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297 lines
12 KiB
C++
297 lines
12 KiB
C++
// Created on: 1998-04-08
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// Created by: Philippe MANGIN
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// Copyright (c) 1998-1999 Matra Datavision
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// Copyright (c) 1999-2014 OPEN CASCADE SAS
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//
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// This file is part of Open CASCADE Technology software library.
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//
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// This library is free software; you can redistribute it and/or modify it under
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// the terms of the GNU Lesser General Public License version 2.1 as published
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// by the Free Software Foundation, with special exception defined in the file
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// OCCT_LGPL_EXCEPTION.txt. Consult the file LICENSE_LGPL_21.txt included in OCCT
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// distribution for complete text of the license and disclaimer of any warranty.
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//
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// Alternatively, this file may be used under the terms of Open CASCADE
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// commercial license or contractual agreement.
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#ifndef _BRepOffsetAPI_MakePipeShell_HeaderFile
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#define _BRepOffsetAPI_MakePipeShell_HeaderFile
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#include <Standard.hxx>
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#include <Standard_DefineAlloc.hxx>
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#include <Standard_Handle.hxx>
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#include <BRepPrimAPI_MakeSweep.hxx>
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#include <Standard_Boolean.hxx>
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#include <BRepFill_PipeShell.hxx>
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#include <BRepFill_TypeOfContact.hxx>
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#include <BRepBuilderAPI_PipeError.hxx>
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#include <Standard_Real.hxx>
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#include <Standard_Integer.hxx>
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#include <BRepBuilderAPI_TransitionMode.hxx>
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#include <TopTools_ListOfShape.hxx>
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class Standard_DomainError;
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class StdFail_NotDone;
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class TopoDS_Wire;
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class gp_Ax2;
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class gp_Dir;
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class TopoDS_Shape;
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class TopoDS_Vertex;
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class Law_Function;
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//! This class provides for a framework to construct a shell
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//! or a solid along a spine consisting in a wire.
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//! To produce a solid, the initial wire must be closed.
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//! Two approaches are used:
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//! - definition by section
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//! - by a section and a scaling law
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//! - by addition of successive intermediary sections
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//! - definition by sweep mode.
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//! - pseudo-Frenet
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//! - constant
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//! - binormal constant
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//! - normal defined by a surface support
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//! - normal defined by a guiding contour.
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//! The two global approaches can also be combined.
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//! You can also close the surface later in order to form a solid.
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//! Warning: some limitations exist
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//! -- Mode with auxilary spine is incompatible with hometetic laws
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//! -- Mode with auxilary spine and keep contact produce only CO surface.
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class BRepOffsetAPI_MakePipeShell : public BRepPrimAPI_MakeSweep
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{
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public:
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DEFINE_STANDARD_ALLOC
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//! Constructs the shell-generating framework defined by the wire Spine.
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//! Sets an sweep's mode
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//! If no mode are setted, the mode use in MakePipe is used
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Standard_EXPORT BRepOffsetAPI_MakePipeShell(const TopoDS_Wire& Spine);
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//! Sets a Frenet or a CorrectedFrenet trihedron
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//! to perform the sweeping
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//! If IsFrenet is false, a corrected Frenet trihedron is used.
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Standard_EXPORT void SetMode (const Standard_Boolean IsFrenet = Standard_False);
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//! Sets a Discrete trihedron
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//! to perform the sweeping
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Standard_EXPORT void SetDiscreteMode();
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//! Sets a fixed trihedron to perform the sweeping
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//! all sections will be parallel.
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Standard_EXPORT void SetMode (const gp_Ax2& Axe);
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//! Sets a fixed BiNormal direction to perform the --
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//! sweeping. Angular relations between the
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//! section(s) and <BiNormal> will be constant
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Standard_EXPORT void SetMode (const gp_Dir& BiNormal);
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//! Sets support to the spine to define the BiNormal of
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//! the trihedron, like the normal to the surfaces.
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//! Warning: To be effective, Each edge of the <spine> must
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//! have an representaion on one face of<SpineSupport>
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Standard_EXPORT Standard_Boolean SetMode (const TopoDS_Shape& SpineSupport);
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//! Sets an auxiliary spine to define the Normal
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//! For each Point of the Spine P, an Point Q is evalued
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//! on <AuxiliarySpine>
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//! If <CurvilinearEquivalence>
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//! Q split <AuxiliarySpine> with the same length ratio
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//! than P split <Spline>.
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//! Else the plan define by P and the tangent to the <Spine>
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//! intersect <AuxiliarySpine> in Q.
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//! If <KeepContact> equals BRepFill_NoContact: The Normal is defined
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//! by the vector PQ.
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//! If <KeepContact> equals BRepFill_Contact: The Normal is defined to
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//! achieve that the sweeped section is in contact to the
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//! auxiliarySpine. The width of section is constant all along the path.
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//! In other words, the auxiliary spine lies on the swept surface,
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//! but not necessarily is a boundary of this surface. However,
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//! the auxiliary spine has to be close enough to the main spine
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//! to provide intersection with any section all along the path.
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//! If <KeepContact> equals BRepFill_ContactOnBorder: The auxiliary spine
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//! becomes a boundary of the swept surface and the width of section varies
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//! along the path.
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//! Give section to sweep.
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//! Possibilities are :
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//! - Give one or sevral section
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//! - Give one profile and an homotetic law.
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//! - Automatic compute of correspondance between spine, and section
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//! on the sweeped shape
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//! - correspondance between spine, and section on the sweeped shape
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//! defined by a vertex of the spine
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Standard_EXPORT void SetMode (const TopoDS_Wire& AuxiliarySpine, const Standard_Boolean CurvilinearEquivalence, const BRepFill_TypeOfContact KeepContact = BRepFill_NoContact);
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//! Adds the section Profile to this framework. First and last
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//! sections may be punctual, so the shape Profile may be
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//! both wire and vertex. Correspondent point on spine is
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//! computed automatically.
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//! If WithContact is true, the section is translated to be in
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//! contact with the spine.
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//! If WithCorrection is true, the section is rotated to be
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//! orthogonal to the spine?s tangent in the correspondent
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//! point. This option has no sense if the section is punctual
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//! (Profile is of type TopoDS_Vertex).
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Standard_EXPORT void Add (const TopoDS_Shape& Profile, const Standard_Boolean WithContact = Standard_False, const Standard_Boolean WithCorrection = Standard_False);
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//! Adds the section Profile to this framework.
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//! Correspondent point on the spine is given by Location.
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//! Warning:
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//! To be effective, it is not recommended to combine methods Add and SetLaw.
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Standard_EXPORT void Add (const TopoDS_Shape& Profile, const TopoDS_Vertex& Location, const Standard_Boolean WithContact = Standard_False, const Standard_Boolean WithCorrection = Standard_False);
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//! Sets the evolution law defined by the wire Profile with
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//! its position (Location, WithContact, WithCorrection
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//! are the same options as in methods Add) and a
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//! homotetic law defined by the function L.
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//! Warning:
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//! To be effective, it is not recommended to combine methods Add and SetLaw.
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Standard_EXPORT void SetLaw (const TopoDS_Shape& Profile, const Handle(Law_Function)& L, const Standard_Boolean WithContact = Standard_False, const Standard_Boolean WithCorrection = Standard_False);
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//! Sets the evolution law defined by the wire Profile with
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//! its position (Location, WithContact, WithCorrection
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//! are the same options as in methods Add) and a
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//! homotetic law defined by the function L.
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//! Warning:
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//! To be effective, it is not recommended to combine methods Add and SetLaw.
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Standard_EXPORT void SetLaw (const TopoDS_Shape& Profile, const Handle(Law_Function)& L, const TopoDS_Vertex& Location, const Standard_Boolean WithContact = Standard_False, const Standard_Boolean WithCorrection = Standard_False);
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//! Removes the section Profile from this framework.
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Standard_EXPORT void Delete (const TopoDS_Shape& Profile);
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//! Returns true if this tool object is ready to build the
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//! shape, i.e. has a definition for the wire section Profile.
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Standard_EXPORT Standard_Boolean IsReady() const;
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//! Get a status, when Simulate or Build failed. It can be
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//! BRepBuilderAPI_PipeDone,
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//! BRepBuilderAPI_PipeNotDone,
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//! BRepBuilderAPI_PlaneNotIntersectGuide,
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//! BRepBuilderAPI_ImpossibleContact.
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Standard_EXPORT BRepBuilderAPI_PipeError GetStatus() const;
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//! Sets the following tolerance values
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//! - 3D tolerance Tol3d
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//! - boundary tolerance BoundTol
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//! - angular tolerance TolAngular.
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Standard_EXPORT void SetTolerance (const Standard_Real Tol3d = 1.0e-4, const Standard_Real BoundTol = 1.0e-4, const Standard_Real TolAngular = 1.0e-2);
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//! Define the maximum V degree of resulting surface
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Standard_EXPORT void SetMaxDegree (const Standard_Integer NewMaxDegree);
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//! Define the maximum number of spans in V-direction
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//! on resulting surface
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Standard_EXPORT void SetMaxSegments (const Standard_Integer NewMaxSegments);
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//! Set the flag that indicates attempt to approximate
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//! a C1-continuous surface if a swept surface proved
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//! to be C0.
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Standard_EXPORT void SetForceApproxC1 (const Standard_Boolean ForceApproxC1);
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//! Sets the transition mode to manage discontinuities on
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//! the swept shape caused by fractures on the spine. The
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//! transition mode can be BRepBuilderAPI_Transformed
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//! (default value), BRepBuilderAPI_RightCorner,
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//! BRepBuilderAPI_RoundCorner:
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//! - RepBuilderAPI_Transformed:
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//! discontinuities are treated by
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//! modification of the sweeping mode. The
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//! pipe is "transformed" at the fractures of
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//! the spine. This mode assumes building a
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//! self-intersected shell.
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//! - BRepBuilderAPI_RightCorner:
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//! discontinuities are treated like right
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//! corner. Two pieces of the pipe
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//! corresponding to two adjacent
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//! segments of the spine are extended
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//! and intersected at a fracture of the spine.
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//! - BRepBuilderAPI_RoundCorner:
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//! discontinuities are treated like round
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//! corner. The corner is treated as rotation
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//! of the profile around an axis which
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//! passes through the point of the spine's
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//! fracture. This axis is based on cross
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//! product of directions tangent to the
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//! adjacent segments of the spine at their common point.
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//! Warnings
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//! The mode BRepBuilderAPI_RightCorner provides a
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//! valid result if intersection of two pieces of the pipe
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//! (corresponding to two adjacent segments of the spine)
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//! in the neighborhood of the spine?s fracture is
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//! connected and planar. This condition can be violated if
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//! the spine is non-linear in some neighborhood of the
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//! fracture or if the profile was set with a scaling law.
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//! The last mode, BRepBuilderAPI_RoundCorner, will
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//! assuredly provide a good result only if a profile was set
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//! with option WithCorrection = True, i.e. it is strictly
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//! orthogonal to the spine.
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Standard_EXPORT void SetTransitionMode (const BRepBuilderAPI_TransitionMode Mode = BRepBuilderAPI_Transformed);
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//! Simulates the resulting shape by calculating its
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//! cross-sections. The spine is devided by this
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//! cross-sections into (NumberOfSection - 1) equal
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//! parts, the number of cross-sections is
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//! NumberOfSection. The cross-sections are wires and
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//! they are returned in the list Result.
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//! This gives a rapid preview of the resulting shape,
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//! which will be obtained using the settings you have provided.
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//! Raises NotDone if <me> it is not Ready
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Standard_EXPORT void Simulate (const Standard_Integer NumberOfSection, TopTools_ListOfShape& Result);
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//! Builds the resulting shape (redefined from MakeShape).
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Standard_EXPORT virtual void Build() Standard_OVERRIDE;
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//! Transforms the sweeping Shell in Solid.
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//! If a propfile is not closed returns False
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Standard_EXPORT Standard_Boolean MakeSolid();
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//! Returns the TopoDS Shape of the bottom of the sweep.
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Standard_EXPORT virtual TopoDS_Shape FirstShape() Standard_OVERRIDE;
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//! Returns the TopoDS Shape of the top of the sweep.
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Standard_EXPORT virtual TopoDS_Shape LastShape() Standard_OVERRIDE;
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//! Returns a list of new shapes generated from the shape
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//! S by the shell-generating algorithm.
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//! This function is redefined from BRepOffsetAPI_MakeShape::Generated.
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//! S can be an edge or a vertex of a given Profile (see methods Add).
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Standard_EXPORT virtual const TopTools_ListOfShape& Generated (const TopoDS_Shape& S) Standard_OVERRIDE;
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Standard_EXPORT Standard_Real ErrorOnSurface() const;
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//! Returns the list of original profiles
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void Profiles(TopTools_ListOfShape& theProfiles)
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{
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myPipe->Profiles(theProfiles);
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}
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//! Returns the spine
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const TopoDS_Wire& Spine()
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{
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return myPipe->Spine();
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}
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protected:
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private:
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Handle(BRepFill_PipeShell) myPipe;
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};
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#endif // _BRepOffsetAPI_MakePipeShell_HeaderFile
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