source: trunk/source/processes/hadronic/models/chiral_inv_phase_space/interface/include/G4QCaptureAtRest.hh @ 962

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26// $Id: G4QCaptureAtRest.hh,v 1.6 2008/10/02 21:10:07 dennis Exp $
27// GEANT4 tag $Name: geant4-09-02-ref-02 $
28//
29//      ---------------- G4QCaptureAtRest header ----------------
30//                 by Mikhail Kossov, December 2003.
31//  Header of G4QCaptureAtRest class (mu-,pi-,K-) of the CHIPS Simulation Branch in GEANT4
32// -------------------------------------------------------------------------------
33// This is a unique CHIPS class for the Nuclear Capture At Rest Prosesses.
34// -------------------------------------------------------------------------------
35// At present (Dec.03) only pi-, K- and antiNucleon capture is implemented, which
36// are the most crucial for the in matter simulation. The hyperon capture (Sigma-,
37// Xi-, Omega-, antiSigma+) is implemented, but not tested and it is not clear how
38// frequently this kind of interaction takes place in the simulation of the hadronic
39// showers. The antiNeutron Capture At Rest is implemented by this G4QCaptureAtRest
40// class, but it is not clear how the anti-neutrons are stopped in Geant4 tracking.
41// It can be stopped only by interactions with electrons, as the annihilation
42// cross section is huge and any interaction with nucleus results in annihilation.
43// --> The mu-&tau- Capture At Rest (mu-,nu)&(mu-,nu) are weak processes, which must
44// be simulated together with the reversed Betha decay (e-,nu). While mu- capture is
45// similar to the pi- capture from the nuclear fragmentation point of view (the energy
46// scale is shrinked mecause m_mu<m_pi and a part of energy is lost because of the
47// neutrino radiation), the time scale of the mu- capture process is not clear,
48// but it is clear, that it is well delayed. By this reason the mu- capture is not
49// included in the G4QCaptureAtRest and must be implemented in the "LongLivingDecay"
50// branch of simulation, which includes excited states of nuclei and short living
51// isotopes. On the "Fast Simulation" Level all radioactiv isotopes, long living
52// nuclear excitations, mu-atoms etc, which can be important for the background
53// signals, must be collected in the continuous database and simulated separately.
54// --> CHIPS is SU(3) event generator, so it does not include reactions with the
55// heavy (c,b,t) quarks involved such as tau- or antiDs-, which can be simulated
56// only by SU(6) QUIPS (QUark Invariant Phase Space) model.-December 2003.M.Kossov.-
57// -------------------------------------------------------------------------------
58// All algorithms are similar: the captured particle is absorbed by a nuclear cluster
59// with the subsequent Quark Exchange nuclear fragmentation. The Anti-Proton (antiSigma+)
60// Capture algorithm is more complicated: the anti-baryon annihilates with the quasyfree
61// nucleons on the nuclear periphery. The peripheral interaction results in a number
62// of mesons. A part of them misses the nucleus and comes directly to the output,
63// while others create Multy Quasmon Excitation in the nucleus with the subsequent
64// Quark Excange Fragmentation of the nucleus. At present the two step mechanism of
65// the antiProton-Nucleus interaction is hardwired in the G4QEnvironment class, but
66// with time the first step of the interaction can be moved to this G4QCaptureAtRest
67// class, to make the G4QEnvirement class simpler and better defined. This is
68// necessary because the G4QEnvironment class is going to loos the previlage of
69// the CHIPS Head Class (as previously the G4Quasmon class lost it) and G4QCollision
70// class is going to be the CHIPS Head Class, where a few Nuclear Environments can
71// exist (e.g. the Nuclear Environment of the Projectile Nucleus and the Nuclear
72// Environment of the Target Nucleus). By the way the antiProton-H1 interaction At
73// Rest (CHIPSI) can be still simulated with only the G4Quasmon class, as this
74// reaction does not have any nuclear environment.- December 2003.Mikhail Kossov.-
75// --------------------------------------------------------------------------------
76// ****************************************************************************************
77// ********* This HEADER is temporary moved from the photolepton_hadron directory *********
78// ******* DO NOT MAKE ANY CHANGE! With time it'll move back to photolepton...(M.K.) ******
79// ****************************************************************************************
80
81#ifndef G4QCaptureAtRest_hh
82#define G4QCaptureAtRest_hh
83
84// GEANT4 Headers
85#include "globals.hh"
86#include "G4ios.hh"
87#include "G4VRestProcess.hh"
88#include "G4ParticleTypes.hh"
89#include "G4VParticleChange.hh"
90#include "G4ParticleDefinition.hh"
91#include "G4DynamicParticle.hh"
92#include "G4NucleiPropertiesTable.hh"
93#include "Randomize.hh"
94#include "G4ThreeVector.hh"
95#include "G4LorentzVector.hh"
96#include "G4HadronicProcessType.hh"
97
98// CHIPS Headers
99#include "G4QEnvironment.hh"
100#include "G4QIsotope.hh"
101#include "G4QPDGToG4Particle.hh"
102//<vector> is included in G4QIsotope.hh
103//#include <vector>
104
105class G4QCaptureAtRest : public G4VRestProcess
106{ 
107private:
108
109  // Hide assignment operator as private
110  G4QCaptureAtRest& operator=(const G4QCaptureAtRest &right);
111
112  // Copy constructor
113  G4QCaptureAtRest(const G4QCaptureAtRest& );
114
115public:
116
117  // Constructor
118  G4QCaptureAtRest(const G4String& processName ="CHIPSNuclearAbsorptionAtRest");
119
120  // Destructor
121  virtual ~G4QCaptureAtRest();
122
123  virtual G4bool IsApplicable(const G4ParticleDefinition& particle);
124
125  virtual void PreparePhysicsTable(const G4ParticleDefinition&);
126
127  virtual void BuildPhysicsTable(const G4ParticleDefinition&);
128
129  G4VParticleChange* AtRestDoIt(const G4Track& aTrack, const G4Step& aStep); 
130
131  G4LorentzVector GetEnegryMomentumConservation();
132
133  G4int GetNumberOfNeutronsInTarget();
134
135  // Static functions
136  static void SetManual();
137  static void SetStandard();
138  static void SetParameters(G4double temper=180., G4double ssin2g=.1, G4double etaetap=.3,
139                            G4double fN=0., G4double fD=0., G4double cP=1., G4double mR=1.,
140                            G4int npCHIPSWorld=234, G4double solAn=.5, G4bool efFlag=false,
141                            G4double piTh=141.4,G4double mpi2=20000.,G4double dinum=1880.);
142
143protected:                         
144
145  // zero mean lifetime
146  G4double GetMeanLifeTime(const G4Track& aTrack, G4ForceCondition* );
147  void MuCaptureEMCascade(G4int Z, G4int N, std::vector<G4double>* dV);
148  G4double RandomizeDecayElectron(G4int Z); // Randomize energy of decay electron (in MeV)
149private:
150
151  G4bool RandomizeMuDecayOrCapture(G4int Z, G4int N); // true=MuCapture, false=MuDecay
152  void CalculateEnergyDepositionOfMuCapture(G4int Z); // (2p->1s, MeV) @@ Now N-independent
153  G4bool RandomizeTauDecayOrCapture(G4int Z, G4int N);// true=TauCapture, false=TauDecay
154  void CalculateEnergyDepositionOfTauCapture(G4int Z);// (2p->1s, MeV) @@N-independ,Improve
155
156// BODY
157private:
158  // Static Parameters
159  static G4bool   manualFlag;  // If false then standard parameters are used
160  static G4int    nPartCWorld; // The#of particles for hadronization (limit of A of fragm.)
161  // -> Parameters of the G4Quasmon class:
162  static G4double Temperature; // Quasmon Temperature
163  static G4double SSin2Gluons; // Percent of ssbar sea in a constituen gluon
164  static G4double EtaEtaprime; // Part of eta-prime in all etas
165  // -> Parameters of the G4QNucleus class:
166  static G4double freeNuc;     // probability of the quasi-free baryon on surface
167  static G4double freeDib;     // probability of the quasi-free dibaryon on surface
168  static G4double clustProb;   // clusterization probability in dense region
169  static G4double mediRatio;   // relative vacuum hadronization probability
170  // -> Parameters of the G4QEnvironment class:
171  static G4bool   EnergyFlux;  // Flag for Energy Flux use instead of Multy Quasmon
172  static G4double SolidAngle;  // Part of Solid Angle to capture secondaries(@@A-dep)
173  static G4double PiPrThresh;  // Pion Production Threshold for gammas
174  static G4double M2ShiftVir;  // Shift for M2=-Q2=m_pi^2 of the virtual gamma
175  static G4double DiNuclMass;  // Double Nucleon Mass for virtual normalization
176  //
177  // Working parameters
178  G4LorentzVector EnMomConservation;                  // Residual of Energy/Momentum Cons.
179  G4int nOfNeutrons;                                  // #of neutrons in the target nucleus
180  // Modifires for the reaction
181  G4double Time;                                      // Time shift of the capture reaction
182  G4double EnergyDeposition;                          // Energy deposited in the reaction
183
184};
185#endif
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