#include <G4XTRTransparentRegRadModel.hh>
Inheritance diagram for G4XTRTransparentRegRadModel:
Public Member Functions | |
G4XTRTransparentRegRadModel (G4LogicalVolume *anEnvelope, G4Material *, G4Material *, G4double, G4double, G4int, const G4String &processName="XTRTransparentRegRadModel") | |
~G4XTRTransparentRegRadModel () | |
G4double | SpectralXTRdEdx (G4double energy) |
G4double | GetStackFactor (G4double energy, G4double gamma, G4double varAngle) |
Definition at line 48 of file G4XTRTransparentRegRadModel.hh.
G4XTRTransparentRegRadModel::G4XTRTransparentRegRadModel | ( | G4LogicalVolume * | anEnvelope, | |
G4Material * | , | |||
G4Material * | , | |||
G4double | , | |||
G4double | , | |||
G4int | , | |||
const G4String & | processName = "XTRTransparentRegRadModel" | |||
) |
Definition at line 40 of file G4XTRTransparentRegRadModel.cc.
References G4VXTRenergyLoss::fAlphaGas, G4VXTRenergyLoss::fAlphaPlate, G4VXTRenergyLoss::fExitFlux, G4cout, and G4endl.
00043 : 00044 G4VXTRenergyLoss(anEnvelope,foilMat,gasMat,a,b,n,processName) 00045 { 00046 G4cout<<"Regular transparent X-ray TR radiator EM process is called"<<G4endl; 00047 00048 // Build energy and angular integral spectra of X-ray TR photons from 00049 // a radiator 00050 fExitFlux = true; 00051 fAlphaPlate = 10000; 00052 fAlphaGas = 1000; 00053 00054 // BuildTable(); 00055 }
G4XTRTransparentRegRadModel::~G4XTRTransparentRegRadModel | ( | ) |
G4double G4XTRTransparentRegRadModel::GetStackFactor | ( | G4double | energy, | |
G4double | gamma, | |||
G4double | varAngle | |||
) | [virtual] |
Reimplemented from G4VXTRenergyLoss.
Definition at line 145 of file G4XTRTransparentRegRadModel.cc.
References G4VXTRenergyLoss::fGasThick, G4VXTRenergyLoss::fPlateNumber, G4VXTRenergyLoss::fPlateThick, G4VXTRenergyLoss::GetGasFormationZone(), G4VXTRenergyLoss::GetGasLinearPhotoAbs(), G4VXTRenergyLoss::GetPlateFormationZone(), G4VXTRenergyLoss::GetPlateLinearPhotoAbs(), and G4VXTRenergyLoss::OneInterfaceXTRdEdx().
00147 { 00148 /* 00149 G4double result, Za, Zb, Ma, Mb, sigma; 00150 00151 Za = GetPlateFormationZone(energy,gamma,varAngle); 00152 Zb = GetGasFormationZone(energy,gamma,varAngle); 00153 Ma = GetPlateLinearPhotoAbs(energy); 00154 Mb = GetGasLinearPhotoAbs(energy); 00155 sigma = Ma*fPlateThick + Mb*fGasThick; 00156 00157 G4complex Ca(1.0+0.5*fPlateThick*Ma/fAlphaPlate,fPlateThick/Za/fAlphaPlate); 00158 G4complex Cb(1.0+0.5*fGasThick*Mb/fAlphaGas,fGasThick/Zb/fAlphaGas); 00159 00160 G4complex Ha = std::pow(Ca,-fAlphaPlate); 00161 G4complex Hb = std::pow(Cb,-fAlphaGas); 00162 G4complex H = Ha*Hb; 00163 G4complex F1 = (1.0 - Ha)*(1.0 - Hb )/(1.0 - H) 00164 * G4double(fPlateNumber) ; 00165 G4complex F2 = (1.0-Ha)*(1.0-Ha)*Hb/(1.0-H)/(1.0-H) 00166 * (1.0 - std::exp(-0.5*fPlateNumber*sigma)) ; 00167 // *(1.0 - std::pow(H,fPlateNumber)) ; 00168 G4complex R = (F1 + F2)*OneInterfaceXTRdEdx(energy,gamma,varAngle); 00169 // G4complex R = F2*OneInterfaceXTRdEdx(energy,gamma,varAngle); 00170 result = 2.0*std::real(R); 00171 return result; 00172 */ 00173 // numerically unstable result 00174 00175 G4double result, Qa, Qb, Q, aZa, bZb, aMa, bMb, D, sigma; 00176 00177 aZa = fPlateThick/GetPlateFormationZone(energy,gamma,varAngle); 00178 bZb = fGasThick/GetGasFormationZone(energy,gamma,varAngle); 00179 aMa = fPlateThick*GetPlateLinearPhotoAbs(energy); 00180 bMb = fGasThick*GetGasLinearPhotoAbs(energy); 00181 sigma = aMa*fPlateThick + bMb*fGasThick; 00182 Qa = std::exp(-0.5*aMa); 00183 Qb = std::exp(-0.5*bMb); 00184 Q = Qa*Qb; 00185 00186 G4complex Ha( Qa*std::cos(aZa), -Qa*std::sin(aZa) ); 00187 G4complex Hb( Qb*std::cos(bZb), -Qb*std::sin(bZb) ); 00188 G4complex H = Ha*Hb; 00189 G4complex Hs = conj(H); 00190 D = 1.0 /( (1 - Q)*(1 - Q) + 00191 4*Q*std::sin(0.5*(aZa + bZb))*std::sin(0.5*(aZa + bZb)) ); 00192 G4complex F1 = (1.0 - Ha)*(1.0 - Hb)*(1.0 - Hs) 00193 * G4double(fPlateNumber)*D; 00194 G4complex F2 = (1.0 - Ha)*(1.0 - Ha)*Hb*(1.0 - Hs)*(1.0 - Hs) 00195 // * (1.0 - std::pow(H,fPlateNumber)) * D*D; 00196 * (1.0 - std::exp(-0.5*fPlateNumber*sigma)) * D*D; 00197 G4complex R = (F1 + F2)*OneInterfaceXTRdEdx(energy,gamma,varAngle); 00198 result = 2.0*std::real(R); 00199 return result; 00200 00201 }
Reimplemented from G4VXTRenergyLoss.
Definition at line 68 of file G4XTRTransparentRegRadModel.cc.
References G4VXTRenergyLoss::fCompton, G4VXTRenergyLoss::fGamma, G4VXTRenergyLoss::fGasThick, G4VXTRenergyLoss::fPlateNumber, G4VXTRenergyLoss::fPlateThick, G4VXTRenergyLoss::fSigma1, G4VXTRenergyLoss::fSigma2, G4VXTRenergyLoss::GetGasCompton(), G4VXTRenergyLoss::GetGasLinearPhotoAbs(), G4VXTRenergyLoss::GetPlateCompton(), G4VXTRenergyLoss::GetPlateLinearPhotoAbs(), and G4INCL::Math::pi.
00069 { 00070 G4double result, sum = 0., tmp, cof1, cof2, cofMin, cofPHC,aMa, bMb, sigma; 00071 G4int k, kMax, kMin; 00072 00073 aMa = GetPlateLinearPhotoAbs(energy); 00074 bMb = GetGasLinearPhotoAbs(energy); 00075 00076 if(fCompton) 00077 { 00078 aMa += GetPlateCompton(energy); 00079 bMb += GetGasCompton(energy); 00080 } 00081 aMa *= fPlateThick; 00082 bMb *= fGasThick; 00083 00084 sigma = aMa + bMb; 00085 00086 cofPHC = 4*pi*hbarc; 00087 tmp = (fSigma1 - fSigma2)/cofPHC/energy; 00088 cof1 = fPlateThick*tmp; 00089 cof2 = fGasThick*tmp; 00090 00091 cofMin = energy*(fPlateThick + fGasThick)/fGamma/fGamma; 00092 cofMin += (fPlateThick*fSigma1 + fGasThick*fSigma2)/energy; 00093 cofMin /= cofPHC; 00094 00095 // if (fGamma < 1200) kMin = G4int(cofMin); // 1200 ? 00096 // else kMin = 1; 00097 00098 00099 kMin = G4int(cofMin); 00100 if (cofMin > kMin) kMin++; 00101 00102 // tmp = (fPlateThick + fGasThick)*energy*fMaxThetaTR; 00103 // tmp /= cofPHC; 00104 // kMax = G4int(tmp); 00105 // if(kMax < 0) kMax = 0; 00106 // kMax += kMin; 00107 00108 00109 kMax = kMin + 19; // 5; // 9; // kMin + G4int(tmp); 00110 00111 // tmp /= fGamma; 00112 // if( G4int(tmp) < kMin ) kMin = G4int(tmp); 00113 // G4cout<<"kMin = "<<kMin<<"; kMax = "<<kMax<<G4endl; 00114 00115 for( k = kMin; k <= kMax; k++ ) 00116 { 00117 tmp = pi*fPlateThick*(k + cof2)/(fPlateThick + fGasThick); 00118 result = (k - cof1)*(k - cof1)*(k + cof2)*(k + cof2); 00119 00120 if( k == kMin && kMin == G4int(cofMin) ) 00121 { 00122 sum += 0.5*std::sin(tmp)*std::sin(tmp)*std::abs(k-cofMin)/result; 00123 } 00124 else 00125 { 00126 sum += std::sin(tmp)*std::sin(tmp)*std::abs(k-cofMin)/result; 00127 } 00128 // G4cout<<"k = "<<k<<"; sum = "<<sum<<G4endl; 00129 } 00130 result = 4.*( cof1 + cof2 )*( cof1 + cof2 )*sum/energy; 00131 result *= ( 1. - std::exp(-fPlateNumber*sigma) )/( 1. - std::exp(-sigma) ); 00132 return result; 00133 }