// // ******************************************************************** // * License and Disclaimer * // * * // * The Geant4 software is copyright of the Copyright Holders of * // * the Geant4 Collaboration. It is provided under the terms and * // * conditions of the Geant4 Software License, included in the file * // * LICENSE and available at http://cern.ch/geant4/license . These * // * include a list of copyright holders. * // * * // * 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. Please see the license in the file LICENSE and URL above * // * for the full disclaimer and the limitation of liability. * // * * // * This code implementation is the result of the scientific and * // * technical work of the GEANT4 collaboration. * // * By using, copying, modifying or distributing the software (or * // * any work based on the software) you agree to acknowledge its * // * use in resulting scientific publications, and indicate your * // * acceptance of all terms of the Geant4 Software license. * // ******************************************************************** // // // $Id: G4Cons.icc,v 1.8 2008/11/06 10:55:40 gcosmo Exp $ // GEANT4 tag $Name: geant4-09-02-ref-02 $ // // -------------------------------------------------------------------- // GEANT 4 inline definitions file // // G4Cons.icc // // Implementation of inline methods of G4Cons // -------------------------------------------------------------------- inline void G4Cons::Initialise() { fCubicVolume= 0.; fSurfaceArea= 0.; fpPolyhedron = 0; } inline void G4Cons::InitializeTrigonometry() { G4double hDPhi = 0.5*fDPhi; // half delta phi G4double cPhi = fSPhi + hDPhi; G4double ePhi = fSPhi + fDPhi; sinCPhi = std::sin(cPhi); cosCPhi = std::cos(cPhi); cosHDPhiIT = std::cos(hDPhi - 0.5*kAngTolerance); // inner/outer tol half dphi cosHDPhiOT = std::cos(hDPhi + 0.5*kAngTolerance); sinSPhi = std::sin(fSPhi); cosSPhi = std::cos(fSPhi); sinEPhi = std::sin(ePhi); cosEPhi = std::cos(ePhi); } inline G4double G4Cons::GetInnerRadiusMinusZ() const { return fRmin1 ; } inline G4double G4Cons::GetOuterRadiusMinusZ() const { return fRmax1 ; } inline G4double G4Cons::GetInnerRadiusPlusZ() const { return fRmin2 ; } inline G4double G4Cons::GetOuterRadiusPlusZ() const { return fRmax2 ; } inline G4double G4Cons::GetZHalfLength() const { return fDz ; } inline G4double G4Cons::GetStartPhiAngle() const { return fSPhi ; } inline G4double G4Cons::GetDeltaPhiAngle() const { return fDPhi; } inline void G4Cons::SetInnerRadiusMinusZ( G4double Rmin1 ) { fRmin1= Rmin1 ; Initialise(); } inline void G4Cons::SetOuterRadiusMinusZ( G4double Rmax1 ) { fRmax1= Rmax1 ; Initialise(); } inline void G4Cons::SetInnerRadiusPlusZ ( G4double Rmin2 ) { fRmin2= Rmin2 ; Initialise(); } inline void G4Cons::SetOuterRadiusPlusZ ( G4double Rmax2 ) { fRmax2= Rmax2 ; Initialise(); } inline void G4Cons::SetZHalfLength ( G4double newDz ) { fDz= newDz ; Initialise(); } inline void G4Cons::SetStartPhiAngle ( G4double newSPhi ) { fSPhi= newSPhi; Initialise(); InitializeTrigonometry(); } void G4Cons::SetDeltaPhiAngle ( G4double newDPhi ) { if ( newDPhi >= twopi-kAngTolerance*0.5 ) { fPhiFullCone = true; } else if ( newDPhi > 0 ) { fPhiFullCone = false; } else { G4cerr << "ERROR - G4Cons()::SetDeltaPhiAngle() : " << GetName() << G4endl << " Negative delta-Phi ! - " << newDPhi << G4endl; G4Exception("G4Cons::SetDeltaPhiAngle()", "InvalidSetup", FatalException, "Invalid dphi."); } fDPhi= newDPhi; Initialise(); InitializeTrigonometry(); } // Old access methods ... inline G4double G4Cons::GetRmin1() const { return GetInnerRadiusMinusZ(); } inline G4double G4Cons::GetRmax1() const { return GetOuterRadiusMinusZ(); } inline G4double G4Cons::GetRmin2() const { return GetInnerRadiusPlusZ(); } inline G4double G4Cons::GetRmax2() const { return GetOuterRadiusPlusZ(); } inline G4double G4Cons::GetDz() const { return GetZHalfLength(); } inline G4double G4Cons::GetSPhi() const { return GetStartPhiAngle(); } inline G4double G4Cons::GetDPhi() const { return GetDeltaPhiAngle(); } inline G4double G4Cons::GetCubicVolume() { if(fCubicVolume != 0.) {;} else { G4double Rmean, rMean, deltaR, deltar; Rmean = 0.5*(fRmax1+fRmax2); deltaR = fRmax1-fRmax2; rMean = 0.5*(fRmin1+fRmin2); deltar = fRmin1-fRmin2; fCubicVolume = fDPhi*fDz*(Rmean*Rmean-rMean*rMean +(deltaR*deltaR-deltar*deltar)/12); } return fCubicVolume; } inline G4double G4Cons::GetSurfaceArea() { if(fSurfaceArea != 0.) {;} else { G4double mmin, mmax, dmin, dmax; mmin= (fRmin1+fRmin2)*0.5; mmax= (fRmax1+fRmax2)*0.5; dmin= (fRmin2-fRmin1); dmax= (fRmax2-fRmax1); fSurfaceArea = fDPhi*( mmin * std::sqrt(dmin*dmin+4*fDz*fDz) + mmax * std::sqrt(dmax*dmax+4*fDz*fDz) + 0.5*(fRmax1*fRmax1-fRmin1*fRmin1 +fRmax2*fRmax2-fRmin2*fRmin2 )); if(!fPhiFullCone) { fSurfaceArea = fSurfaceArea+4*fDz*(mmax-mmin); } } return fSurfaceArea; }