418 lines
15 KiB
C++
418 lines
15 KiB
C++
//
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// ********************************************************************
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// * License and Disclaimer *
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// * *
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// * The Geant4 software is copyright of the Copyright Holders of *
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// * the Geant4 Collaboration. It is provided under the terms and *
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// * conditions of the Geant4 Software License, included in the file *
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// * LICENSE and available at http://cern.ch/geant4/license . These *
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// * include a list of copyright holders. *
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// * *
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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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// * for the full disclaimer and the limitation of liability. *
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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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// * any work based on the software) you agree to acknowledge its *
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// * use in resulting scientific publications, and indicate your *
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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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/// \file electromagnetic/TestEm8/src/DetectorConstruction.cc
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/// \brief Implementation of the DetectorConstruction class
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//
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// $Id$
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//
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/////////////////////////////////////////////////////////////////////////
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//
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// TestEm8: Gaseous detector
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//
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// Created: 31.08.2010 V.Ivanchenko ob base of V.Grichine code
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//
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// Modified:
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//
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////////////////////////////////////////////////////////////////////////
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//
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#include "DetectorConstruction.hh"
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#include "DetectorMessenger.hh"
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#include "TargetSD.hh"
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#include "PrimaryGeneratorAction.hh"
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#include "G4Material.hh"
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#include "G4Tubs.hh"
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#include "G4LogicalVolume.hh"
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#include "G4PVPlacement.hh"
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#include "G4SDManager.hh"
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#include "G4GeometryManager.hh"
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#include "G4RunManager.hh"
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#include "G4NistManager.hh"
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#include "G4Region.hh"
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#include "G4RegionStore.hh"
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#include "G4PhysicalVolumeStore.hh"
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#include "G4LogicalVolumeStore.hh"
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#include "G4SolidStore.hh"
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#include "G4ProductionCuts.hh"
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#include "G4VisAttributes.hh"
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#include "G4Colour.hh"
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#include "G4UnitsTable.hh"
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#include "G4PhysicalConstants.hh"
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#include "G4SystemOfUnits.hh"
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#include "G4ios.hh"
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/////////////////////////////////////////////////////////////////////////////
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DetectorConstruction::DetectorConstruction(PrimaryGeneratorAction* p)
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: fPhysWorld(0), fLogicWorld(0), fLogicWind(0), fLogicDet(0),
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fTargetSD(0), fRegGasDet(0), fPrimaryGenerator(p)
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{
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fGasThickness = 23.0*mm;
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fGasRadius = 10.*cm;
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fWindowThick = 51.0*micrometer;
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DefineMaterials();
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fDetectorMessenger = new DetectorMessenger(this);
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G4double cut = 23.*mm;
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fGasDetectorCuts = new G4ProductionCuts();
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fGasDetectorCuts->SetProductionCut(cut,"gamma");
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fGasDetectorCuts->SetProductionCut(cut,"e-");
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fGasDetectorCuts->SetProductionCut(cut,"e+");
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fGasDetectorCuts->SetProductionCut(cut,"proton");
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}
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//////////////////////////////////////////////////////////////////////////
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DetectorConstruction::~DetectorConstruction()
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{
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delete fDetectorMessenger;
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delete fGasDetectorCuts;
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}
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//////////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::DefineMaterials()
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{
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//This function illustrates the possible ways to define materials
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G4String name, symbol ;
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G4double density;
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G4int nel;
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G4int ncomponents;
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G4double fractionmass;
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G4NistManager* manager = G4NistManager::Instance();
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//
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// define Elements
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//
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G4Element* elH = manager->FindOrBuildElement(1);
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G4Element* elC = manager->FindOrBuildElement(6);
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G4Element* elO = manager->FindOrBuildElement(8);
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G4Element* elF = manager->FindOrBuildElement(9);
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G4Element* elNe = manager->FindOrBuildElement(10);
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G4Element* elXe = manager->FindOrBuildElement(54);
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//
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// simple gases at STP conditions
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//
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G4Material* Argon = manager->FindOrBuildMaterial("G4_Ar");
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G4Material* Kr = manager->FindOrBuildMaterial("G4_Kr");
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G4Material* Xe = manager->FindOrBuildMaterial("G4_Xe");
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//
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// gases at STP conditions
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//
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G4Material* CarbonDioxide = manager->FindOrBuildMaterial("G4_CARBON_DIOXIDE");
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G4Material* Mylar = manager->FindOrBuildMaterial("G4_MYLAR");
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G4Material* Methane= manager->FindOrBuildMaterial("G4_METHANE");
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G4Material* Propane= manager->FindOrBuildMaterial("G4_PROPANE");
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G4Material* empty = manager->FindOrBuildMaterial("G4_Galactic");
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// 93% Kr + 7% CH4, STP
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density = 3.491*mg/cm3 ;
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G4Material* Kr7CH4 = new G4Material(name="Kr7CH4" , density,
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ncomponents=2);
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Kr7CH4->AddMaterial( Kr, fractionmass = 0.986 ) ;
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Kr7CH4->AddMaterial( Methane, fractionmass = 0.014 ) ;
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G4double TRT_Xe_density = 5.485*mg/cm3;
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G4Material* TRT_Xe = new G4Material(name="TRT_Xe", TRT_Xe_density, nel=1,
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kStateGas,293.15*kelvin,1.*atmosphere);
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TRT_Xe->AddElement(elXe,1);
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G4double TRT_CO2_density = 1.842*mg/cm3;
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G4Material* TRT_CO2 = new G4Material(name="TRT_CO2", TRT_CO2_density, nel=2,
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kStateGas,293.15*kelvin,1.*atmosphere);
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TRT_CO2->AddElement(elC,1);
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TRT_CO2->AddElement(elO,2);
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G4double TRT_CF4_density = 3.9*mg/cm3;
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G4Material* TRT_CF4 = new G4Material(name="TRT_CF4", TRT_CF4_density, nel=2,
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kStateGas,293.15*kelvin,1.*atmosphere);
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TRT_CF4->AddElement(elC,1);
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TRT_CF4->AddElement(elF,4);
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// ATLAS TRT straw tube gas mixture (20 C, 1 atm)
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G4double XeCO2CF4_density = 4.76*mg/cm3;
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G4Material* XeCO2CF4 = new G4Material(name="XeCO2CF4", XeCO2CF4_density,
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ncomponents=3,
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kStateGas,293.15*kelvin,1.*atmosphere);
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XeCO2CF4->AddMaterial(TRT_Xe,0.807);
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XeCO2CF4->AddMaterial(TRT_CO2,0.039);
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XeCO2CF4->AddMaterial(TRT_CF4,0.154);
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// C3H8,20 C, 2 atm
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density = 3.758*mg/cm3 ;
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G4Material* C3H8 = new G4Material(name="C3H8",density,nel=2) ;
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C3H8->AddElement(elC,3) ;
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C3H8->AddElement(elH,8) ;
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// 87.5% Xe + 7.5% CH4 + 5% C3H8, 20 C, 1 atm
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density = 4.9196*mg/cm3 ;
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G4Material* XeCH4C3H8 = new G4Material(name="XeCH4C3H8" ,
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density, ncomponents=3);
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XeCH4C3H8->AddMaterial( Xe, fractionmass = 0.971 ) ;
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XeCH4C3H8->AddMaterial( Methane, fractionmass = 0.010 ) ;
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XeCH4C3H8->AddMaterial( Propane, fractionmass = 0.019 ) ;
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// 93% Ar + 7% CH4, STP
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density = 1.709*mg/cm3 ;
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G4Material* Ar7CH4 = new G4Material(name="Ar7CH4", density, ncomponents=2);
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Ar7CH4->AddMaterial( Argon, fractionmass = 0.971 ) ;
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Ar7CH4->AddMaterial( Methane, fractionmass = 0.029 ) ;
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// 80% Ar + 20% CO2, STP
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density = 1.8223*mg/cm3 ;
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G4Material* Ar_80CO2_20 = new G4Material(name="ArCO2" , density,
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ncomponents=2);
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Ar_80CO2_20->AddMaterial( Argon, fractionmass = 0.783 ) ;
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Ar_80CO2_20->AddMaterial( CarbonDioxide, fractionmass = 0.217 ) ;
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// 80% Xe + 20% CO2, STP
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density = 5.0818*mg/cm3 ;
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G4Material* Xe20CO2 = new G4Material(name="Xe20CO2", density,
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ncomponents=2);
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Xe20CO2->AddMaterial( Xe, fractionmass = 0.922 ) ;
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Xe20CO2->AddMaterial( CarbonDioxide, fractionmass = 0.078 ) ;
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// 80% Kr + 20% CO2, STP
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density = 3.601*mg/cm3 ;
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G4Material* Kr20CO2 = new G4Material(name="Kr20CO2" , density,
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ncomponents=2);
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Kr20CO2->AddMaterial( Kr, fractionmass = 0.89 ) ;
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Kr20CO2->AddMaterial( CarbonDioxide, fractionmass = 0.11 ) ;
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// ALICE mixture TPC_Ne-CO2-2
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density = 0.939*mg/cm3 ;
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G4Material* NeCO2 = new G4Material(name="TPC_Ne-CO2-2", density,
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ncomponents=3);
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NeCO2->AddElement( elNe, fractionmass = 0.8039 ) ;
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NeCO2->AddElement( elO, fractionmass = 0.1426 ) ;
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NeCO2->AddElement( elC, fractionmass = 0.0535 ) ;
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fGasMat = XeCH4C3H8;
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fWindowMat = Mylar;
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fWorldMaterial = empty;
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G4cout << *(G4Material::GetMaterialTable()) << G4endl;
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}
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/////////////////////////////////////////////////////////////////////////
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G4VPhysicalVolume* DetectorConstruction::Construct()
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{
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// Cleanup old geometry
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G4GeometryManager::GetInstance()->OpenGeometry();
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if(fRegGasDet) { delete fRegGasDet; }
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fRegGasDet = new G4Region("GasDetector");
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fRegGasDet->SetProductionCuts(fGasDetectorCuts);
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G4GeometryManager::GetInstance()->OpenGeometry();
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G4PhysicalVolumeStore::GetInstance()->Clean();
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G4LogicalVolumeStore::GetInstance()->Clean();
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G4SolidStore::GetInstance()->Clean();
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G4double contThick = fWindowThick*2 + fGasThickness;
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G4double contR = fWindowThick*2 + fGasRadius;
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G4double worldSizeZ = contThick*1.2;
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G4double worldSizeR = contR*1.2;
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fPrimaryGenerator->SetPositionZ(-0.55*contThick);
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// Printout parameters
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G4cout << "\n The WORLD is made of "
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<< worldSizeZ/mm << "mm of " << fWorldMaterial->GetName() ;
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G4cout << ", the transverse size (R) of the world is " << worldSizeR/mm
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<< " mm. " << G4endl;
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G4cout << " The CONTAINER is made of "
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<< fWindowThick/mm << "mm of " << fWindowMat->GetName() << G4endl;
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G4cout << " The TARGET is made of "
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<< fGasThickness/mm << "mm of " << fGasMat->GetName() ;
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G4cout << ", the transverse size (R) is " << fGasRadius/mm << " mm. " << G4endl;
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G4cout << G4endl;
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// World
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G4Tubs* SolidWorld = new G4Tubs("World",
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0.,worldSizeR,worldSizeZ/2.,0.,CLHEP::twopi);
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fLogicWorld = new G4LogicalVolume(SolidWorld, fWorldMaterial, "World");
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fPhysWorld = new G4PVPlacement(0, //no rotation
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G4ThreeVector(0.,0.,0.),
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"World",
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fLogicWorld,
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0, //its mother volume
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false, //no boolean operation
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0); //copy number
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// Window
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G4Tubs* wind = new G4Tubs("Absorber",
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0.,contR,contThick/2.,0.,CLHEP::twopi);
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fLogicWind = new G4LogicalVolume(wind, fWindowMat, "Window");
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G4PVPlacement* PhysWind = new G4PVPlacement(0, G4ThreeVector(0.,0.,0.), "Window",
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fLogicWind, fPhysWorld, false, 0);
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// Detector volume
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G4Tubs* det = new G4Tubs("Gas", 0., fGasRadius, fGasThickness/2., 0., CLHEP::twopi);
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fLogicDet = new G4LogicalVolume(det, fGasMat, "Gas");
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new G4PVPlacement(0, G4ThreeVector(0.,0.,0.), "Gas", fLogicDet, PhysWind, false, 0);
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fRegGasDet->AddRootLogicalVolume(fLogicDet);
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// Sensitive Detectors:
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G4SDManager* SDman = G4SDManager::GetSDMpointer();
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if(!fTargetSD)
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{
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fTargetSD = new TargetSD("GasSD");
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SDman->AddNewDetector( fTargetSD );
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}
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fLogicDet->SetSensitiveDetector(fTargetSD);
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// visualisation
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fLogicWorld->SetVisAttributes(G4VisAttributes::Invisible);
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G4VisAttributes* color1 = new G4VisAttributes(G4Colour(0.3, 0.3, 0.3));
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fLogicWind->SetVisAttributes(color1);
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G4VisAttributes* color2 = new G4VisAttributes(G4Colour(0.0, 0.3, 0.7));
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fLogicDet->SetVisAttributes(color2);
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if(0.0 == fGasMat->GetIonisation()->GetMeanEnergyPerIonPair()) {
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SetPairEnergy(20*eV);
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}
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return fPhysWorld;
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}
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///////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::SetGasMaterial(const G4String& name)
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{
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// get the pointer to the existing material
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G4Material* mat = G4Material::GetMaterial(name, false);
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// create the material by its name
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if(!mat) { mat = G4NistManager::Instance()->FindOrBuildMaterial(name); }
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if (mat && mat != fGasMat) {
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G4cout << "### New target material: " << mat->GetName() << G4endl;
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fGasMat = mat;
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if(fLogicDet) {
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fLogicDet->SetMaterial(mat);
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G4RunManager::GetRunManager()->PhysicsHasBeenModified();
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}
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}
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}
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///////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::SetContainerMaterial(const G4String& name)
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{
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// get the pointer to the existing material
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G4Material* mat = G4Material::GetMaterial(name, false);
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// create the material by its name
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if(!mat) { mat = G4NistManager::Instance()->FindOrBuildMaterial(name); }
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if (mat && mat != fWindowMat) {
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G4cout << "### New material for container: " << mat->GetName() << G4endl;
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fWindowMat = mat;
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if(fLogicWind) {
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fLogicWind->SetMaterial(mat);
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G4RunManager::GetRunManager()->PhysicsHasBeenModified();
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}
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}
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}
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///////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::SetWorldMaterial(const G4String& name)
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{
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// get the pointer to the existing material
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G4Material* mat = G4Material::GetMaterial(name, false);
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// create the material by its name
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if(!mat) { mat = G4NistManager::Instance()->FindOrBuildMaterial(name); }
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if (mat && mat != fWorldMaterial) {
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G4cout << "### New World material: " << mat->GetName() << G4endl;
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fWorldMaterial = mat;
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if(fLogicWorld) {
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fLogicWorld->SetMaterial(mat);
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G4RunManager::GetRunManager()->PhysicsHasBeenModified();
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}
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}
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}
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///////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::SetGasThickness(G4double val)
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{
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if(fGasThickness != val) {
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G4RunManager::GetRunManager()->GeometryHasBeenModified();
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fGasThickness = val;
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}
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}
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///////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::SetGasRadius(G4double val)
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{
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if(fGasRadius != val) {
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G4RunManager::GetRunManager()->GeometryHasBeenModified();
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fGasRadius = val;
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}
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}
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///////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::SetContainerThickness(G4double val)
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{
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if(fWindowThick != val) {
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G4RunManager::GetRunManager()->GeometryHasBeenModified();
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fWindowThick = val;
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}
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}
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///////////////////////////////////////////////////////////////////////////
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void DetectorConstruction::SetPairEnergy(G4double val)
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{
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if(val > 0.0) {
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fGasMat->GetIonisation()->SetMeanEnergyPerIonPair(val);
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}
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}
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////////////////////////////////////////////////////////////////////////////
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