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NPAL18084: add a new simple sample of GEOM/SMESH.
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@ -19,7 +19,7 @@ WARNINGS = YES
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INPUT = @srcdir@/input
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INPUT = @srcdir@/input
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FILE_PATTERNS = *.doc
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FILE_PATTERNS = *.doc
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IMAGE_PATH = @srcdir@/images
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IMAGE_PATH = @srcdir@/images
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EXAMPLE_PATH = ../../../share/salome/src/SMESH_SWIG
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#---------------------------------------------------------------------------
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#---------------------------------------------------------------------------
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#HTML related options
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#HTML related options
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#---------------------------------------------------------------------------
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#---------------------------------------------------------------------------
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BIN
doc/salome/gui/SMESH/images/mesh_cylinder_hexa.png
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BIN
doc/salome/gui/SMESH/images/mesh_cylinder_hexa.png
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After Width: | Height: | Size: 17 KiB |
@ -2,7 +2,7 @@
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\page tui_creating_meshes_page Creating Meshes
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\page tui_creating_meshes_page Creating Meshes
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\n First of all see \ref tui_creating_meshes_page "Example of 3d mesh generation",
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\n First of all see \ref introduction_to_mesh_python_page "Example of 3d mesh generation",
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which is an example of good python script style for Mesh module.
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which is an example of good python script style for Mesh module.
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<br>
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<br>
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@ -172,4 +172,13 @@ tetra.Compute()
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tetra.ExportMED("/tmp/meshMED.med", 0)
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tetra.ExportMED("/tmp/meshMED.med", 0)
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\endcode
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\endcode
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<br>
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<h2>How to mesh a cylinder with hexahedrons?</h2>
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Here you can see an example of python script, creating a hexahedral
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mesh on a cylinder. And a picture below the source code of the script,
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demonstrating the resulting mesh.
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\include /dn20/salome/jfa/V4/SRC/SMESH_SRC/src/SMESH_SWIG/ex24_cylinder.py
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\image html mesh_cylinder_hexa.png
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*/
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*/
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@ -55,6 +55,7 @@ dist_salomescript_DATA= \
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ex18_dome2.py \
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ex18_dome2.py \
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ex19_sphereINcube.py \
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ex19_sphereINcube.py \
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ex21_lamp.py \
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ex21_lamp.py \
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ex24_cylinder.py \
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SMESH_test.py\
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SMESH_test.py\
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SMESH_test0.py\
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SMESH_test0.py\
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SMESH_test1.py \
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SMESH_test1.py \
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104
src/SMESH_SWIG/ex24_cylinder.py
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104
src/SMESH_SWIG/ex24_cylinder.py
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@ -0,0 +1,104 @@
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# CEA/LGLS 2007, Francis KLOSS (OCC)
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# ==================================
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import math
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import geompy
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import smesh
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geo = geompy
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# Parameters
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# ----------
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radius = 50
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height = 200
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# Build a cylinder
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# ----------------
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base = geo.MakeVertex(0, 0, 0)
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direction = geo.MakeVectorDXDYDZ(0, 0, 1)
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cylinder = geo.MakeCylinder(base, direction, radius, height)
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geo.addToStudy(cylinder, "cylinder")
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# Build blocks
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# ------------
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size = radius/2.0
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box_rot = geo.MakeBox(-size, -size, 0, +size, +size, height)
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box_axis = geo.MakeLine(base, direction)
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box = geo.MakeRotation(box_rot, box_axis, math.pi/4)
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hole = geo.MakeCut(cylinder, box)
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plane_trim = 2000
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plane_a = geo.MakePlane(base, geo.MakeVectorDXDYDZ(1, 0, 0), plane_trim)
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plane_b = geo.MakePlane(base, geo.MakeVectorDXDYDZ(0, 1, 0), plane_trim)
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blocks_part = geo.MakePartition([hole], [plane_a, plane_b], [], [], geo.ShapeType["SOLID"])
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blocks_list = [box] + geo.SubShapeAll(blocks_part, geo.ShapeType["SOLID"])
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blocks_all = geo.MakeCompound(blocks_list)
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blocks = geo.MakeGlueFaces(blocks_all, 0.0001)
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geo.addToStudy(blocks, "cylinder:blocks")
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# Build geometric groups
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# ----------------------
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def group(name, shape, type, base=None, direction=None):
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t = geo.ShapeType[type]
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g = geo.CreateGroup(shape, t)
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geo.addToStudy(g, name)
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g.SetName(name)
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if base!=None:
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l = geo.GetShapesOnPlaneWithLocationIDs(shape, t, direction, base, geo.GEOM.ST_ON)
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geo.UnionIDs(g, l)
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return g
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group_a = group("baseA", blocks, "FACE", base, direction)
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base_b = geo.MakeVertex(0, 0, height)
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group_b = group("baseB", blocks, "FACE", base_b, direction)
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group_1 = group("limit", blocks, "SOLID")
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group_1_all = geo.SubShapeAllIDs(blocks, geo.ShapeType["SOLID"])
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geo.UnionIDs(group_1, group_1_all)
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group_1_box = geo.GetBlockNearPoint(blocks, base)
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geo.DifferenceList(group_1, [group_1_box])
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# Mesh the blocks with hexahedral
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# -------------------------------
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def discretize(x, y, z, n, s=blocks):
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p = geo.MakeVertex(x, y, z)
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e = geo.GetEdgeNearPoint(s, p)
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a = hexa.Segment(e)
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a.NumberOfSegments(n)
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a.Propagation()
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hexa = smesh.Mesh(blocks)
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hexa_1d = hexa.Segment()
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hexa_1d.NumberOfSegments(1)
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discretize(+radius , +radius, 0, 5)
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discretize(-radius , +radius, 0, 8)
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discretize((radius+size)/2, 0, 0, 10)
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discretize( +radius, 0, height/2, 20)
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hexa.Quadrangle()
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hexa.Hexahedron()
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hexa.Compute()
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hexa.Group(group_a)
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hexa.Group(group_b)
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hexa.Group(group_1)
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