source: trunk/source/processes/optical/include/G4OpBoundaryProcess.hh @ 985

Last change on this file since 985 was 963, checked in by garnier, 15 years ago

update processes

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26//
27// $Id: G4OpBoundaryProcess.hh,v 1.18 2008/11/07 17:59:37 gum Exp $
28// GEANT4 tag $Name: geant4-09-02-ref-02 $
29//
30//
31////////////////////////////////////////////////////////////////////////
32// Optical Photon Boundary Process Class Definition
33////////////////////////////////////////////////////////////////////////
34//
35// File:        G4OpBoundaryProcess.hh
36// Description: Discrete Process -- reflection/refraction at
37//                                  optical interfaces
38// Version:     1.1
39// Created:     1997-06-18
40// Modified:    2005-07-28 add G4ProcessType to constructor
41//              1999-10-29 add method and class descriptors
42//              1999-10-10 - Fill NewMomentum/NewPolarization in
43//                           DoAbsorption. These members need to be
44//                           filled since DoIt calls
45//                           aParticleChange.SetMomentumChange etc.
46//                           upon return (thanks to: Clark McGrew)
47//              2006-11-04 - add capability of calculating the reflectivity
48//                           off a metal surface by way of a complex index
49//                           of refraction - Thanks to Sehwook Lee and John
50//                           Hauptman (Dept. of Physics - Iowa State Univ.)
51//
52// Author:      Peter Gumplinger
53//              adopted from work by Werner Keil - April 2/96
54// mail:        gum@triumf.ca
55//
56// CVS version tag:
57////////////////////////////////////////////////////////////////////////
58
59#ifndef G4OpBoundaryProcess_h
60#define G4OpBoundaryProcess_h 1
61
62/////////////
63// Includes
64/////////////
65
66#include "globals.hh"
67#include "templates.hh"
68#include "geomdefs.hh"
69#include "Randomize.hh"
70
71#include "G4RandomTools.hh"
72#include "G4RandomDirection.hh"
73
74#include "G4Step.hh"
75#include "G4VDiscreteProcess.hh"
76#include "G4DynamicParticle.hh"
77#include "G4Material.hh"
78#include "G4LogicalBorderSurface.hh"
79#include "G4LogicalSkinSurface.hh"
80#include "G4OpticalSurface.hh"
81#include "G4OpticalPhoton.hh"
82#include "G4TransportationManager.hh"
83
84// Class Description:
85// Discrete Process -- reflection/refraction at optical interfaces.
86// Class inherits publicly from G4VDiscreteProcess.
87// Class Description - End:
88
89/////////////////////
90// Class Definition
91/////////////////////
92
93enum G4OpBoundaryProcessStatus {  Undefined,
94                                  FresnelRefraction, FresnelReflection,
95                                  TotalInternalReflection,
96                                  LambertianReflection, LobeReflection,
97                                  SpikeReflection, BackScattering,
98                                  Absorption, Detection, NotAtBoundary,
99                                  SameMaterial, StepTooSmall, NoRINDEX };
100
101class G4OpBoundaryProcess : public G4VDiscreteProcess
102{
103
104private:
105
106        //////////////
107        // Operators
108        //////////////
109
110        // G4OpBoundaryProcess& operator=(const G4OpBoundaryProcess &right);
111
112        // G4OpBoundaryProcess(const G4OpBoundaryProcess &right);
113
114public: // Without description
115
116        ////////////////////////////////
117        // Constructors and Destructor
118        ////////////////////////////////
119
120        G4OpBoundaryProcess(const G4String& processName = "OpBoundary",
121                                     G4ProcessType type = fOptical);
122
123        ~G4OpBoundaryProcess();
124
125        ////////////
126        // Methods
127        ////////////
128
129public: // With description
130
131        G4bool IsApplicable(const G4ParticleDefinition& aParticleType);
132        // Returns true -> 'is applicable' only for an optical photon.
133
134        G4double GetMeanFreePath(const G4Track& ,
135                                 G4double ,
136                                 G4ForceCondition* condition);
137        // Returns infinity; i. e. the process does not limit the step,
138        // but sets the 'Forced' condition for the DoIt to be invoked at
139        // every step. However, only at a boundary will any action be
140        // taken.
141
142        G4VParticleChange* PostStepDoIt(const G4Track& aTrack,
143                                       const G4Step&  aStep);
144        // This is the method implementing boundary processes.
145
146        G4OpticalSurfaceModel GetModel() const;
147        // Returns the optical surface mode.
148
149        G4OpBoundaryProcessStatus GetStatus() const;
150        // Returns the current status.
151
152        G4double GetIncidentAngle();
153        // Returns the incident angle of optical photon
154
155        G4double GetReflectivity(G4double E1_perp,
156                                 G4double E1_parl,
157                                 G4double incidentangle,
158                                 G4double RealRindex,
159                                 G4double ImaginaryRindex);
160        // Returns the Reflectivity on a metalic surface
161
162        void           SetModel(G4OpticalSurfaceModel model);
163        // Set the optical surface model to be followed
164        // (glisur || unified).
165
166private:
167
168        G4bool G4BooleanRand(const G4double prob) const;
169
170        G4ThreeVector GetFacetNormal(const G4ThreeVector& Momentum,
171                                     const G4ThreeVector&  Normal) const;
172
173        void DielectricMetal();
174        void DielectricDielectric();
175
176        void ChooseReflection();
177        void DoAbsorption();
178        void DoReflection();
179
180private:
181
182        G4double thePhotonMomentum;
183
184        G4ThreeVector OldMomentum;
185        G4ThreeVector OldPolarization;
186
187        G4ThreeVector NewMomentum;
188        G4ThreeVector NewPolarization;
189
190        G4ThreeVector theGlobalNormal;
191        G4ThreeVector theFacetNormal;
192
193        G4Material* Material1;
194        G4Material* Material2;
195
196        G4OpticalSurface* OpticalSurface;
197
198        G4double Rindex1;
199        G4double Rindex2;
200
201        G4double cost1, cost2, sint1, sint2;
202
203        G4OpBoundaryProcessStatus theStatus;
204
205        G4OpticalSurfaceModel theModel;
206
207        G4OpticalSurfaceFinish theFinish;
208
209        G4double theReflectivity;
210        G4double theEfficiency;
211        G4double prob_sl, prob_ss, prob_bs;
212
213        G4int iTE, iTM;
214
215        G4double kCarTolerance;
216};
217
218////////////////////
219// Inline methods
220////////////////////
221
222inline
223G4bool G4OpBoundaryProcess::G4BooleanRand(const G4double prob) const
224{
225  /* Returns a random boolean variable with the specified probability */
226
227  return (G4UniformRand() < prob);
228}
229
230inline
231G4bool G4OpBoundaryProcess::IsApplicable(const G4ParticleDefinition& 
232                                                       aParticleType)
233{
234   return ( &aParticleType == G4OpticalPhoton::OpticalPhoton() );
235}
236
237inline
238G4OpticalSurfaceModel G4OpBoundaryProcess::GetModel() const
239{
240   return theModel;
241}
242
243inline
244G4OpBoundaryProcessStatus G4OpBoundaryProcess::GetStatus() const
245{
246   return theStatus;
247}
248
249inline
250void G4OpBoundaryProcess::SetModel(G4OpticalSurfaceModel model)
251{
252   theModel = model;
253}
254
255inline
256void G4OpBoundaryProcess::ChooseReflection()
257{
258                 G4double rand = G4UniformRand();
259                 if ( rand >= 0.0 && rand < prob_ss ) {
260                    theStatus = SpikeReflection;
261                    theFacetNormal = theGlobalNormal;
262                 }
263                 else if ( rand >= prob_ss &&
264                           rand <= prob_ss+prob_sl) {
265                    theStatus = LobeReflection;
266                 }
267                 else if ( rand > prob_ss+prob_sl &&
268                           rand < prob_ss+prob_sl+prob_bs ) {
269                    theStatus = BackScattering;
270                 }
271                 else {
272                    theStatus = LambertianReflection;
273                 }
274}
275
276inline
277void G4OpBoundaryProcess::DoAbsorption()
278{
279              theStatus = Absorption;
280
281              if ( G4BooleanRand(theEfficiency) ) {
282               
283                 // EnergyDeposited =/= 0 means: photon has been detected
284                 theStatus = Detection;
285                 aParticleChange.ProposeLocalEnergyDeposit(thePhotonMomentum);
286              }
287              else {
288                 aParticleChange.ProposeLocalEnergyDeposit(0.0);
289              }
290
291              NewMomentum = OldMomentum;
292              NewPolarization = OldPolarization;
293
294//              aParticleChange.ProposeEnergy(0.0);
295              aParticleChange.ProposeTrackStatus(fStopAndKill);
296}
297
298inline
299void G4OpBoundaryProcess::DoReflection()
300{
301        if ( theStatus == LambertianReflection ) {
302
303          NewMomentum = G4LambertianRand(theGlobalNormal);
304          theFacetNormal = (NewMomentum - OldMomentum).unit();
305
306        }
307        else if ( theFinish == ground ) {
308
309          theStatus = LobeReflection;
310          theFacetNormal = GetFacetNormal(OldMomentum,theGlobalNormal);
311          G4double PdotN = OldMomentum * theFacetNormal;
312          NewMomentum = OldMomentum - (2.*PdotN)*theFacetNormal;
313
314        }
315        else {
316
317          theStatus = SpikeReflection;
318          theFacetNormal = theGlobalNormal;
319          G4double PdotN = OldMomentum * theFacetNormal;
320          NewMomentum = OldMomentum - (2.*PdotN)*theFacetNormal;
321
322        }
323        G4double EdotN = OldPolarization * theFacetNormal;
324        NewPolarization = -OldPolarization + (2.*EdotN)*theFacetNormal;
325}
326
327#endif /* G4OpBoundaryProcess_h */
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