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9.6.p02
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geant4_9_6_p02
source
processes
electromagnetic
adjoint
include
G4AdjointComptonModel.hh
Go to the documentation of this file.
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//
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// ********************************************************************
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// * License and Disclaimer *
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// * Neither the authors of this software system, nor their employing *
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// * institutes,nor the agencies providing financial support for this *
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// * work make any representation or warranty, express or implied, *
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// * regarding this software system or assume any liability for its *
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// * use. Please see the license in the file LICENSE and URL above *
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// * *
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// * This code implementation is the result of the scientific and *
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// * technical work of the GEANT4 collaboration. *
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// * By using, copying, modifying or distributing the software (or *
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// * acceptance of all terms of the Geant4 Software license. *
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// ********************************************************************
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//
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// $Id: G4AdjointComptonModel.hh 69844 2013-05-16 09:19:33Z gcosmo $
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//
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// Class: G4AdjointComptonModel
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// Author: L. Desorgher
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// Organisation: SpaceIT GmbH
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// Contract: ESA contract 21435/08/NL/AT
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// Customer: ESA/ESTEC
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//
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// CHANGE HISTORY
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// --------------
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// ChangeHistory:
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// 1 September 2007 creation by L. Desorgher
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// 11 November 2009 Implement the use of approximated diffCS as an alternative of CSMatrix.
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//
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//-------------------------------------------------------------
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// Documentation:
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// Model for the adjoint compton scattering.
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//
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#ifndef G4AdjointComptonModel_h
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#define G4AdjointComptonModel_h 1
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#include "
globals.hh
"
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#include "
G4VEmAdjointModel.hh
"
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#include "
G4VEmProcess.hh
"
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class
G4AdjointComptonModel
:
public
G4VEmAdjointModel
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{
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public
:
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G4AdjointComptonModel
();
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~G4AdjointComptonModel
();
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virtual
void
SampleSecondaries
(
const
G4Track
& aTrack,
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G4bool
IsScatProjToProjCase,
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G4ParticleChange
* fParticleChange);
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void
RapidSampleSecondaries
(
const
G4Track
& aTrack,
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G4bool
IsScatProjToProjCase,
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G4ParticleChange
* fParticleChange);
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virtual
G4double
DiffCrossSectionPerAtomPrimToScatPrim
(
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G4double
kinEnergyProj,
// kinetic energy of the primary particle before the interaction
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G4double
kinEnergyScatProj,
// kinetic energy of the primary particle after the interaction
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G4double
Z
,
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G4double
A = 0.);
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virtual
G4double
DiffCrossSectionPerAtomPrimToSecond
(
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G4double
kinEnergyProj,
// kinetic energy of the primary particle before the interaction
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G4double
kinEnergyProd,
// kinetic energy of the secondary particle
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G4double
Z,
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G4double
A = 0.);
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virtual
G4double
GetSecondAdjEnergyMaxForScatProjToProjCase
(
G4double
PrimAdjEnergy);
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virtual
G4double
GetSecondAdjEnergyMinForProdToProjCase
(
G4double
PrimAdjEnergy);
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virtual
G4double
AdjointCrossSection
(
const
G4MaterialCutsCouple
* aCouple,
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G4double
primEnergy,
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G4bool
IsScatProjToProjCase);
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virtual
G4double
GetAdjointCrossSection
(
const
G4MaterialCutsCouple
* aCouple,
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G4double
primEnergy,
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G4bool
IsScatProjToProjCase);
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inline
void
SetDirectProcess
(
G4VEmProcess
* aProcess){theDirectEMProcess = aProcess;};
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private
:
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G4VEmProcess
* theDirectEMProcess;
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G4double
G4direct_CS;
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};
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#endif
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