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geant4/source/geometry/solids/specific/include/G4Hype.icc
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//
// ********************************************************************
// * DISCLAIMER *
// * *
// * The following disclaimer summarizes all the specific disclaimers *
// * of contributors to this software. The specific disclaimers,which *
// * govern, are listed with their locations in: *
// * http://cern.ch/geant4/license *
// * *
// * Neither the authors of this software system, nor their employing *
// * institutes,nor the agencies providing financial support for this *
// * work make any representation or warranty, express or implied, *
// * regarding this software system or assume any liability for its *
// * use. *
// * *
// * This code implementation is the intellectual property of the *
// * GEANT4 collaboration. *
// * By copying, distributing or modifying the Program (or any work *
// * based on the Program) you indicate your acceptance of this *
// * statement, and all its terms. *
// ********************************************************************
//
//
// $Id: G4Hype.icc,v 1.6 2004/12/02 09:31:30 gcosmo Exp $
// GEANT4 tag $Name: geant4-07-00-cand-03 $
//
// --------------------------------------------------------------------
// GEANT 4 inline definitions file
//
// G4Hype.icc
//
// Implementation of inline methods of G4Hype
// --------------------------------------------------------------------
inline
G4double G4Hype::GetInnerRadius () const
{
return innerRadius;
}
inline
G4double G4Hype::GetOuterRadius () const
{
return outerRadius;
}
inline
G4double G4Hype::GetZHalfLength () const
{
return halfLenZ;
}
inline
G4double G4Hype::GetInnerStereo () const
{
return innerStereo;
}
inline
G4double G4Hype::GetOuterStereo () const
{
return outerStereo;
}
inline
void G4Hype::SetInnerRadius (G4double newIRad)
{
innerRadius= newIRad;
innerRadius2= newIRad*newIRad;
endInnerRadius2=HypeInnerRadius2(halfLenZ);
endInnerRadius=std::sqrt(endInnerRadius2);
fCubicVolume = 0.;
fpPolyhedron = 0;
}
inline
void G4Hype::SetOuterRadius (G4double newORad)
{
outerRadius= newORad;
outerRadius2=newORad*newORad;
endOuterRadius2=HypeOuterRadius2(halfLenZ);
endOuterRadius=std::sqrt(endOuterRadius2);
fCubicVolume = 0.;
fpPolyhedron = 0;
}
inline
void G4Hype::SetZHalfLength (G4double newHLZ)
{
halfLenZ = newHLZ ;
fCubicVolume = 0.;
fpPolyhedron = 0;
}
inline
void G4Hype::SetInnerStereo (G4double newISte)
{
innerStereo= std::fabs(newISte);
tanInnerStereo=std::tan(innerStereo);
tanInnerStereo2=tanInnerStereo*tanInnerStereo;
endInnerRadius2=HypeInnerRadius2(halfLenZ);
endInnerRadius=std::sqrt(endInnerRadius2);
fCubicVolume = 0.;
fpPolyhedron = 0;
}
inline
void G4Hype::SetOuterStereo (G4double newOSte)
{
outerStereo= std::fabs(newOSte);
tanOuterStereo=std::tan(outerStereo);
tanOuterStereo2=tanOuterStereo*tanOuterStereo;
endOuterRadius2=HypeOuterRadius2(halfLenZ);
endOuterRadius=std::sqrt(endOuterRadius2);
fCubicVolume = 0.;
fpPolyhedron = 0;
}
inline
G4bool G4Hype::InnerSurfaceExists() const
{
return (innerRadius > DBL_MIN) || (innerStereo != 0);
}
inline
G4double G4Hype::HypeInnerRadius2(G4double zVal) const
{
return (tanInnerStereo2*zVal*zVal+innerRadius2);
}
inline
G4double G4Hype::HypeOuterRadius2(G4double zVal) const
{
return (tanOuterStereo2*zVal*zVal+outerRadius2);
}