"tw": "WebThickness", "tf": "FlangeThickness", "h": "OverallDepth", "b": "OverallWidth", "r": "FilletRadius", "sf": "FlangeSlope", "r1": "FilletRadius", "r2": "FlangeEdgeRadius"}), "profile_t": ("IfcTShapeProfileDef", {"tw": "WebThickness", "tf": "FlangeThickness", "h": "Depth", "b": "FlangeWidth", "r": "FilletRadius", "r1": "FilletRadius", "r2": "FlangeEdgeRadius"}), "profile_z": ("IfcZShapeProfileDef", {"tw": "WebThickness", "tf": "FlangeThickness", "h": "Depth", "c1": "FlangeWidth"}), "profile_z_lips": ("IfcArbitraryClosedProfileDef", {"t": "WallThickness", "c1": "FirstFlangeWidth", "c2": "SecondFlangeWidth", "h": "Depth", "r": "FilletRadius", "ll": "Girth"}), "profile_c": ("IfcUShapeProfileDef", {"tw": "WebThickness", "tf": "FlangeThickness", "h": "Depth", "b": "FlangeWidth", "r": "FilletRadius", "sf": "FlangeSlope", "r1": "FilletRadius", "r2": "EdgeRadius"}), "profile_c_lips": ("IfcCShapeProfileDef", {"t": "WallThickness", "b": "Width", "h": "Depth", "ll": "Girth", "r": "InternalFilletRadius"}), "profile_l*_equal": ("IfcLShapeProfileDef", {"a": "Depth", "t": "Thickness", "r1": "FilletRadius", "r2": "EdgeRadius"}), "profile_l*_unequal": ("IfcLShapeProfileDef", {"a": "Depth", "b": "Width", "t": "Thickness", "r1": "FilletRadius", "r2": "EdgeRadius"}), "profile_l*lbeam_l_imp": ("IfcLShapeProfileDef", {"a": "Depth", "b": "Width", "t": "Thickness", "r1": "FilletRadius", "r2": "EdgeRadius"}), "profile_l*lbeam_2l": ("IfcLShapeProfileDef", {"a": "Depth", "b": "Width", "t": "Thickness", "g": "ProfilesGap"}), "profile_hollow*_circle": ("IfcCircleHollowProfileDef", {"t": "WallThickness", "D": "Radius"}), "profile_hollow*pipe_imp": ("IfcCircleHollowProfileDef", {"t": "WallThickness", "D": "Radius"}), "profile_hollow*_square": ("IfcRectangleHollowProfileDef", {"t": "WallThickness", "b": "XDim", "ri": "InnerFilletRadius", "ro": "OuterFilletRadius"}), "profile_hollow*_rectangular": ("IfcRectangleHollowProfileDef", {"t": "WallThickness", "b": "XDim", "h": "YDim", "ri": "InnerFilletRadius", "ro": "OuterFilletRadius"}), } processed_profiles = set() def bolt_class_filter(x): identified_type = "" if "bluescope" in x.id: identified_type = "AU" elif x.id.endswith("_imp"): identified_type = "US" else: identified_type = "EU" return parse_profiles_type == identified_type for prof_type in profiles_translation: ifc_profile_name, ifc_params_translation = profiles_translation[prof_type] # prof_keyword == "" if there is no "*" col_name, _, prof_keyword = prof_type.partition("*") bolt_col = bolts.repo.collections[col_name] for bolt_class in bolts.repo.collection_classes.get_dsts(bolt_col): if bolt_class.id in processed_profiles: continue if not bolt_class_filter(bolt_class): continue if prof_keyword and prof_keyword not in bolt_class.id: continue if not bolt_class.parameters.tables: # some bolt classes have no data attached # like hollow_generic_square continue print(f'Processing {bolt_class.id}') bolts_cols_original = bolt_class.parameters.tables[0].columns bolts_cols = [ifc_params_translation.get(c, "unused") for c in bolts_cols_original] inch_to_mm = lambda x: x * 0.0254 * 1000 def assure_data_units_is_mm(data, units): data = data.copy() for i in range(len(units)): unit = units[i] assert unit in ("Length (in)", "Length (mm)", "Angle (deg)"), f"Unit {unit} is not supported" if unit != "Length (in)": continue for profile in data: data[profile][i] = inch_to_mm(data[profile][i]) return data bolts_data = bolt_class.parameters.tables[0].data data_units = [bolt_class.parameters.types[col] for col in bolts_cols_original] bolts_data = assure_data_units_is_mm(bolts_data, data_units) for prof_name in bolts_data.keys(): ifc_params = dict(zip(bolts_cols, bolts_data[prof_name], strict=True)) if "unused" in ifc_params: del ifc_params["unused"] if prof_type == "profile_hollow*_square": ifc_params["YDim"] = ifc_params["XDim"] elif ifc_profile_name == "IfcCircleHollowProfileDef": # by default bolts provides diameter, so we need to convert it to radius ifc_params["Radius"] /= 2 elif prof_type == "profile_z_lips": ifc_curve = create_z_profile_lips_curve(self.file, **ifc_params) ifc_params = {"OuterCurve": ifc_curve} elif prof_type == "profile_l*lbeam_2l": profiles_gap = ifc_params["ProfilesGap"] del ifc_params["ProfilesGap"] # profile is setup by type of profile and by supplying it's parameters # ProfileType stays AREA profile = self.file.create_entity(ifc_profile_name, ProfileName=prof_name, ProfileType="AREA", **ifc_params) if prof_type == "profile_l*lbeam_2l": profile.ProfileName = None # to avoid name confusion mode = "SLBB" if prof_name.endswith("_SLBB") else "LLBB" profile = self.create_double_l_profile(profile, prof_name, profiles_gap, mode) # building profiles for each of 3 types self.create_profile_type("IfcBeamType", prof_name, profile) self.create_profile_type("IfcMemberType", prof_name, profile) self.create_profile_type("IfcColumnType", prof_name, profile) processed_profiles.add(bolt_class.id) self.file.write(output_filename) print('-----------------------') def create_profile_type(self, ifc_class, name, profile): element = ifcopenshell.api.run("root.create_entity", self.file, ifc_class=ifc_class, name=name) rel = ifcopenshell.api.run("material.assign_material", self.file, product=element, type="IfcMaterialProfileSet") profile_set = rel.RelatingMaterial material_profile = ifcopenshell.api.run( "material.add_profile", self.file, profile_set=profile_set, material=self.material # material=self.materials["TBD"]["ifc"] ) ifcopenshell.api.run("material.assign_profile", self.file, material_profile=material_profile, profile=profile) ifcopenshell.api.run("project.assign_declaration", self.file, definition=element, relating_context=self.library) def create_double_l_profile(self, profile, resulting_profile_name=None, profiles_gap=0, mode = "LLBB"): def create_derived_profile(profile, mirrored=False): """ LLBB mode = long legs back-to-back SLBB mode = short legs back-to-back """ derived_profile = self.file.createIfcDerivedProfileDef( ParentProfile=profile, Operator=self.file.createIfcCartesianTransformationOperator2D(), ProfileType=profile.ProfileType ) transform = derived_profile.Operator transform.LocalOrigin = self.file.createIfcCartesianPoint() if mode == "LLBB": offset = profile.Depth/2 + profiles_gap if mirrored: transform.Axis1 = self.file.createIfcDirection(V(0, 1)) transform.Axis2 = self.file.createIfcDirection(V(-1, 0)) transform.LocalOrigin.Coordinates = V(-offset, 0) else: transform.LocalOrigin.Coordinates = V(offset, 0) transform.Axis1 = self.file.createIfcDirection(V(0, 1)) transform.Axis2 = self.file.createIfcDirection(V(1, 0)) elif mode == "SLBB": offset = profile.Width/2 + profiles_gap if mirrored: transform.Axis1 = self.file.createIfcDirection(V(-1, 0)) transform.LocalOrigin.Coordinates = V(-offset, 0) else: transform.LocalOrigin.Coordinates = V(offset, 0) return derived_profile composite_profile = self.file.createIfcCompositeProfileDef(Profiles=[ create_derived_profile(profile), create_derived_profile(profile, mirrored=True) ], ProfileType = profile.ProfileType ) composite_profile.ProfileName = resulting_profile_name return composite_profile if __name__ == "__main__": path = Path(__file__).parents[1] / "blenderbim/bim/data/libraries" LibraryGenerator().generate(parse_profiles_type="EU", output_filename=str(path / "IFC4 EU Steel.ifc")) LibraryGenerator().generate(parse_profiles_type="AU", output_filename=str(path / "IFC4 AU Steel.ifc")) LibraryGenerator().generate(parse_profiles_type="US", output_filename=str(path / "IFC4 US Steel.ifc"))