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<< 62 fScorerRingLog(0), 62 fPosWindow1 = 0.004120 * cm; << 63 fLogWorld(0), 63 << 64 fMessenger(0), 64 // Scattering Foil << 65 fWorldVisAtt(0), 65 fPosPrimFoil = 2.650000 * cm; << 66 fWindowVisAtt(0), 66 fHalfThicknessPrimFoil = 0.0 * cm; << 67 fPrimFoilVisAtt(0), 67 << 68 fMonVisAtt(0), 68 // Monitor Chamber << 69 fBagVisAtt(0), 69 fPosMon0 = 5.000000 * cm; << 70 fHeliumVisAtt(0), 70 fPosMon1 = 5.011270 * cm; << 71 fRingVisAtt(0), 71 << 72 fScorerVisAtt(0) 72 // Helium Bag << 73 { 73 fPosBag0 = 6.497500 * cm; << 74 // Exit Window 74 fPosHelium0 = 6.500000 * cm; << 75 fPosWindow0 = 0.000000*cm; 75 fPosHelium1 = 116.500000 * cm; << 76 fPosWindow1 = 0.004120*cm; 76 fPosBag1 = 116.502500 * cm; << 77 77 fThicknessRing = 1.4 * cm; << 78 // Scattering Foil 78 << 79 fPosPrimFoil = 2.650000*cm; 79 // Scoring Plane << 80 80 fPosScorer = 118.200000 * cm; << 81 // Monitor Chamber 81 fThicknessScorer = 0.001 * cm; << 82 fPosMon0 = 5.000000*cm; 82 fWidthScorerRing = 0.1 * cm; << 83 fPosMon1 = 5.011270*cm; 83 << 84 84 // Radii << 85 // Helium Bag 85 fRadOverall = 23.3 * cm; << 86 fPosBag0 = 6.497500*cm; 86 fRadRingInner = 20.0 * cm; << 87 fPosHelium0 = 6.500000*cm; 87 << 88 fPosHelium1 = 116.500000*cm; 88 // Extra space remaining in world volume aro << 89 fPosBag1 = 116.502500*cm; 89 fPosDelta = 1. * cm; << 90 fThicknessRing = 1.4*cm; 90 fRadDelta = 0.1 * cm; << 91 >> 92 // Scoring Plane >> 93 fPosScorer = 118.200000*cm; >> 94 fThicknessScorer= 0.001*cm; >> 95 fWidthScorerRing= 0.1*cm; >> 96 >> 97 // Radii >> 98 fRadOverall = 23.3*cm; >> 99 fRadRingInner = 20.0*cm; >> 100 >> 101 // Extra space remaining in world volume around apparatus >> 102 fPosDelta = 1.*cm; >> 103 fRadDelta = 0.1*cm; 91 104 92 fMessenger = new ElectronBenchmarkDetectorMe << 105 fMessenger = new ElectronBenchmarkDetectorMessenger(this); 93 DefineMaterials(); << 106 DefineMaterials(); 94 } 107 } 95 108 96 //....oooOO0OOooo........oooOO0OOooo........oo 109 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... 97 110 98 ElectronBenchmarkDetector::~ElectronBenchmarkD 111 ElectronBenchmarkDetector::~ElectronBenchmarkDetector() 99 { 112 { 100 delete fMessenger; << 113 delete fMessenger; 101 << 114 102 delete fWorldVisAtt; << 115 delete fWorldVisAtt; 103 delete fWindowVisAtt; << 116 delete fWindowVisAtt; 104 delete fPrimFoilVisAtt; << 117 delete fPrimFoilVisAtt; 105 delete fMonVisAtt; << 118 delete fMonVisAtt; 106 delete fBagVisAtt; << 119 delete fBagVisAtt; 107 delete fHeliumVisAtt; << 120 delete fHeliumVisAtt; 108 delete fRingVisAtt; << 121 delete fRingVisAtt; 109 delete fScorerVisAtt; << 122 delete fScorerVisAtt; 110 } 123 } 111 124 112 //....oooOO0OOooo........oooOO0OOooo........oo 125 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... 113 126 114 G4VPhysicalVolume* ElectronBenchmarkDetector:: 127 G4VPhysicalVolume* ElectronBenchmarkDetector::Construct() 115 { 128 { 116 return CreateGeometry(); << 129 return CreateGeometry(); 117 } << 118 << 119 //....oooOO0OOooo........oooOO0OOooo........oo << 120 << 121 void ElectronBenchmarkDetector::DefineMaterial << 122 { << 123 // Use NIST database for elements and materi << 124 G4NistManager* man = G4NistManager::Instance << 125 man->SetVerbose(1); << 126 << 127 // Take all elements and materials from NIST << 128 man->FindOrBuildMaterial("G4_He"); << 129 man->FindOrBuildMaterial("G4_Be"); << 130 man->FindOrBuildMaterial("G4_Al"); << 131 man->FindOrBuildMaterial("G4_Ti"); << 132 man->FindOrBuildMaterial("G4_Ta"); << 133 man->FindOrBuildMaterial("G4_AIR"); << 134 man->FindOrBuildMaterial("G4_MYLAR"); << 135 << 136 G4Element* C = man->FindOrBuildElement("C"); << 137 G4Element* Cu = man->FindOrBuildElement("Cu" << 138 G4Element* Au = man->FindOrBuildElement("Au" << 139 G4Element* Ti = man->FindOrBuildElement("Ti" << 140 G4Element* Al = man->FindOrBuildElement("Al" << 141 G4Element* V = man->FindOrBuildElement("V"); << 142 << 143 // Define materials not in NIST. << 144 // While the NIST database does contain defa << 145 // those defaults have different densities t << 146 // benchmark specification. << 147 G4double density; << 148 G4int ncomponents; << 149 G4double fractionmass; << 150 << 151 G4Material* G4_C = new G4Material("G4_C", de << 152 G4_C->AddElement(C, fractionmass = 1.00); << 153 << 154 G4Material* G4_Cu = new G4Material("G4_Cu", << 155 G4_Cu->AddElement(Cu, fractionmass = 1.00); << 156 << 157 G4Material* G4_Au = new G4Material("G4_Au", << 158 G4_Au->AddElement(Au, fractionmass = 1.00); << 159 << 160 G4Material* TiAlloy = new G4Material("TiAllo << 161 TiAlloy->AddElement(Ti, fractionmass = 0.90) << 162 TiAlloy->AddElement(Al, fractionmass = 0.06) << 163 TiAlloy->AddElement(V, fractionmass = 0.04); << 164 << 165 // Print materials table << 166 G4cout << *(G4Material::GetMaterialTable()) << 167 } << 168 << 169 //....oooOO0OOooo........oooOO0OOooo........oo << 170 << 171 G4VPhysicalVolume* ElectronBenchmarkDetector:: << 172 { << 173 if (fPhysiWorld) return fPhysiWorld; << 174 << 175 // Instantiate the world << 176 fPhysiWorld = CreateWorld(); << 177 fLogWorld = fPhysiWorld->GetLogicalVolume(); << 178 << 179 // Instantiate the geometry << 180 CreateExitWindow(fLogWorld); << 181 CreatePrimaryFoil(fLogWorld); << 182 CreateMonitor(fLogWorld); << 183 CreateHeliumBag(fLogWorld); << 184 << 185 // Create the scorers << 186 CreateScorer(fLogWorld); << 187 << 188 return fPhysiWorld; << 189 } 130 } 190 131 191 //....oooOO0OOooo........oooOO0OOooo........oo 132 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... 192 133 193 G4VPhysicalVolume* ElectronBenchmarkDetector:: << 134 void ElectronBenchmarkDetector::DefineMaterials(){ 194 { << 135 // Use NIST database for elements and materials whereever possible. 195 G4double halfLengthWorld = fPosScorer / 2. + << 136 G4NistManager* man = G4NistManager::Instance(); 196 G4double radWorld = fRadOverall + fRadDelta; << 137 man->SetVerbose(1); 197 G4VSolid* worldSolid = << 138 198 new G4Tubs("WorldSolid", 0. * cm, radWorld << 139 // Take all elements and materials from NIST 199 G4LogicalVolume* worldLog = << 140 man->FindOrBuildMaterial("G4_He"); 200 new G4LogicalVolume(worldSolid, G4Material << 141 man->FindOrBuildMaterial("G4_Be"); 201 << 142 man->FindOrBuildMaterial("G4_Al"); 202 fWorldVisAtt = new G4VisAttributes(G4Colour( << 143 man->FindOrBuildMaterial("G4_Ti"); 203 worldLog->SetVisAttributes(fWorldVisAtt); << 144 man->FindOrBuildMaterial("G4_Ta"); >> 145 man->FindOrBuildMaterial("G4_AIR"); >> 146 man->FindOrBuildMaterial("G4_MYLAR"); >> 147 >> 148 G4Element* C = man->FindOrBuildElement("C"); >> 149 G4Element* Cu = man->FindOrBuildElement("Cu"); >> 150 G4Element* Au = man->FindOrBuildElement("Au"); >> 151 G4Element* Ti = man->FindOrBuildElement("Ti"); >> 152 G4Element* Al = man->FindOrBuildElement("Al"); >> 153 G4Element* V = man->FindOrBuildElement("V"); >> 154 >> 155 // Define materials not in NIST. >> 156 // While the NIST database does contain default materials for C, Cu and Au, >> 157 // those defaults have different densities than the ones used in the >> 158 // benchmark specification. >> 159 G4double density; >> 160 G4int ncomponents; >> 161 G4double fractionmass; >> 162 >> 163 G4Material* G4_C = new G4Material("G4_C", density= 2.18*g/cm3, >> 164 ncomponents=1); >> 165 G4_C->AddElement(C, fractionmass=1.00); >> 166 >> 167 G4Material* G4_Cu = new G4Material("G4_Cu", density= 8.92*g/cm3, >> 168 ncomponents=1); >> 169 G4_Cu->AddElement(Cu, fractionmass=1.00); >> 170 >> 171 G4Material* G4_Au = new G4Material("G4_Au", density= 19.30*g/cm3, >> 172 ncomponents=1); >> 173 G4_Au->AddElement(Au, fractionmass=1.00); >> 174 >> 175 G4Material* TiAlloy = new G4Material("TiAlloy", density= 4.42*g/cm3, >> 176 ncomponents=3); >> 177 TiAlloy->AddElement(Ti, fractionmass=0.90); >> 178 TiAlloy->AddElement(Al, fractionmass=0.06); >> 179 TiAlloy->AddElement(V, fractionmass=0.04); >> 180 >> 181 // Print materials table >> 182 G4cout << *(G4Material::GetMaterialTable()) << G4endl; >> 183 } >> 184 >> 185 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 186 >> 187 G4VPhysicalVolume* ElectronBenchmarkDetector::CreateGeometry(){ >> 188 // Clean old geometry, if any >> 189 G4GeometryManager::GetInstance()->OpenGeometry(); >> 190 G4PhysicalVolumeStore::GetInstance()->Clean(); >> 191 G4LogicalVolumeStore::GetInstance()->Clean(); >> 192 G4SolidStore::GetInstance()->Clean(); >> 193 >> 194 // Instantiate the world >> 195 G4VPhysicalVolume* physiworld = CreateWorld(); >> 196 fLogWorld = physiworld->GetLogicalVolume(); >> 197 >> 198 // Instantiate the geometry >> 199 CreateExitWindow(fLogWorld); >> 200 CreatePrimaryFoil(fLogWorld); >> 201 CreateMonitor(fLogWorld); >> 202 CreateHeliumBag(fLogWorld); >> 203 >> 204 // Create the scorers >> 205 CreateScorer(fLogWorld); >> 206 >> 207 return physiworld; >> 208 } >> 209 >> 210 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 211 >> 212 void ElectronBenchmarkDetector::UpdateGeometry(){ >> 213 G4RunManager::GetRunManager()->ReinitializeGeometry(); >> 214 } >> 215 >> 216 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 217 >> 218 G4VPhysicalVolume* ElectronBenchmarkDetector::CreateWorld(){ >> 219 G4double halfLengthWorld = fPosScorer/2. + fPosDelta; >> 220 G4double radWorld = fRadOverall + fRadDelta; >> 221 G4VSolid* worldSolid = new G4Tubs("WorldSolid", 0.*cm, radWorld, >> 222 halfLengthWorld, 0.*deg, 360.*deg); >> 223 G4LogicalVolume* worldLog = new G4LogicalVolume(worldSolid, >> 224 G4Material::GetMaterial("G4_AIR"), "WorldLog"); >> 225 >> 226 fWorldVisAtt = new G4VisAttributes(G4Colour(1.0,1.0,1.0)); >> 227 worldLog->SetVisAttributes(fWorldVisAtt); >> 228 >> 229 G4VPhysicalVolume* worldPhys = >> 230 new G4PVPlacement(0, G4ThreeVector(0.,0.,0.), >> 231 worldLog,"World", 0, false, 0); >> 232 >> 233 return worldPhys; >> 234 } >> 235 >> 236 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 237 >> 238 void ElectronBenchmarkDetector::CreateExitWindow(G4LogicalVolume* worldLog){ >> 239 G4double halfLengthWorld = fPosScorer/2.; >> 240 G4double halfThicknessWindow = fPosWindow1/2.; >> 241 G4VSolid* windowSolid = new G4Tubs("windowSolid", 0.*cm, fRadOverall, >> 242 halfThicknessWindow, 0.*deg, 360.*deg); >> 243 G4LogicalVolume* windowLog = new G4LogicalVolume(windowSolid, >> 244 G4Material::GetMaterial("TiAlloy"), >> 245 "windowLog"); >> 246 >> 247 fWindowVisAtt = new G4VisAttributes(G4Colour(0.5,1.0,0.5)); >> 248 windowLog->SetVisAttributes(fWindowVisAtt); >> 249 >> 250 new G4PVPlacement(0, >> 251 G4ThreeVector(0.,0., >> 252 halfThicknessWindow - halfLengthWorld), >> 253 windowLog,"ExitWindow",worldLog,false,0); >> 254 } >> 255 >> 256 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 257 >> 258 void ElectronBenchmarkDetector::CreatePrimaryFoil(G4LogicalVolume* worldLog){ >> 259 G4double halfLengthWorld = fPosScorer/2.; >> 260 >> 261 // For some energies, we have no Primary Foil. >> 262 if (fHalfThicknessPrimFoil==0.) return; >> 263 >> 264 G4VSolid* primFoilSolid = new G4Tubs("PrimFoilSolid", 0.*cm, fRadOverall, >> 265 fHalfThicknessPrimFoil, 0.*deg, 360.*deg); >> 266 G4LogicalVolume* primFoilLog = new G4LogicalVolume(primFoilSolid, >> 267 fMaterialPrimFoil, "PrimFoilLog"); >> 268 >> 269 fPrimFoilVisAtt = new G4VisAttributes(G4Colour(0.5,1.0,0.5)); >> 270 primFoilLog->SetVisAttributes(fPrimFoilVisAtt); >> 271 >> 272 new G4PVPlacement(0, >> 273 G4ThreeVector(0.,0., >> 274 fPosPrimFoil + fHalfThicknessPrimFoil - halfLengthWorld), >> 275 primFoilLog,"ScatteringFoil",worldLog,false,0); >> 276 } >> 277 >> 278 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 279 >> 280 void ElectronBenchmarkDetector::CreateMonitor(G4LogicalVolume* worldLog){ >> 281 G4double halfLengthWorld = fPosScorer/2.; >> 282 G4double halfThicknessMon = (fPosMon1 - fPosMon0) /2.; >> 283 G4VSolid* monSolid = new G4Tubs("monSolid", 0.*cm, fRadOverall, >> 284 halfThicknessMon, 0.*deg, 360.*deg); >> 285 G4LogicalVolume* monLog = new G4LogicalVolume(monSolid, >> 286 G4Material::GetMaterial("G4_MYLAR"), >> 287 "monLog"); >> 288 >> 289 fMonVisAtt = new G4VisAttributes(G4Colour(0.5,1.0,0.5)); >> 290 monLog->SetVisAttributes(fMonVisAtt); >> 291 >> 292 new G4PVPlacement(0, >> 293 G4ThreeVector(0.,0., >> 294 fPosMon0 + halfThicknessMon - halfLengthWorld), >> 295 monLog,"MonitorChamber",worldLog,false,0); >> 296 } >> 297 >> 298 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 299 >> 300 void ElectronBenchmarkDetector::CreateHeliumBag(G4LogicalVolume* worldLog){ >> 301 G4double halfLengthWorld = fPosScorer/2.; >> 302 >> 303 // Construct cylinder of Mylar >> 304 G4double halfThicknessBag = (fPosBag1 - fPosBag0) /2.; >> 305 G4VSolid* bagSolid = new G4Tubs("bagSolid", 0.*cm, fRadOverall, >> 306 halfThicknessBag, 0.*deg, 360.*deg); >> 307 G4LogicalVolume* bagLog = new G4LogicalVolume(bagSolid, >> 308 G4Material::GetMaterial("G4_MYLAR"), >> 309 "bagLog"); >> 310 >> 311 fBagVisAtt = new G4VisAttributes(G4Colour(0.5,1.0,0.5)); >> 312 bagLog->SetVisAttributes(fBagVisAtt); >> 313 >> 314 new G4PVPlacement(0, >> 315 G4ThreeVector(0.,0., >> 316 fPosBag0 + halfThicknessBag - halfLengthWorld), >> 317 bagLog,"HeliumBag",worldLog,false,0); >> 318 >> 319 // Insert cylinder of Helium into the Cylinder of Mylar >> 320 G4double halfThicknessHelium = (fPosHelium1 - fPosHelium0) /2.; >> 321 G4VSolid* heliumSolid = new G4Tubs("heliumSolid", 0.*cm, fRadOverall, >> 322 halfThicknessHelium, 0.*deg, 360.*deg); >> 323 G4LogicalVolume* heliumLog = new G4LogicalVolume(heliumSolid, >> 324 G4Material::GetMaterial("G4_He"), >> 325 "heliumLog"); >> 326 >> 327 fHeliumVisAtt = new G4VisAttributes(G4Colour(0.5,1.0,0.5)); >> 328 heliumLog->SetVisAttributes(fHeliumVisAtt); >> 329 >> 330 new G4PVPlacement(0, G4ThreeVector(0.,0.,0.), >> 331 heliumLog,"Helium",bagLog,false,0); >> 332 >> 333 // Insert two rings of Aluminum into the Cylinder of Helium >> 334 G4double halfThicknessRing = fThicknessRing /2.; >> 335 G4VSolid* ringSolid = new G4Tubs("ringSolid", fRadRingInner, fRadOverall, >> 336 halfThicknessRing, 0.*deg, 360.*deg); >> 337 G4LogicalVolume* ring0Log = new G4LogicalVolume(ringSolid, >> 338 G4Material::GetMaterial("G4_Al"), >> 339 "ring0Log"); >> 340 G4LogicalVolume* ring1Log = new G4LogicalVolume(ringSolid, >> 341 G4Material::GetMaterial("G4_Al"), >> 342 "ring1Log"); >> 343 >> 344 fRingVisAtt = new G4VisAttributes(G4Colour(0.5,1.0,0.5)); >> 345 ring0Log->SetVisAttributes(fRingVisAtt); >> 346 ring1Log->SetVisAttributes(fRingVisAtt); >> 347 >> 348 new G4PVPlacement(0, >> 349 G4ThreeVector(0.,0., >> 350 -halfThicknessHelium + halfThicknessRing), >> 351 ring0Log,"Ring0",heliumLog,false,0); >> 352 >> 353 new G4PVPlacement(0, >> 354 G4ThreeVector(0.,0., >> 355 halfThicknessHelium - halfThicknessRing), >> 356 ring1Log,"Ring1",heliumLog,false,0); >> 357 } >> 358 >> 359 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... >> 360 >> 361 void ElectronBenchmarkDetector::CreateScorer(G4LogicalVolume* worldLog){ >> 362 G4double halfLengthWorld = fPosScorer/2.; >> 363 G4double halfThicknessScorer = fThicknessScorer /2.; >> 364 >> 365 G4VSolid* scorerSolid = new G4Tubs("scorerSolid", 0.*cm, fRadOverall, >> 366 halfThicknessScorer, 0.*deg, 360.*deg); >> 367 G4LogicalVolume* scorerLog = new G4LogicalVolume(scorerSolid, >> 368 G4Material::GetMaterial("G4_AIR"), >> 369 "scorerLog"); >> 370 >> 371 fScorerVisAtt = new G4VisAttributes(G4Colour(0.5,1.0,0.5)); >> 372 scorerLog->SetVisAttributes(fScorerVisAtt); >> 373 new G4PVPlacement(0, >> 374 G4ThreeVector(0.,0., >> 375 halfLengthWorld - halfThicknessScorer), >> 376 scorerLog,"Scorer",worldLog,false,0); >> 377 >> 378 G4VSolid* scorerRingSolid = new G4Tubs("scorerRingSolid", 0.*cm, >> 379 fRadOverall, >> 380 halfThicknessScorer, 0.*deg, 360.*deg); >> 381 fScorerRingLog = new G4LogicalVolume(scorerRingSolid, >> 382 G4Material::GetMaterial("G4_AIR"), "scorerRingLog"); >> 383 new G4PVReplica("ScorerRing",fScorerRingLog,scorerLog,kRho, >> 384 G4int(fRadOverall/fWidthScorerRing),fWidthScorerRing); 204 385 205 G4VPhysicalVolume* worldPhys = << 386 ConstructSDandField(); 206 new G4PVPlacement(0, G4ThreeVector(0., 0., << 207 << 208 return worldPhys; << 209 } << 210 << 211 //....oooOO0OOooo........oooOO0OOooo........oo << 212 << 213 void ElectronBenchmarkDetector::CreateExitWind << 214 { << 215 G4double halfLengthWorld = fPosScorer / 2.; << 216 G4double halfThicknessWindow = fPosWindow1 / << 217 G4VSolid* windowSolid = << 218 new G4Tubs("windowSolid", 0. * cm, fRadOve << 219 G4LogicalVolume* windowLog = << 220 new G4LogicalVolume(windowSolid, G4Materia << 221 << 222 fWindowVisAtt = new G4VisAttributes(G4Colour << 223 windowLog->SetVisAttributes(fWindowVisAtt); << 224 << 225 new G4PVPlacement(0, G4ThreeVector(0., 0., h << 226 "ExitWindow", worldLog, fa << 227 } << 228 << 229 //....oooOO0OOooo........oooOO0OOooo........oo << 230 << 231 void ElectronBenchmarkDetector::CreatePrimaryF << 232 { << 233 G4double halfLengthWorld = fPosScorer / 2.; << 234 << 235 // For some energies, we have no Primary Foi << 236 if (fHalfThicknessPrimFoil == 0.) return; << 237 << 238 fSolidPrimFoil = << 239 new G4Tubs("PrimFoilSolid", 0. * cm, fRadO << 240 fLogPrimFoil = new G4LogicalVolume(fSolidPri << 241 << 242 fPrimFoilVisAtt = new G4VisAttributes(G4Colo << 243 fLogPrimFoil->SetVisAttributes(fPrimFoilVisA << 244 << 245 new G4PVPlacement(0, << 246 G4ThreeVector(0., 0., fPos << 247 fLogPrimFoil, "ScatteringF << 248 } << 249 << 250 //....oooOO0OOooo........oooOO0OOooo........oo << 251 << 252 void ElectronBenchmarkDetector::CreateMonitor( << 253 { << 254 G4double halfLengthWorld = fPosScorer / 2.; << 255 G4double halfThicknessMon = (fPosMon1 - fPos << 256 G4VSolid* monSolid = << 257 new G4Tubs("monSolid", 0. * cm, fRadOveral << 258 G4LogicalVolume* monLog = << 259 new G4LogicalVolume(monSolid, G4Material:: << 260 << 261 fMonVisAtt = new G4VisAttributes(G4Colour(0. << 262 monLog->SetVisAttributes(fMonVisAtt); << 263 << 264 new G4PVPlacement(0, G4ThreeVector(0., 0., f << 265 "MonitorChamber", worldLog << 266 } << 267 << 268 //....oooOO0OOooo........oooOO0OOooo........oo << 269 << 270 void ElectronBenchmarkDetector::CreateHeliumBa << 271 { << 272 G4double halfLengthWorld = fPosScorer / 2.; << 273 << 274 // Construct cylinder of Mylar << 275 G4double halfThicknessBag = (fPosBag1 - fPos << 276 G4VSolid* bagSolid = << 277 new G4Tubs("bagSolid", 0. * cm, fRadOveral << 278 G4LogicalVolume* bagLog = << 279 new G4LogicalVolume(bagSolid, G4Material:: << 280 << 281 fBagVisAtt = new G4VisAttributes(G4Colour(0. << 282 bagLog->SetVisAttributes(fBagVisAtt); << 283 << 284 new G4PVPlacement(0, G4ThreeVector(0., 0., f << 285 "HeliumBag", worldLog, fal << 286 << 287 // Insert cylinder of Helium into the Cylind << 288 G4double halfThicknessHelium = (fPosHelium1 << 289 G4VSolid* heliumSolid = << 290 new G4Tubs("heliumSolid", 0. * cm, fRadOve << 291 G4LogicalVolume* heliumLog = << 292 new G4LogicalVolume(heliumSolid, G4Materia << 293 << 294 fHeliumVisAtt = new G4VisAttributes(G4Colour << 295 heliumLog->SetVisAttributes(fHeliumVisAtt); << 296 << 297 new G4PVPlacement(0, G4ThreeVector(0., 0., 0 << 298 << 299 // Insert two rings of Aluminum into the Cyl << 300 G4double halfThicknessRing = fThicknessRing << 301 G4VSolid* ringSolid = << 302 new G4Tubs("ringSolid", fRadRingInner, fRa << 303 G4LogicalVolume* ring0Log = << 304 new G4LogicalVolume(ringSolid, G4Material: << 305 G4LogicalVolume* ring1Log = << 306 new G4LogicalVolume(ringSolid, G4Material: << 307 << 308 fRingVisAtt = new G4VisAttributes(G4Colour(0 << 309 ring0Log->SetVisAttributes(fRingVisAtt); << 310 ring1Log->SetVisAttributes(fRingVisAtt); << 311 << 312 new G4PVPlacement(0, G4ThreeVector(0., 0., - << 313 "Ring0", heliumLog, false, << 314 << 315 new G4PVPlacement(0, G4ThreeVector(0., 0., h << 316 "Ring1", heliumLog, false, << 317 } << 318 << 319 //....oooOO0OOooo........oooOO0OOooo........oo << 320 << 321 void ElectronBenchmarkDetector::CreateScorer(G << 322 { << 323 G4double halfLengthWorld = fPosScorer / 2.; << 324 G4double halfThicknessScorer = fThicknessSco << 325 << 326 G4VSolid* scorerSolid = << 327 new G4Tubs("scorerSolid", 0. * cm, fRadOve << 328 G4LogicalVolume* scorerLog = << 329 new G4LogicalVolume(scorerSolid, G4Materia << 330 << 331 fScorerVisAtt = new G4VisAttributes(G4Colour << 332 scorerLog->SetVisAttributes(fScorerVisAtt); << 333 new G4PVPlacement(0, G4ThreeVector(0., 0., h << 334 "Scorer", worldLog, false, << 335 << 336 G4VSolid* scorerRingSolid = << 337 new G4Tubs("scorerRingSolid", 0. * cm, fRa << 338 fScorerRingLog = << 339 new G4LogicalVolume(scorerRingSolid, G4Mat << 340 new G4PVReplica("ScorerRing", fScorerRingLog << 341 G4int(fRadOverall / fWidthSc << 342 } 387 } 343 388 344 //....oooOO0OOooo........oooOO0OOooo........oo 389 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... 345 390 346 // Note that this method is called both at sta 391 // Note that this method is called both at start of job and again after 347 // any command causes a change to detector geo 392 // any command causes a change to detector geometry 348 void ElectronBenchmarkDetector::ConstructSDand 393 void ElectronBenchmarkDetector::ConstructSDandField() 349 { 394 { 350 G4SDManager::GetSDMpointer()->SetVerboseLeve << 395 G4SDManager::GetSDMpointer()->SetVerboseLevel(1); 351 << 396 352 // G4Cache mechanism is necessary for multi- << 397 // G4Cache mechanism is necessary for multi-threaded operation 353 // as it allows us to store separate detecto << 398 // as it allows us to store separate detector pointer per thread 354 G4MultiFunctionalDetector*& sensitiveDetecto << 399 G4MultiFunctionalDetector*& sensitiveDetector = 355 << 400 fSensitiveDetectorCache.Get(); 356 if (!sensitiveDetector) { << 401 357 sensitiveDetector = new G4MultiFunctionalD << 402 if (!sensitiveDetector) { 358 << 403 sensitiveDetector = new G4MultiFunctionalDetector("MyDetector"); 359 G4VPrimitiveScorer* primitive; << 404 360 << 405 G4VPrimitiveScorer* primitive; 361 G4SDParticleFilter* electronFilter = new G << 406 362 << 407 G4SDParticleFilter* electronFilter = 363 primitive = new G4PSCellFlux("cell flux"); << 408 new G4SDParticleFilter("electronFilter", "e-"); 364 sensitiveDetector->RegisterPrimitive(primi << 409 365 << 410 primitive = new G4PSCellFlux("cell flux"); 366 primitive = new G4PSCellFlux("e cell flux" << 411 sensitiveDetector->RegisterPrimitive(primitive); 367 primitive->SetFilter(electronFilter); << 412 368 sensitiveDetector->RegisterPrimitive(primi << 413 primitive = new G4PSCellFlux("e cell flux"); 369 << 414 primitive->SetFilter(electronFilter); 370 primitive = new G4PSPopulation("population << 415 sensitiveDetector->RegisterPrimitive(primitive); 371 sensitiveDetector->RegisterPrimitive(primi << 416 372 << 417 primitive = new G4PSPopulation("population"); 373 primitive = new G4PSPopulation("e populati << 418 sensitiveDetector->RegisterPrimitive(primitive); 374 primitive->SetFilter(electronFilter); << 419 375 sensitiveDetector->RegisterPrimitive(primi << 420 primitive = new G4PSPopulation("e population"); 376 } << 421 primitive->SetFilter(electronFilter); 377 G4SDManager::GetSDMpointer()->AddNewDetector << 422 sensitiveDetector->RegisterPrimitive(primitive); 378 fScorerRingLog->SetSensitiveDetector(sensiti << 423 } >> 424 >> 425 SetSensitiveDetector("scorerRingLog",sensitiveDetector); 379 } 426 } 380 427 381 //....oooOO0OOooo........oooOO0OOooo........oo 428 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... 382 429 383 void ElectronBenchmarkDetector::SetPrimFoilMat << 430 void ElectronBenchmarkDetector::SetPrimFoilMaterial(G4String matname){ 384 { << 431 fMaterialPrimFoil = G4Material::GetMaterial(matname); 385 G4Material* material = G4NistManager::Instan << 432 UpdateGeometry(); 386 << 387 if (material && material != fMaterialPrimFoi << 388 fMaterialPrimFoil = material; << 389 if (fLogPrimFoil) { << 390 fLogPrimFoil->SetMaterial(fMaterialPrimF << 391 } << 392 G4RunManager::GetRunManager()->PhysicsHasB << 393 } << 394 } 433 } 395 434 396 //....oooOO0OOooo........oooOO0OOooo........oo 435 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... 397 436 398 void ElectronBenchmarkDetector::SetPrimFoilThi 437 void ElectronBenchmarkDetector::SetPrimFoilThickness(G4double thicknessPrimFoil) 399 { 438 { 400 fHalfThicknessPrimFoil = thicknessPrimFoil / << 439 fHalfThicknessPrimFoil = thicknessPrimFoil / 2.; >> 440 UpdateGeometry(); 401 } 441 } 402 442 403 //....oooOO0OOooo........oooOO0OOooo........oo 443 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... 404 444