source: trunk/source/geometry/magneticfield/test/field02/src/F02ElectroMagneticField.cc@ 1344

Last change on this file since 1344 was 1199, checked in by garnier, 16 years ago

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1//
2// ********************************************************************
3// * License and Disclaimer *
4// * *
5// * The Geant4 software is copyright of the Copyright Holders of *
6// * the Geant4 Collaboration. It is provided under the terms and *
7// * conditions of the Geant4 Software License, included in the file *
8// * LICENSE and available at http://cern.ch/geant4/license . These *
9// * include a list of copyright holders. *
10// * *
11// * Neither the authors of this software system, nor their employing *
12// * institutes,nor the agencies providing financial support for this *
13// * work make any representation or warranty, express or implied, *
14// * regarding this software system or assume any liability for its *
15// * use. Please see the license in the file LICENSE and URL above *
16// * for the full disclaimer and the limitation of liability. *
17// * *
18// * This code implementation is the result of the scientific and *
19// * technical work of the GEANT4 collaboration. *
20// * By using, copying, modifying or distributing the software (or *
21// * any work based on the software) you agree to acknowledge its *
22// * use in resulting scientific publications, and indicate your *
23// * acceptance of all terms of the Geant4 Software license. *
24// ********************************************************************
25//
26//
27// $Id: F02ElectroMagneticField.cc,v 1.4 2006/06/29 18:27:53 gunter Exp $
28// GEANT4 tag $Name: HEAD $
29//
30//
31// User Field class implementation.
32//
33
34
35#include "F02ElectroMagneticField.hh"
36#include "F02FieldMessenger.hh"
37
38#include "G4UniformElectricField.hh"
39#include "G4UniformMagField.hh"
40#include "G4MagneticField.hh"
41#include "G4FieldManager.hh"
42#include "G4TransportationManager.hh"
43#include "G4EquationOfMotion.hh"
44#include "G4EqMagElectricField.hh"
45#include "G4Mag_UsualEqRhs.hh"
46#include "G4MagIntegratorStepper.hh"
47#include "G4ChordFinder.hh"
48
49#include "G4ExplicitEuler.hh"
50#include "G4ImplicitEuler.hh"
51#include "G4SimpleRunge.hh"
52#include "G4SimpleHeum.hh"
53#include "G4ClassicalRK4.hh"
54#include "G4HelixExplicitEuler.hh"
55#include "G4HelixImplicitEuler.hh"
56#include "G4HelixSimpleRunge.hh"
57#include "G4CashKarpRKF45.hh"
58#include "G4RKG3_Stepper.hh"
59
60//////////////////////////////////////////////////////////////////////////
61//
62// Constructors:
63
64F02ElectroMagneticField::F02ElectroMagneticField()
65 : fStepper(NULL),fChordFinder(NULL),G4UniformElectricField(
66 G4ThreeVector(0.0,0.0*kilovolt/cm,1000.0*kilovolt/cm))
67{
68 fEMfield = new G4UniformElectricField(
69 G4ThreeVector(
70 0.0*kilovolt/cm,
71 0.0*kilovolt/cm,
72 1000.0*kilovolt/cm ) );
73
74 fFieldMessenger = new F02FieldMessenger(this) ;
75
76 fEquation = new G4EqMagElectricField(fEMfield);
77
78 fMinStep = 1.0*mm ; // minimal step of 1 mm is default
79
80 fStepperType = 4 ; // ClassicalRK4 is default stepper
81
82 fFieldManager = G4TransportationManager::GetTransportationManager()
83 ->GetFieldManager();
84 fFieldManager->SetFieldChangesEnergy(true);
85 UpdateField();
86
87 // GetGlobalFieldManager()->CreateChordFinder(this);
88}
89
90/////////////////////////////////////////////////////////////////////////////////
91
92F02ElectroMagneticField::F02ElectroMagneticField(G4ThreeVector pFV):
93G4UniformElectricField(pFV)
94{
95 fEMfield = new G4UniformElectricField(pFV);
96 GetGlobalFieldManager()->CreateChordFinder(this);
97}
98
99////////////////////////////////////////////////////////////////////////////////
100
101F02ElectroMagneticField::~F02ElectroMagneticField()
102{
103 // GetGlobalFieldManager()->SetDetectorField(0);
104
105 if(fEMfield) delete fEMfield;
106 if(fChordFinder) delete fChordFinder;
107 if(fStepper) delete fStepper;
108}
109
110/////////////////////////////////////////////////////////////////////////////
111//
112// Update field
113//
114
115void F02ElectroMagneticField::UpdateField()
116{
117 SetStepper();
118 G4cout<<"The minimal step is equal to "<<fMinStep/mm<<" mm"<<G4endl ;
119
120 fFieldManager->SetDetectorField(fEMfield );
121
122 if(fChordFinder) delete fChordFinder;
123
124 fChordFinder = new G4ChordFinder( fEMfield, fMinStep,fStepper);
125
126 fFieldManager->SetChordFinder( fChordFinder );
127
128 return;
129}
130
131/////////////////////////////////////////////////////////////////////////////
132//
133// Set stepper according to the stepper type
134//
135
136void F02ElectroMagneticField::SetStepper()
137{
138 G4int nvar = 8;
139
140 if(fStepper) delete fStepper;
141
142 switch ( fStepperType )
143 {
144 case 0:
145 fStepper = new G4ExplicitEuler( fEquation, nvar );
146 G4cout<<"G4ExplicitEuler is calledS"<<G4endl;
147 break;
148 case 1:
149 fStepper = new G4ImplicitEuler( fEquation, nvar );
150 G4cout<<"G4ImplicitEuler is called"<<G4endl;
151 break;
152 case 2:
153 fStepper = new G4SimpleRunge( fEquation, nvar );
154 G4cout<<"G4SimpleRunge is called"<<G4endl;
155 break;
156 case 3:
157 fStepper = new G4SimpleHeum( fEquation, nvar );
158 G4cout<<"G4SimpleHeum is called"<<G4endl;
159 break;
160 case 4:
161 fStepper = new G4ClassicalRK4( fEquation, nvar );
162 G4cout<<"G4ClassicalRK4 (default) is called"<<G4endl;
163 break;
164 case 5:
165 fStepper = new G4CashKarpRKF45( fEquation, nvar );
166 G4cout<<"G4CashKarpRKF45 is called"<<G4endl;
167 break;
168 /* ***********************************
169 case 6:
170 fStepper = new G4RKG3_Stepper( fEquation );
171 G4cout<<"G4RKG3_Stepper is called"<<G4endl;
172 break;
173 case 7:
174 fStepper = new G4HelixExplicitEuler( fEquation );
175 G4cout<<"G4HelixExplicitEuler is called"<<G4endl;
176 break;
177 case 8:
178 fStepper = new G4HelixImplicitEuler( fEquation );
179 G4cout<<"G4HelixImplicitEuler is called"<<G4endl;
180 break;
181 case 9:
182 fStepper = new G4HelixSimpleRunge( fEquation );
183 G4cout<<"G4HelixSimpleRunge is called"<<G4endl;
184 break;
185 ****************************************** */
186 default: fStepper = 0;
187 }
188 return;
189}
190
191/////////////////////////////////////////////////////////////////////////////
192//
193// Set the value of the Global Field to fieldValue along Z
194//
195
196void F02ElectroMagneticField::SetFieldValue(G4double fieldValue)
197{
198 if(fEMfield) delete fEMfield;
199 fEMfield = new G4UniformElectricField(G4ThreeVector(0,0,fieldValue));
200 // UpdateField();
201}
202
203///////////////////////////////////////////////////////////////////////////////
204//
205// Set the value of the Global Field
206//
207
208void F02ElectroMagneticField::SetFieldValue(G4ThreeVector fieldVector)
209{
210 // Find the Field Manager for the global field
211 G4FieldManager* fieldMgr= GetGlobalFieldManager();
212
213 if(fieldVector != G4ThreeVector(0.,0.,0.))
214 {
215 if(fEMfield) delete fEMfield;
216 fEMfield = new G4UniformElectricField(fieldVector);
217
218 // UpdateField();
219
220 fieldMgr->SetDetectorField(this);
221 }
222 else
223 {
224 // If the new field's value is Zero, then it is best to
225 // insure that it is not used for propagation.
226
227 G4MagneticField* fEMfield = NULL;
228 fieldMgr->SetDetectorField(fEMfield);
229 }
230}
231
232////////////////////////////////////////////////////////////////////////////////
233//
234// Utility method
235
236G4FieldManager* F02ElectroMagneticField::GetGlobalFieldManager()
237{
238 return G4TransportationManager::GetTransportationManager()
239 ->GetFieldManager();
240}
241
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