-///////////////////////////////////////////////////////////////////////////////
-// //
-// Transition Radiation Detector version 1 -- detailed simulation //
-// //
-//Begin_Html
-/*
-<img src="gif/AliTRDv1Class.gif">
-*/
-//End_Html
-// //
-// //
-///////////////////////////////////////////////////////////////////////////////
+/**************************************************************************
+ * Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
+ * *
+ * Author: The ALICE Off-line Project. *
+ * Contributors are mentioned in the code where appropriate. *
+ * *
+ * Permission to use, copy, modify and distribute this software and its *
+ * documentation strictly for non-commercial purposes is hereby granted *
+ * without fee, provided that the above copyright notice appears in all *
+ * copies and that both the copyright notice and this permission notice *
+ * appear in the supporting documentation. The authors make no claims *
+ * about the suitability of this software for any purpose. It is *
+ * provided "as is" without express or implied warranty. *
+ **************************************************************************/
+/* $Id$ */
+
+////////////////////////////////////////////////////////////////////////////
+// //
+// Transition Radiation Detector version 1 -- slow simulator //
+// //
+////////////////////////////////////////////////////////////////////////////
+
+#include <TLorentzVector.h>
#include <TMath.h>
#include <TRandom.h>
-#include <TVector.h>
-#include <TGeometry.h>
-#include <TNode.h>
-#include <TPGON.h>
+#include <TVirtualMC.h>
+#include <TGeoManager.h>
+#include <TGeoMatrix.h>
+#include <TGeoPhysicalNode.h>
-#include "GParticle.h"
-#include "AliTRDv1.h"
-#include "AliRun.h"
-#include "AliConst.h"
+#include "AliTrackReference.h"
#include "AliMC.h"
-
+#include "AliRun.h"
+#include "AliGeomManager.h"
+
+#include "AliTRDgeometry.h"
+#include "AliTRDCommonParam.h"
+#include "AliTRDsimTR.h"
+#include "AliTRDv1.h"
+
ClassImp(AliTRDv1)
+
+//_____________________________________________________________________________
+AliTRDv1::AliTRDv1()
+ :AliTRD()
+ ,fTRon(kTRUE)
+ ,fTR(NULL)
+ ,fStepSize(0)
+ ,fWion(0)
+{
+ //
+ // Default constructor
+ //
+
+}
//_____________________________________________________________________________
AliTRDv1::AliTRDv1(const char *name, const char *title)
- :AliTRD(name, title)
+ :AliTRD(name,title)
+ ,fTRon(kTRUE)
+ ,fTR(NULL)
+ ,fStepSize(0.1)
+ ,fWion(0)
{
//
- // Standard constructor for the Transition Radiation Detector version 1
+ // Standard constructor for Transition Radiation Detector version 1
//
- fIdSens1 = fIdSens2 = fIdSens3 = 0;
+
+ SetBufferSize(128000);
+
+ if (AliTRDCommonParam::Instance()->IsXenon()) {
+ fWion = 23.53; // Ionization energy XeCO2 (85/15)
+ }
+ else if (AliTRDCommonParam::Instance()->IsArgon()) {
+ fWion = 27.21; // Ionization energy ArCO2 (82/18)
+ }
+ else {
+ AliFatal("Wrong gas mixture");
+ exit(1);
+ }
+
}
-
+
//_____________________________________________________________________________
-void AliTRDv1::CreateGeometry()
+AliTRDv1::~AliTRDv1()
{
//
- // Create the geometry for the Transition Radiation Detector version 1
- // --- The coarse geometry of the TRD, that can be used for background
- // studies. This version leaves the space in front of the PHOS and
- // HMPID empty.
- // -- Author : Nick van Eijndhoven (CERN) 24/09/90
+ // AliTRDv1 destructor
//
- //Begin_Html
- /*
- <img src="gif/AliTRDv1.gif">
- */
- //End_Html
- //Begin_Html
- /*
- <img src="gif/AliTRDv1Tree.gif">
- */
- //End_Html
-
- Float_t xpos, ypos, zpos, f;
- Int_t idmat[5];
- Float_t widma, theoc, widmi, tanzr;
- Float_t par_ic[4], par_oc[11], phisec, par_mo[10], par_fr[4], par_su[10];
-
- Int_t *idtmed = gAlice->Idtmed();
-
- // --- Name Conventions :
- // TRD --> Mother TRD volume (Air)
- // UTRL(S) --> Long (short) subdetector-type (Al)
- // UTSL(S) --> Sectors of a subdetector (Al)
- // UTFI(O/S) --> Inner part of the detector frame (Air)
- // UTCI(O/S) --> Frames of the inner and outer chambers (C)
- // UTII(O/S) --> Inner part of the chambers (Air)
- // UTMI(O/S) --> Modules in the chambers (Air)
- // UT1I(O/S) --> Radiator layer (CO2)
- // UT2I(O/S) --> Polyethylene layer (PE)
- // UT3I(O/S) --> Mylar layer (Mylar)
- // UT4I(O/S) --> Xe/C02 layer (Xe/C02)
- // UT5I(O/S) --> Cu layer (pads/sensitive) (Cu)
- // UT6I(O/S) --> Kapton layer (Kapton)
- // UT7I(O/S) --> NOMEX layer (C)
- // UT8I(O/S) --> Readout layer (Al)
-
- // --- Contains geometry information
-
- // --- Number of sectors in the full detector
- // --- Number of modules in each sector
- // --- z-Coordinates of the TRD-frame
- // --- r-Coordinates of the TRD-frame
- // --- Thickness of the aluminium of the support frame
- // --- Thickness of the interior of the support frame
- // --- Thickness of the carbon chamber frame
- // --- Thickness and z-position of the PE-layer in the radiator
- // --- Thickness and z-position of the radiator
- // --- Thickness and z-position of the mylar-layer
- // --- Thickness and z-position of the Xe/C02-layer
- // --- Thickness and z-position of the Cu-layer (Pads)
- // --- Thickness and z-position of the kapton-layer
- // --- Thickness and z-position of the NOMEX-layer
- // Simple C-layer for the time being
- // --- Thickness and z-position of the readout-layer
- // --- Parameter for the arrays
- // --- Number of subdetector-types
- //--- Number of sectors in the first subdetector-type (full theta coverage)
- //--- Number of sectors in the second subdetector-type (with hole for PHOS)
- //************************************************************************
-
- // Definition of Volumes
-
- //************************************************************************
-
- const Int_t nsec1 = 5; //Number of sectors in the first subdetector-type
- const Int_t nsec2 = 5; //Number of sectors in the second subdetector-type
-
- AliMC* pMC = AliMC::GetMC();
-
- phisec = 360./nsect; //The phi-angle of the sectors
- widmi = rmin*TMath::Sin(kPI/nsect);
- widma = rmax*TMath::Sin(kPI/nsect);
- // --- Definition of the Mother volume for the TRD (Al)
- par_mo[0] = 0.;
- par_mo[1] = 360.;
- par_mo[2] = nsect;
- par_mo[3] = 2.;
- par_mo[4] = -zmax1;
- par_mo[5] = rmin;
- par_mo[6] = rmax;
- par_mo[7] = zmax1;
- par_mo[8] = rmin;
- par_mo[9] = rmax;
- pMC->Gsvolu("TRD ", "PGON", idtmed[1301], par_mo, 10);
- // --- Definition of the 1st subdetector-type (full theta-coverage) (Al)
- par_su[0] = 120.;
- par_su[1] = nsec1*phisec;
- par_su[2] = nsec1;
- par_su[3] = 2.;
- par_su[4] = -zmax1;
- par_su[5] = rmin;
- par_su[6] = rmax;
- par_su[7] = 0.;
- par_su[8] = rmin;
- par_su[9] = rmax;
- pMC->Gsvolu("UTRL", "PGON", idtmed[1300], par_su, 10);
- pMC->Gsdvn("UTSL", "UTRL", nsec1, 2);
- // --- Definition of the 2nd subdetector-type (hole for PHOS)
- par_su[0] = 220.;
- par_su[1] = nsec2*phisec;
- par_su[2] = nsec2;
- par_su[3] = 2.;
- par_su[4] = -zmax1;
- par_su[5] = rmin;
- par_su[6] = rmax;
- par_su[7] = -zmax1/2;
- par_su[8] = rmin;
- par_su[9] = rmax;
- pMC->Gsvolu("UTRS", "PGON", idtmed[1300], par_su, 10);
- pMC->Gsdvn("UTSS", "UTRS", nsec2, 2);
- // --- Definition of the inner part of the detector frame (Air)
- par_fr[0] = widmi;
- par_fr[1] = widma;
- par_fr[2] = zmax1/4 - alfram2/2;
- par_fr[3] = (rmax-rmin)/2;
- pMC->Gsvolu("UTFI", "TRD1", idtmed[1301], par_fr, 4);
- pMC->Gsvolu("UTFO", "TRD1", idtmed[1301], par_fr, 4);
- pMC->Gsvolu("UTFS", "TRD1", idtmed[1301], par_fr, 4);
- // --- Calculate the shape-parameter for the outer chambers
- tanzr = (zmax1-zmax2)/(rmax-rmin);
- theoc = -kRaddeg*TMath::ATan(tanzr / 2.);
- // --- The carbon frame of the outer chambers
- par_oc[0] = (rmax-rmin)/2;
- par_oc[1] = theoc;
- par_oc[2] = 90.;
- par_oc[3] = zmax2/2 - zmax1/4 -alfram2/2;
- par_oc[4] = widmi - (inframe+alfram1)/2;
- par_oc[5] = widmi - (inframe+alfram1)/2;
- par_oc[6] = 0.;
- par_oc[7] = zmax1/4 - alfram2/2;
- par_oc[8] = widma - (inframe+alfram1)/2;
- par_oc[9] = widma - (inframe+alfram1)/2;
- par_oc[10] = 0.;
- pMC->Gsvolu("UTCO", "TRAP", idtmed[1306], par_oc, 11);
- // --- The inner part of the outer chambers (Air)
- par_oc[3] -= ccframe;
- par_oc[4] -= ccframe;
- par_oc[5] -= ccframe;
- par_oc[7] -= ccframe;
- par_oc[8] -= ccframe;
- par_oc[9] -= ccframe;
- pMC->Gsvolu("UTIO", "TRAP", idtmed[1301], par_oc, 11);
- // --- Definition of the six modules within each outer chamber
- pMC->Gsdvn("UTMO", "UTIO", nmodul, 3);
- // --- Definition of the layers of each outer chamber
- par_oc[1] = theoc;
- par_oc[2] = 90.;
- par_oc[3] = -1.;
- par_oc[4] = -1.;
- par_oc[5] = -1.;
- par_oc[6] = 0.;
- par_oc[7] = -1.;
- par_oc[8] = -1.;
- par_oc[9] = -1.;
- par_oc[10] = 0.;
- // --- Radiator layer
- par_oc[0] = rathick/2;
- pMC->Gsvolu("UT1O", "TRAP", idtmed[1311], par_oc, 11);
- // --- Polyethylene layer
- par_oc[0] = pethick/2;
- pMC->Gsvolu("UT2O", "TRAP", idtmed[1302], par_oc, 11);
- // --- Mylar layer
- par_oc[0] = mythick/2;
- pMC->Gsvolu("UT3O", "TRAP", idtmed[1307], par_oc, 11);
- // --- Xe/CO2 layer
- par_oc[0] = xethick/2;
- pMC->Gsvolu("UT4O", "TRAP", idtmed[1308], par_oc, 11);
- // --- Cu layer
- par_oc[0] = cuthick/2;
- pMC->Gsvolu("UT5O", "TRAP", idtmed[1304], par_oc, 11);
- // --- Kapton layer
- par_oc[0] = kathick/2;
- pMC->Gsvolu("UT6O", "TRAP", idtmed[1310], par_oc, 11);
- // --- NOMEX layer
- par_oc[0] = nothick/2;
- pMC->Gsvolu("UT7O", "TRAP", idtmed[1309], par_oc, 11);
- // --- Read out layer
- par_oc[0] = rothick/2;
- pMC->Gsvolu("UT8O", "TRAP", idtmed[1305], par_oc, 11);
- // --- The carbon frame of the chambers in the short sectors
- par_oc[0] = (rmax-rmin)/2;
- par_oc[1] = theoc;
- par_oc[2] = 90.;
- par_oc[3] = zmax2/2 - zmax1/4 -alfram2/2;
- par_oc[4] = widmi - (inframe+alfram1)/2;
- par_oc[5] = widmi - (inframe+alfram1)/2;
- par_oc[6] = 0.;
- par_oc[7] = zmax1/4 - alfram2/2;
- par_oc[8] = widma - (inframe+alfram1)/2;
- par_oc[9] = widma - (inframe+alfram1)/2;
- par_oc[10] = 0.;
- pMC->Gsvolu("UTCS", "TRAP", idtmed[1306], par_oc, 11);
- // --- The inner part of the chambers in the short sectors (Air)
- par_oc[3] -= ccframe;
- par_oc[4] -= ccframe;
- par_oc[5] -= ccframe;
- par_oc[7] -= ccframe;
- par_oc[8] -= ccframe;
- par_oc[9] -= ccframe;
- pMC->Gsvolu("UTIS", "TRAP", idtmed[1301], par_oc, 11);
- //--- Definition of the six modules within each chamber of the short sectors
- pMC->Gsdvn("UTMS", "UTIS", 6, 3);
- // --- Definition of the layers of each chamber in the short sectors
- par_oc[1] = theoc;
- par_oc[2] = 90.;
- par_oc[3] = -1.;
- par_oc[4] = -1.;
- par_oc[5] = -1.;
- par_oc[6] = 0.;
- par_oc[7] = -1.;
- par_oc[8] = -1.;
- par_oc[9] = -1.;
- par_oc[10] = 0.;
- // --- Radiator layer
- par_oc[0] = rathick/2;
- pMC->Gsvolu("UT1S", "TRAP", idtmed[1311], par_oc, 11);
- // --- Polyethylene layer
- par_oc[0] = pethick/2;
- pMC->Gsvolu("UT2S", "TRAP", idtmed[1302], par_oc, 11);
- // --- Mylar layer
- par_oc[0] = mythick/2;
- pMC->Gsvolu("UT3S", "TRAP", idtmed[1307], par_oc, 11);
- // --- Xe/CO2 layer
- par_oc[0] = xethick/2;
- pMC->Gsvolu("UT4S", "TRAP", idtmed[1308], par_oc, 11);
- // --- Cu layer
- par_oc[0] = cuthick/2;
- pMC->Gsvolu("UT5S", "TRAP", idtmed[1304], par_oc, 11);
- // --- Kapton layer
- par_oc[0] = kathick/2;
- pMC->Gsvolu("UT6S", "TRAP", idtmed[1310], par_oc, 11);
- // --- NOMEX layer
- par_oc[0] = nothick/2;
- pMC->Gsvolu("UT7S", "TRAP", idtmed[1309], par_oc, 11);
- // --- Read out layer
- par_oc[0] = rothick/2;
- pMC->Gsvolu("UT8S", "TRAP", idtmed[1305], par_oc, 11);
- // --- The carbon frame of the inner chambers
- par_ic[0] = widmi - (inframe+alfram1)/2;
- par_ic[1] = widma - (inframe+alfram1)/2;
- par_ic[2] = zmax1/4 - alfram2/2;
- par_ic[3] = (rmax-rmin)/2;
- pMC->Gsvolu("UTCI", "TRD1", idtmed[1306], par_ic, 4);
- // --- The inner part of the inner chambers (Air)
- par_ic[0] -= ccframe;
- par_ic[1] -= ccframe;
- par_ic[2] -= ccframe;
- pMC->Gsvolu("UTII", "TRD1", idtmed[1301], par_ic, 4);
- // --- Definition of the six modules within each outer chamber
- pMC->Gsdvn("UTMI", "UTII", nmodul, 3);
- // --- Definition of the layers of each inner chamber
- par_ic[0] = -1.;
- par_ic[1] = -1.;
- par_ic[2] = -1.;
- // --- Radiator layer
- par_ic[3] = rathick/2;
- pMC->Gsvolu("UT1I", "TRD1", idtmed[1311], par_ic, 4);
- // --- Polyethylene layer
- par_ic[3] = pethick/2;
- pMC->Gsvolu("UT2I", "TRD1", idtmed[1302], par_ic, 4);
- // --- Mylar layer
- par_ic[3] = mythick/2;
- pMC->Gsvolu("UT3I", "TRD1", idtmed[1307], par_ic, 4);
- // --- Xe/CO2 layer
- par_ic[3] = xethick/2;
- pMC->Gsvolu("UT4I", "TRD1", idtmed[1308], par_ic, 4);
- // --- Cu layer
- par_ic[3] = cuthick/2;
- pMC->Gsvolu("UT5I", "TRD1", idtmed[1304], par_ic, 4);
- // --- Kapton layer
- par_ic[3] = kathick/2;
- pMC->Gsvolu("UT6I", "TRD1", idtmed[1310], par_ic, 4);
- // --- NOMEX layer
- par_ic[3] = nothick/2;
- pMC->Gsvolu("UT7I", "TRD1", idtmed[1309], par_ic, 4);
- // --- Read out layer
- par_ic[3] = rothick/2;
- pMC->Gsvolu("UT8I", "TRD1", idtmed[1305], par_ic, 4);
- //************************************************************************
-
- // Positioning of Volumes
-
- //************************************************************************
- // --- The rotation matrices
- AliMatrix(idmat[0], 90., 180., 90., 90., 0., 0.);
- AliMatrix(idmat[1], 90., 0., 90., 90., 180., 0.);
- AliMatrix(idmat[2], 90., 180., 90., 90., 180., 0.);
- AliMatrix(idmat[3], 90., 90., 180., 0., 90., 0.);
- AliMatrix(idmat[4], 90., 90., 0., 0., 90., 0.);
- // --- Position of the layers in a TRD module
- f = TMath::Tan(theoc * kDegrad);
- pMC->Gspos("UT8O", 1, "UTMO", 0., f*rozpos, rozpos, 0, "ONLY");
- pMC->Gspos("UT7O", 1, "UTMO", 0., f*nozpos, nozpos, 0, "ONLY");
- pMC->Gspos("UT6O", 1, "UTMO", 0., f*kazpos, kazpos, 0, "ONLY");
- pMC->Gspos("UT5O", 1, "UTMO", 0., f*cuzpos, cuzpos, 0, "ONLY");
- pMC->Gspos("UT4O", 1, "UTMO", 0., f*xezpos, xezpos, 0, "ONLY");
- pMC->Gspos("UT3O", 1, "UTMO", 0., f*myzpos, myzpos, 0, "ONLY");
- pMC->Gspos("UT1O", 1, "UTMO", 0., f*razpos, razpos, 0, "ONLY");
- pMC->Gspos("UT2O", 1, "UT1O", 0., f*pezpos, pezpos, 0, "ONLY");
-
- pMC->Gspos("UT8S", 1, "UTMS", 0., f*rozpos, rozpos, 0, "ONLY");
- pMC->Gspos("UT7S", 1, "UTMS", 0., f*nozpos, nozpos, 0, "ONLY");
- pMC->Gspos("UT6S", 1, "UTMS", 0., f*kazpos, kazpos, 0, "ONLY");
- pMC->Gspos("UT5S", 1, "UTMS", 0., f*cuzpos, cuzpos, 0, "ONLY");
- pMC->Gspos("UT4S", 1, "UTMS", 0., f*xezpos, xezpos, 0, "ONLY");
- pMC->Gspos("UT3S", 1, "UTMS", 0., f*myzpos, myzpos, 0, "ONLY");
- pMC->Gspos("UT1S", 1, "UTMS", 0., f*razpos, razpos, 0, "ONLY");
- pMC->Gspos("UT2S", 1, "UT1S", 0., f*pezpos, pezpos, 0, "ONLY");
-
- pMC->Gspos("UT8I", 1, "UTMI", 0., 0., rozpos, 0, "ONLY");
- pMC->Gspos("UT7I", 1, "UTMI", 0., 0., nozpos, 0, "ONLY");
- pMC->Gspos("UT6I", 1, "UTMI", 0., 0., kazpos, 0, "ONLY");
- pMC->Gspos("UT5I", 1, "UTMI", 0., 0., cuzpos, 0, "ONLY");
- pMC->Gspos("UT4I", 1, "UTMI", 0., 0., xezpos, 0, "ONLY");
- pMC->Gspos("UT3I", 1, "UTMI", 0., 0., myzpos, 0, "ONLY");
- pMC->Gspos("UT1I", 1, "UTMI", 0., 0., razpos, 0, "ONLY");
- pMC->Gspos("UT2I", 1, "UT1I", 0., 0., pezpos, 0, "ONLY");
- // --- Position of the inner part of the chambers
- pMC->Gspos("UTII", 1, "UTCI", 0., 0., 0., 0, "ONLY");
- pMC->Gspos("UTIO", 1, "UTCO", 0., 0., 0., 0, "ONLY");
- pMC->Gspos("UTIS", 1, "UTCS", 0., 0., 0., 0, "ONLY");
- // --- Position of the chambers in the support frame
- xpos = 0.;
- ypos = (zmax1-zmax2)/4;
- zpos = 0.;
- pMC->Gspos("UTCO", 1, "UTFO", xpos, ypos, zpos, 0, "ONLY");
- xpos = 0.;
- ypos = (zmax1-zmax2)/4;
- zpos = 0.;
- pMC->Gspos("UTCS", 1, "UTFS", xpos, ypos, zpos, 0, "ONLY");
- xpos = 0.;
- ypos = 0.;
- zpos = 0.;
- pMC->Gspos("UTCI", 1, "UTFI", xpos, ypos, zpos, 0, "ONLY");
- // --- Position of the inner part of the frame in the sectors
- xpos = (rmax+rmin)/2;
- ypos = 0;
- zpos = -zmax1*3/4;
- pMC->Gspos("UTFO", 1, "UTSL", xpos, ypos, zpos, idmat[4], "ONLY");
- xpos = (rmax+rmin)/2;
- ypos = 0;
- zpos = -zmax1*3/4;
- pMC->Gspos("UTFS", 1, "UTSS", xpos, ypos, zpos, idmat[4], "ONLY");
- xpos = (rmax+rmin)/2;
- ypos = 0.;
- zpos = -zmax1/4;
- pMC->Gspos("UTFI", 1, "UTSL", xpos, ypos, zpos, idmat[4], "ONLY");
- // --- Position of the subdetectors in the mother volume
- pMC->Gspos("UTRL", 1, "TRD ", 0., 0., 0., 0, "ONLY");
- pMC->Gspos("UTRL", 2, "TRD ", 0., 0., 0., idmat[0], "ONLY");
- pMC->Gspos("UTRL", 3, "TRD ", 0., 0., 0., idmat[1], "ONLY");
- pMC->Gspos("UTRL", 4, "TRD ", 0., 0., 0., idmat[2], "ONLY");
- pMC->Gspos("UTRS", 1, "TRD ", 0., 0., 0., 0, "ONLY");
- pMC->Gspos("UTRS", 2, "TRD ", 0., 0., 0., idmat[1], "ONLY");
- // --- Position of TRD mother volume in ALICE experiment
- pMC->Gspos("TRD ", 1, "ALIC", 0., 0., 0., 0, "ONLY");
+
+ if (fTR) {
+ delete fTR;
+ fTR = 0;
+ }
+
}
//_____________________________________________________________________________
-void AliTRDv1::DrawDetector()
+void AliTRDv1::AddAlignableVolumes() const
{
//
- // Draw a shaded view of the Transition Radiation Detector version 1
+ // Create entries for alignable volumes associating the symbolic volume
+ // name with the corresponding volume path. Needs to be syncronized with
+ // eventual changes in the geometry.
+ //
+
+ TString volPath;
+ TString symName;
+
+ TString vpStr = "ALIC_1/B077_1/BSEGMO";
+ TString vpApp1 = "_1/BTRD";
+ TString vpApp2 = "_1";
+ TString vpApp3a = "/UTR1_1/UTS1_1/UTI1_1/UT";
+ TString vpApp3b = "/UTR2_1/UTS2_1/UTI2_1/UT";
+ TString vpApp3c = "/UTR3_1/UTS3_1/UTI3_1/UT";
+
+ TString snStr = "TRD/sm";
+ TString snApp1 = "/st";
+ TString snApp2 = "/pl";
+
+ //
+ // The super modules
+ // The symbolic names are: TRD/sm00
+ // ...
+ // TRD/sm17
//
+ for (Int_t isector = 0; isector < AliTRDgeometry::Nsector(); isector++) {
- AliMC* pMC = AliMC::GetMC();
+ volPath = vpStr;
+ volPath += isector;
+ volPath += vpApp1;
+ volPath += isector;
+ volPath += vpApp2;
+
+ symName = snStr;
+ symName += Form("%02d",isector);
+
+ gGeoManager->SetAlignableEntry(symName.Data(),volPath.Data());
+
+ }
+
+ //
+ // The readout chambers
+ // The symbolic names are: TRD/sm00/st0/pl0
+ // ...
+ // TRD/sm17/st4/pl5
+ //
+ AliGeomManager::ELayerID idTRD1 = AliGeomManager::kTRD1;
+ Int_t layer, modUID;
- // Set everything unseen
- pMC->Gsatt("*", "seen", -1);
- //
- // Set ALIC mother transparent
- pMC->Gsatt("ALIC","SEEN",0);
+ for (Int_t isector = 0; isector < AliTRDgeometry::Nsector(); isector++) {
+
+ if (fGeometry->GetSMstatus(isector) == 0) continue;
+
+ for (Int_t istack = 0; istack < AliTRDgeometry::Nstack(); istack++) {
+ for (Int_t ilayer = 0; ilayer < AliTRDgeometry::Nlayer(); ilayer++) {
+
+ layer = idTRD1 + ilayer;
+ modUID = AliGeomManager::LayerToVolUIDSafe(layer,isector*5+istack);
+
+ Int_t idet = AliTRDgeometry::GetDetectorSec(ilayer,istack);
+
+ volPath = vpStr;
+ volPath += isector;
+ volPath += vpApp1;
+ volPath += isector;
+ volPath += vpApp2;
+ switch (isector) {
+ case 13:
+ case 14:
+ case 15:
+ if (istack == 2) {
+ continue;
+ }
+ volPath += vpApp3c;
+ break;
+ case 11:
+ case 12:
+ volPath += vpApp3b;
+ break;
+ default:
+ volPath += vpApp3a;
+ };
+ volPath += Form("%02d",idet);
+ volPath += vpApp2;
+
+ symName = snStr;
+ symName += Form("%02d",isector);
+ symName += snApp1;
+ symName += istack;
+ symName += snApp2;
+ symName += ilayer;
+
+ TGeoPNEntry *alignableEntry =
+ gGeoManager->SetAlignableEntry(symName.Data(),volPath.Data(),modUID);
+
+ // Add the tracking to local matrix following the TPC example
+ if (alignableEntry) {
+ TGeoHMatrix *globMatrix = alignableEntry->GetGlobalOrig();
+ Double_t sectorAngle = 20.0 * (isector % 18) + 10.0;
+ TGeoHMatrix *t2lMatrix = new TGeoHMatrix();
+ t2lMatrix->RotateZ(sectorAngle);
+ t2lMatrix->MultiplyLeft(&(globMatrix->Inverse()));
+ alignableEntry->SetMatrix(t2lMatrix);
+ }
+ else {
+ AliError(Form("Alignable entry %s is not valid!",symName.Data()));
+ }
+
+ }
+ }
+ }
+
+}
+
+//_____________________________________________________________________________
+void AliTRDv1::CreateGeometry()
+{
//
- // Set the volumes visible
- pMC->Gsatt("TRD","SEEN",0);
- pMC->Gsatt("UTRL","SEEN",0);
- pMC->Gsatt("UTSL","SEEN",0);
- pMC->Gsatt("UTRS","SEEN",0);
- pMC->Gsatt("UTSS","SEEN",0);
- pMC->Gsatt("UTFI","SEEN",0);
- pMC->Gsatt("UTFO","SEEN",0);
- pMC->Gsatt("UTFS","SEEN",0);
- pMC->Gsatt("UTCO","SEEN",0);
- pMC->Gsatt("UTIO","SEEN",0);
- pMC->Gsatt("UTMO","SEEN",0);
- pMC->Gsatt("UT1O","SEEN",1);
- pMC->Gsatt("UT4O","SEEN",1);
- pMC->Gsatt("UTCS","SEEN",0);
- pMC->Gsatt("UTIS","SEEN",0);
- pMC->Gsatt("UTMS","SEEN",0);
- pMC->Gsatt("UT1S","SEEN",1);
- pMC->Gsatt("UT4S","SEEN",1);
- pMC->Gsatt("UTCI","SEEN",0);
- pMC->Gsatt("UTII","SEEN",0);
- pMC->Gsatt("UTMI","SEEN",0);
- pMC->Gsatt("UT1I","SEEN",1);
- pMC->Gsatt("UT4I","SEEN",1);
+ // Create the GEANT geometry for the Transition Radiation Detector - Version 1
+ // This version covers the full azimuth.
//
- pMC->Gdopt("hide", "on");
- pMC->Gdopt("shad", "on");
- pMC->Gsatt("*", "fill", 7);
- pMC->SetClipBox(".");
- pMC->SetClipBox("*", 0, 2000, -2000, 2000, -2000, 2000);
- pMC->DefaultRange();
- pMC->Gdraw("alic", 40, 30, 0, 12, 9.4, .021, .021);
- pMC->Gdhead(1111, "Transition Radiation Detector Version 1");
- pMC->Gdman(18, 4, "MAN");
+
+ // Check that FRAME is there otherwise we have no place where to put the TRD
+ AliModule* frame = gAlice->GetModule("FRAME");
+ if (!frame) {
+ AliError("TRD needs FRAME to be present\n");
+ return;
+ }
+
+ // Define the chambers
+ AliTRD::CreateGeometry();
+
}
//_____________________________________________________________________________
//
// Create materials for the Transition Radiation Detector version 1
//
- printf("TRD: Fast simulation with coarse geometry\n");
- AliTRD::CreateMaterials();
+
+ AliTRD::CreateMaterials();
+
+}
+
+//_____________________________________________________________________________
+void AliTRDv1::CreateTRhit(Int_t det)
+{
+ //
+ // Creates an electron cluster from a TR photon.
+ // The photon is assumed to be created a the end of the radiator. The
+ // distance after which it deposits its energy takes into account the
+ // absorbtion of the entrance window and of the gas mixture in drift
+ // volume.
+ //
+
+ // Maximum number of TR photons per track
+ const Int_t kNTR = 50;
+
+ TLorentzVector mom;
+ TLorentzVector pos;
+
+ Float_t eTR[kNTR];
+ Int_t nTR;
+
+ // Create TR photons
+ gMC->TrackMomentum(mom);
+ Float_t pTot = mom.Rho();
+ fTR->CreatePhotons(11,pTot,nTR,eTR);
+ if (nTR > kNTR) {
+ AliFatal(Form("Boundary error: nTR = %d, kNTR = %d",nTR,kNTR));
+ }
+
+ // Loop through the TR photons
+ for (Int_t iTR = 0; iTR < nTR; iTR++) {
+
+ Float_t energyMeV = eTR[iTR] * 0.001;
+ Float_t energyeV = eTR[iTR] * 1000.0;
+ Float_t absLength = 0.0;
+ Float_t sigma = 0.0;
+
+ // Take the absorbtion in the entrance window into account
+ Double_t muMy = fTR->GetMuMy(energyMeV);
+ sigma = muMy * fFoilDensity;
+ if (sigma > 0.0) {
+ absLength = gRandom->Exp(1.0/sigma);
+ if (absLength < AliTRDgeometry::MyThick()) {
+ continue;
+ }
+ }
+ else {
+ continue;
+ }
+
+ // The absorbtion cross sections in the drift gas
+ // Gas-mixture (Xe/CO2)
+ Double_t muNo = 0.0;
+ if (AliTRDCommonParam::Instance()->IsXenon()) {
+ muNo = fTR->GetMuXe(energyMeV);
+ }
+ else if (AliTRDCommonParam::Instance()->IsArgon()) {
+ muNo = fTR->GetMuAr(energyMeV);
+ }
+ Double_t muCO = fTR->GetMuCO(energyMeV);
+ sigma = (fGasNobleFraction * muNo + (1.0 - fGasNobleFraction) * muCO)
+ * fGasDensity
+ * fTR->GetTemp();
+
+ // The distance after which the energy of the TR photon
+ // is deposited.
+ if (sigma > 0.0) {
+ absLength = gRandom->Exp(1.0/sigma);
+ if (absLength > (AliTRDgeometry::DrThick()
+ + AliTRDgeometry::AmThick())) {
+ continue;
+ }
+ }
+ else {
+ continue;
+ }
+
+ // The position of the absorbtion
+ Float_t posHit[3];
+ gMC->TrackPosition(pos);
+ posHit[0] = pos[0] + mom[0] / pTot * absLength;
+ posHit[1] = pos[1] + mom[1] / pTot * absLength;
+ posHit[2] = pos[2] + mom[2] / pTot * absLength;
+
+ // Create the charge
+ Int_t q = ((Int_t) (energyeV / fWion));
+
+ // Add the hit to the array. TR photon hits are marked
+ // by negative charge
+ AddHit(gAlice->GetMCApp()->GetCurrentTrackNumber()
+ ,det
+ ,posHit
+ ,-q
+ ,gMC->TrackTime()*1.0e06
+ ,kTRUE);
+
+ }
+
}
//_____________________________________________________________________________
void AliTRDv1::Init()
{
//
- // Initialise the Transition Radiation Detector after the geometry is built
+ // Initialise Transition Radiation Detector after geometry has been built.
//
+
AliTRD::Init();
- AliMC* pMC = AliMC::GetMC();
- fIdSens1 = pMC->VolId("UT5I");
- fIdSens2 = pMC->VolId("UT5O");
- fIdSens3 = pMC->VolId("UT5S");
+
+ AliDebug(1,"Slow simulator\n");
+
+ // Switch on TR simulation as default
+ if (!fTRon) {
+ AliInfo("TR simulation off");
+ }
+ else {
+ fTR = new AliTRDsimTR();
+ }
+
+ AliDebug(1,"+++++++++++++++++++++++++++++++++++++++++++++++++++++++++++++");
+
}
//_____________________________________________________________________________
-void AliTRDv1::StepManager()
+void AliTRDv1::StepManager()
{
//
- // Called at every step in the Transition Radiation Detector
+ // Slow simulator. Every charged track produces electron cluster as hits
+ // along its path across the drift volume. The step size is fixed in
+ // this version of the step manager.
+ //
+ // Works for Xe/CO2 as well as Ar/CO2
//
- Int_t vol[3];
- Int_t icopy1, icopy5, icopy6, idSens, icSens;
-
- Float_t hits[4];
-
- TClonesArray &lhits = *fHits;
- AliMC* pMC = AliMC::GetMC();
-
- // Use only charged tracks and count them only once per volume
- if(pMC->TrackCharge() && pMC->TrackEntering()) {
-
- // Check on sensitive volume
- idSens = pMC->CurrentVol(0,icSens);
-
- // Long sectors
- if ((idSens == fIdSens1) || (idSens == fIdSens2)) {
-
- pMC->CurrentVolOff(1,0,icopy1);
- pMC->CurrentVolOff(5,0,icopy5);
- pMC->CurrentVolOff(6,0,icopy6);
-
- // The sector number
- if ((icopy6 == 1) || (icopy6 == 3))
- vol[0] = icopy5;
- else
- vol[0] = 16 - icopy5;
-
- // The chamber number
- if (idSens == fIdSens2) {
- if (icopy6 < 3)
- vol[1] = 4;
- else
- vol[1] = 1;
- }
- else {
- if (icopy6 < 3)
- vol[1] = 3;
- else
- vol[1] = 2;
- }
-
- // The plane number
- vol[2] = icopy1;
-
- pMC->TrackPosition(hits);
- hits[3] = 0;
-
- new(lhits[fNhits++]) AliTRDhit(fIshunt,gAlice->CurrentTrack(),vol,hits);
-
+ // PDG code electron
+ const Int_t kPdgElectron = 11;
+
+ Int_t layer = 0;
+ Int_t stack = 0;
+ Int_t sector = 0;
+ Int_t det = 0;
+ Int_t qTot;
+
+ Float_t hits[3];
+ Double_t eDep;
+
+ Bool_t drRegion = kFALSE;
+ Bool_t amRegion = kFALSE;
+
+ TString cIdPath;
+ Char_t cIdSector[3];
+ cIdSector[2] = 0;
+
+ TString cIdCurrent;
+ TString cIdSensDr = "J";
+ TString cIdSensAm = "K";
+ Char_t cIdChamber[3];
+ cIdChamber[2] = 0;
+
+ TLorentzVector pos;
+ TLorentzVector mom;
+
+ const Int_t kNlayer = AliTRDgeometry::Nlayer();
+ const Int_t kNstack = AliTRDgeometry::Nstack();
+ const Int_t kNdetsec = kNlayer * kNstack;
+
+ const Double_t kBig = 1.0e+12;
+ const Float_t kEkinMinStep = 1.0e-5; // Minimum energy for the step size adjustment
+
+ // Set the maximum step size to a very large number for all
+ // neutral particles and those outside the driftvolume
+ if (!fPrimaryIonisation) gMC->SetMaxStep(kBig);
+
+ // If not charged track or already stopped or disappeared, just return.
+ if ((!gMC->TrackCharge()) ||
+ gMC->IsTrackDisappeared()) {
+ return;
+ }
+
+ // Inside a sensitive volume?
+ cIdCurrent = gMC->CurrentVolName();
+
+ if (cIdSensDr == cIdCurrent[1]) {
+ drRegion = kTRUE;
+ }
+ if (cIdSensAm == cIdCurrent[1]) {
+ amRegion = kTRUE;
+ }
+
+ if ((!drRegion) &&
+ (!amRegion)) {
+ return;
+ }
+
+ // The hit coordinates and charge
+ gMC->TrackPosition(pos);
+ hits[0] = pos[0];
+ hits[1] = pos[1];
+ hits[2] = pos[2];
+
+ // The sector number (0 - 17), according to standard coordinate system
+ cIdPath = gGeoManager->GetPath();
+ cIdSector[0] = cIdPath[21];
+ cIdSector[1] = cIdPath[22];
+ sector = atoi(cIdSector);
+
+ // The plane and chamber number
+ cIdChamber[0] = cIdCurrent[2];
+ cIdChamber[1] = cIdCurrent[3];
+ Int_t idChamber = (atoi(cIdChamber) % kNdetsec);
+ stack = ((Int_t) idChamber / kNlayer);
+ layer = ((Int_t) idChamber % kNlayer);
+
+ // The detector number
+ det = fGeometry->GetDetector(layer,stack,sector);
+
+ // 0: InFlight 1:Entering 2:Exiting
+ Int_t trkStat = 0;
+
+ // Special hits only in the drift region
+ if ((drRegion) &&
+ (gMC->IsTrackEntering())) {
+
+ // Create a track reference at the entrance of each
+ // chamber that contains the momentum components of the particle
+ gMC->TrackMomentum(mom);
+ AddTrackReference(gAlice->GetMCApp()->GetCurrentTrackNumber(), AliTrackReference::kTRD);
+ trkStat = 1;
+
+ // Create the hits from TR photons if electron/positron is
+ // entering the drift volume
+ if ((fTR) &&
+ (fTRon) &&
+ (TMath::Abs(gMC->TrackPid()) == kPdgElectron)) {
+ CreateTRhit(det);
}
- // Short sectors
- else if (idSens == fIdSens3) {
-
- pMC->CurrentVolOff(1,0,icopy1);
- pMC->CurrentVolOff(5,0,icopy5);
- pMC->CurrentVolOff(6,0,icopy6);
-
- // The sector number
- vol[0] = icopy5 + 5;
-
- // The chamber number
- if (icopy6 == 1)
- vol[1] = 4;
- else
- vol[1] = 1;
-
- // The plane number
- vol[2] = icopy1;
-
- pMC->TrackPosition(hits);
- hits[3] = 0;
-
- new(lhits[fNhits++]) AliTRDhit(fIshunt,gAlice->CurrentTrack(),vol,hits);
-
- }
- }
+
+ }
+ else if ((amRegion) &&
+ (gMC->IsTrackExiting())) {
+
+ // Create a track reference at the exit of each
+ // chamber that contains the momentum components of the particle
+ gMC->TrackMomentum(mom);
+ AddTrackReference(gAlice->GetMCApp()->GetCurrentTrackNumber(), AliTrackReference::kTRD);
+ trkStat = 2;
+
+ }
+
+ // Calculate the charge according to GEANT Edep
+ // Create a new dEdx hit
+ eDep = TMath::Max(gMC->Edep(),0.0) * 1.0e+09;
+ qTot = (Int_t) (eDep / fWion);
+ if ((qTot) ||
+ (trkStat)) {
+ AddHit(gAlice->GetMCApp()->GetCurrentTrackNumber()
+ ,det
+ ,hits
+ ,qTot
+ ,gMC->TrackTime()*1.0e06
+ ,drRegion);
+ }
+
+ // Set Maximum Step Size
+ // Produce only one hit if Ekin is below cutoff
+ if ((gMC->Etot() - gMC->TrackMass()) < kEkinMinStep) {
+ return;
+ }
+ if (!fPrimaryIonisation) gMC->SetMaxStep(fStepSize);
+
}