1 /**************************************************************************
2 * Copyright(c) 1998-1999, ALICE Experiment at CERN, All rights reserved. *
4 * Author: The ALICE Off-line Project. *
5 * Contributors are mentioned in the code where appropriate. *
7 * Permission to use, copy, modify and distribute this software and its *
8 * documentation strictly for non-commercial purposes is hereby granted *
9 * without fee, provided that the above copyright notice appears in all *
10 * copies and that both the copyright notice and this permission notice *
11 * appear in the supporting documentation. The authors make no claims *
12 * about the suitability of this software for any purpose. It is *
13 * provided "as is" without express or implied warranty. *
14 **************************************************************************/
18 Revision 1.11 1999/10/22 08:16:49 fca
19 Correct destructors, thanks to I.Hrivnacova
21 Revision 1.10 1999/10/06 19:56:50 fca
24 Revision 1.9 1999/10/05 08:05:09 fca
25 Minor corrections for uninitialised variables.
27 Revision 1.8 1999/09/29 09:24:20 fca
28 Introduction of the Copyright and cvs Log
32 ///////////////////////////////////////////////////////////////////////////////
34 // Inner Traking System version 1 //
35 // This class contains the base procedures for the Inner Tracking System //
37 // Authors: R. Barbera, A. Morsch.
41 // NOTE: THIS IS THE COARSE pre.TDR geometry of the ITS. THIS WILL NOT WORK
42 // with the geometry or module classes or any analysis classes. You are
43 // strongly encouraged to uses AliITSv5.
45 ///////////////////////////////////////////////////////////////////////////////
50 #include "AliITShit.h"
59 //_____________________________________________________________________________
60 AliITSv1::AliITSv1() {
62 // Default constructor for the ITS
65 fId1Name = new char*[fId1N];
74 //_____________________________________________________________________________
75 AliITSv1::AliITSv1(const char *name, const char *title) : AliITS(name, title){
77 // Standard constructor for the ITS
80 fId1Name = new char*[fId1N];
89 //_____________________________________________________________________________
90 AliITSv1::~AliITSv1() {
92 // Standard destructor for the ITS
97 //_____________________________________________________________________________
98 void AliITSv1::CreateGeometry()
101 // Create geometry for version 1 of the ITS
104 // Create Geometry for ITS version 0
110 Float_t drcer[6] = { 0.,0.,.08,.08,0.,0. }; //CERAMICS THICKNESS
111 Float_t drepx[6] = { 0.,0.,0.,0.,.5357,.5357 }; //EPOXY THICKNESS
112 Float_t drpla[6] = { 0.,0.,0.,0.,.1786,.1786 }; //PLASTIC THICKNESS
113 Float_t dzb[6] = { 0.,0.,15.,15.,4.,4. }; //LENGTH OF BOXES
114 Float_t dphi[6] = { 72.,72.,72.,72.,50.6,45. }; //COVERED PHI-RANGE FOR LAYERS 1-6
115 Float_t rl[6] = { 3.9,7.6,14.,24.,40.,45. }; //SILICON LAYERS INNER RADIUS
116 Float_t drl[6] = { .755,.755,.809,.809,.7,.7 }; //THICKNESS OF LAYERS (in % radiation length)
117 Float_t dzl[6] = { 12.67,16.91,20.85,29.15,45.11,50.975 };//HALF LENGTH OF LAYERS
118 Float_t drpcb[6] = { 0.,0.,.06,.06,0.,0. }; //PCB THICKNESS
119 Float_t drcu[6] = { 0.,0.,.0504,.0504,.0357,.0357 }; //COPPER THICKNESS
120 Float_t drsi[6] = { 0.,0.,.006,.006,.3571,.3571 }; //SILICON THICKNESS
122 Float_t drca = 0, dzfc;
124 Float_t rend, drca_tpc, dzco, zend, dits[3], rlim, drsu, zmax;
125 Float_t zpos, dzco1, dzco2;
126 Float_t drcac[6], acone, dphii;
127 Float_t pcits[15], xltpc;
128 Float_t rzcone, rstep, r0, z0, acable, fp, dz, zi, ri;
132 Int_t *idtmed = fIdtmed->GetArray()-199;
134 // CONVERT INTO CM (RL(SI)=9.36 CM)
135 for (i = 0; i < 6; ++i) {
136 drl[i] = drl[i] / 100. * 9.36;
139 // SUPPORT ENDPLANE THICKNESS
140 drsu = 2.*0.06+1./20; // 1./20. is 1 cm of honeycomb (1/20 carbon density);
146 // CABLE THICKNESS (CONICAL CABLES CONNECTING THE LAYERS)
154 // CONE RADIUS AT 1ST LAYER
158 // FIELD CAGE HALF LENGTH
166 // PARAMETERS FOR SMALL (1/2) ITS
168 for (i = 0; i < 6; ++i) {
183 // EQUAL DISTRIBUTION INTO THE 6 LAYERS
184 rstep = drca_tpc / 6.;
185 for (i = 0; i < 6; ++i) {
186 drcac[i] = (i+1) * rstep;
189 // NUMBER OF PHI SECTORS
193 // PACK IN PHI AS MUCH AS POSSIBLE
194 // NOW PACK USING THICKNESS
196 for (i = 0; i < 6; ++i) {
201 // PHI-PACKING NOT SUFFICIENT ?
203 if (dphi[i]/45 < fp) {
204 drcac[i] = drcac[i] * fp * 45/dphi[i];
209 // --- Define ghost volume containing the six layers and fill it with air
214 gMC->Gsvolu("ITSV", "TUBE", idtmed[275], dgh, 3);
216 // --- Place the ghost volume in its mother volume (ALIC) and make it
219 gMC->Gspos("ITSV", 1, "ALIC", 0., 0., 0., 0, "ONLY");
220 gMC->Gsatt("ITSV", "SEEN", 0);
222 // ITS LAYERS (SILICON)
225 dits[1] = rl[0] + drl[0];
227 gMC->Gsvolu("ITS1", "TUBE", idtmed[199], dits, 3);
228 gMC->Gspos("ITS1", 1, "ITSV", 0., 0., 0., 0, "ONLY");
231 dits[1] = rl[1] + drl[1];
233 gMC->Gsvolu("ITS2", "TUBE", idtmed[199], dits, 3);
234 gMC->Gspos("ITS2", 1, "ITSV", 0., 0., 0., 0, "ONLY");
237 dits[1] = rl[2] + drl[2];
239 gMC->Gsvolu("ITS3", "TUBE", idtmed[224], dits, 3);
240 gMC->Gspos("ITS3", 1, "ITSV", 0., 0., 0., 0, "ONLY");
243 dits[1] = rl[3] + drl[3];
245 gMC->Gsvolu("ITS4", "TUBE", idtmed[224], dits, 3);
246 gMC->Gspos("ITS4", 1, "ITSV", 0., 0., 0., 0, "ONLY");
249 dits[1] = rl[4] + drl[4];
251 gMC->Gsvolu("ITS5", "TUBE", idtmed[249], dits, 3);
252 gMC->Gspos("ITS5", 1, "ITSV", 0., 0., 0., 0, "ONLY");
255 dits[1] = rl[5] + drl[5];
257 gMC->Gsvolu("ITS6", "TUBE", idtmed[249], dits, 3);
258 gMC->Gspos("ITS6", 1, "ITSV", 0., 0., 0., 0, "ONLY");
262 // PCB (layer #3 and #4)
264 gMC->Gsvolu("IPCB", "TUBE", idtmed[233], dits, 0);
265 for (i = 2; i < 4; ++i) {
267 dits[1] = dits[0] + drpcb[i];
268 dits[2] = dzb[i] / 2.;
269 zpos = dzl[i] + dits[2];
270 gMC->Gsposp("IPCB", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
271 gMC->Gsposp("IPCB", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
274 // COPPER (layer #3 and #4)
276 gMC->Gsvolu("ICO2", "TUBE", idtmed[234], dits, 0);
277 for (i = 2; i < 4; ++i) {
278 dits[0] = rl[i] + drpcb[i];
279 dits[1] = dits[0] + drcu[i];
280 dits[2] = dzb[i] / 2.;
281 zpos = dzl[i] + dits[2];
282 gMC->Gsposp("ICO2", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
283 gMC->Gsposp("ICO2", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
286 // CERAMICS (layer #3 and #4)
288 gMC->Gsvolu("ICER", "TUBE", idtmed[235], dits, 0);
289 for (i = 2; i < 4; ++i) {
290 dits[0] = rl[i] + drpcb[i] + drcu[i];
291 dits[1] = dits[0] + drcer[i];
292 dits[2] = dzb[i] / 2.;
293 zpos = dzl[i] + dits[2];
294 gMC->Gsposp("ICER", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
295 gMC->Gsposp("ICER", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
298 // SILICON (layer #3 and #4)
300 gMC->Gsvolu("ISI2", "TUBE", idtmed[226], dits, 0);
301 for (i = 2; i < 4; ++i) {
302 dits[0] = rl[i] + drpcb[i] + drcu[i] + drcer[i];
303 dits[1] = dits[0] + drsi[i];
304 dits[2] = dzb[i] / 2.;
305 zpos = dzl[i] + dits[2];
306 gMC->Gsposp("ISI2", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
307 gMC->Gsposp("ISI2", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
310 // PLASTIC (G10FR4) (layer #5 and #6)
312 gMC->Gsvolu("IPLA", "TUBE", idtmed[262], dits, 0);
313 for (i = 4; i < 6; ++i) {
315 dits[1] = dits[0] + drpla[i];
316 dits[2] = dzb[i] / 2.;
317 zpos = dzl[i] + dits[2];
318 gMC->Gsposp("IPLA", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
319 gMC->Gsposp("IPLA", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
322 // COPPER (layer #5 and #6)
324 gMC->Gsvolu("ICO3", "TUBE", idtmed[259], dits, 0);
325 for (i = 4; i < 6; ++i) {
326 dits[0] = rl[i] + drpla[i];
327 dits[1] = dits[0] + drcu[i];
328 dits[2] = dzb[i] / 2.;
329 zpos = dzl[i] + dits[2];
330 gMC->Gsposp("ICO3", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
331 gMC->Gsposp("ICO3", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
334 // EPOXY (layer #5 and #6)
336 gMC->Gsvolu("IEPX", "TUBE", idtmed[262], dits, 0);
337 for (i = 4; i < 6; ++i) {
338 dits[0] = rl[i] + drpla[i] + drcu[i];
339 dits[1] = dits[0] + drepx[i];
340 dits[2] = dzb[i] / 2.;
341 zpos = dzl[i] + dits[2];
342 gMC->Gsposp("IEPX", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
343 gMC->Gsposp("IEPX", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
346 // SILICON (layer #5 and #6)
348 gMC->Gsvolu("ISI3", "TUBE", idtmed[251], dits, 0);
349 for (i = 4; i < 6; ++i) {
350 dits[0] = rl[i] + drpla[i] + drcu[i] + drepx[i];
351 dits[1] = dits[0] + drsi[i];
352 dits[2] = dzb[i] / 2.;
353 zpos = dzl[i] + dits[2];
354 gMC->Gsposp("ISI3", i-1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
355 gMC->Gsposp("ISI3", i+1, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
360 gMC->Gsvolu("ISUP", "TUBE", idtmed[274], dits, 0);
361 for (i = 0; i < 6; ++i) {
363 if (i < 5) dits[1] = rl[i];
366 zpos = dzl[i] + dzb[i] + dits[2];
367 gMC->Gsposp("ISUP", i+1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
368 gMC->Gsposp("ISUP", i+7, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
371 // CABLES (HORIZONTAL)
373 gMC->Gsvolu("ICHO", "TUBE", idtmed[278], dits, 0);
374 for (i = 0; i < 6; ++i) {
376 dits[1] = dits[0] + drca;
377 dits[2] = (rzcone + TMath::Tan(acone) * (rl[i] - rl[0]) - (dzl[i]+ dzb[i] + drsu)) / 2.;
378 zpos = dzl[i - 1] + dzb[i] + drsu + dits[2];
379 gMC->Gsposp("ICHO", i+1, "ITSV", 0., 0., zpos, 0, "ONLY", dits, 3);
380 gMC->Gsposp("ICHO", i+7, "ITSV", 0., 0.,-zpos, 0, "ONLY", dits, 3);
382 // DEFINE A CONICAL GHOST VOLUME FOR THE PHI SEGMENTATION
389 pcits[6] = pcits[3] + TMath::Tan(acone) * (rlim - rl[0]);
390 pcits[7] = rlim - rl[0] + 3.5;
392 gMC->Gsvolu("ICMO", "PCON", idtmed[275], pcits, 9);
393 AliMatrix(idrotm[200], 90., 0., 90., 90., 180., 0.);
394 gMC->Gspos("ICMO", 1, "ITSV", 0., 0., 0., 0, "ONLY");
395 gMC->Gspos("ICMO", 2, "ITSV", 0., 0., 0., idrotm[200], "ONLY");
397 // DIVIDE INTO NSEC PHI-SECTIONS
399 gMC->Gsdvn("ICMD", "ICMO", nsec, 2);
400 gMC->Gsatt("ICMO", "SEEN", 0);
401 gMC->Gsatt("ICMD", "SEEN", 0);
406 gMC->Gsvolu("ICCO", "PCON", idtmed[278], pcits, 0);
407 for (i = 1; i < 6; ++i) {
408 pcits[0] = -dphi[i] / 2.;
411 dzco = TMath::Tan(acone) * (rl[i+1] - rl[i]);
413 dzco1 = zmax - (rzcone + TMath::Tan(acone) * (rl[5] - rl[0])) -2.;
414 dzco2 = (rlim - rl[5]) * TMath::Tan(acone);
415 if (rl[5] + dzco1 / TMath::Tan(acone) < rlim) {
421 pcits[3] = rzcone + TMath::Tan(acone) * (rl[i] - rl[0]);
422 pcits[4] = rl[i] - drcac[i] / TMath::Sin(acone);
424 pcits[6] = pcits[3] + dzco;
425 pcits[7] = rl[i] + dzco / TMath::Tan(acone) - drcac[i] / TMath::Sin(acone);
426 pcits[8] = rl[i] + dzco / TMath::Tan(acone);
428 gMC->Gsposp("ICCO", i, "ICMD", 0., 0., 0., 0, "ONLY", pcits, 9);
434 // CONICAL CABLES BELOW TPC
436 // DEFINE A CONICAL GHOST VOLUME FOR THE PHI SEGMENTATION
442 pcits[4] = pcits[5] - drca_tpc;
444 pcits[8] = pcits[4] + (pcits[6] - pcits[3]) * TMath::Tan(acable * kDegrad);
445 pcits[7] = pcits[8] - drca_tpc;
446 AliMatrix(idrotm[200], 90., 0., 90., 90., 180., 0.);
447 gMC->Gsvolu("ICCM", "PCON", idtmed[275], pcits, 9);
448 gMC->Gspos("ICCM", 1, "ALIC", 0., 0., 0., 0, "ONLY");
449 gMC->Gspos("ICCM", 2, "ALIC", 0., 0., 0., idrotm[200], "ONLY");
450 gMC->Gsdvn("ITMD", "ICCM", nsec, 2);
451 gMC->Gsatt("ITMD", "SEEN", 0);
452 gMC->Gsatt("ICCM", "SEEN", 0);
454 // NOW PLACE SEGMENTS WITH DECREASING PHI SEGMENTS INTO THE
458 gMC->Gsvolu("ITTT", "PCON", idtmed[278], pcits, 0);
461 dz = (xltpc - zend) / 9.;
462 for (i = 0; i < 9; ++i) {
463 zi = z0 + i*dz + dz / 2.;
464 ri = r0 + (zi - z0) * TMath::Tan(acable * kDegrad);
465 dphii = dphi[5] * r0 / ri;
466 pcits[0] = -dphii / 2.;
468 pcits[3] = zi - dz / 2.;
469 pcits[5] = r0 + (pcits[3] - z0) * TMath::Tan(acable * kDegrad);
470 pcits[4] = pcits[5] - drca_tpc;
471 pcits[6] = zi + dz / 2.;
472 pcits[8] = r0 + (pcits[6] - z0) * TMath::Tan(acable * kDegrad);
473 pcits[7] = pcits[8] - drca_tpc;
475 gMC->Gsposp("ITTT", i+1, "ITMD", 0., 0., 0., 0, "ONLY", pcits, 9);
478 // --- Outputs the geometry tree in the EUCLID/CAD format
481 gMC->WriteEuclid("ITSgeometry", "ITSV", 1, 5);
485 //_____________________________________________________________________________
486 void AliITSv1::CreateMaterials()
489 // Create the materials for ITS
491 AliITS::CreateMaterials();
494 //_____________________________________________________________________________
495 void AliITSv1::Init(){
497 // Initialise the ITS after it has been built
502 fIdName = new char*[fIdN];
503 fIdSens = new Int_t[fIdN];
504 for(i=0;i<fId1N;i++) {
505 l = strlen(fId1Name[i]);
506 fIdName[i] = new char[l+1];
507 for(j=0;j<l;j++) fIdName[i][j] = fId1Name[i][j];
508 fIdName[i][l] = '\0'; // Null terminate this string.
516 //_____________________________________________________________________________
517 void AliITSv1::DrawModule()
520 // Draw a shaded view of the FMD version 1
524 // Set everything unseen
525 gMC->Gsatt("*", "seen", -1);
527 // Set ALIC mother visible
528 gMC->Gsatt("ALIC","SEEN",0);
530 // Set the volumes visible
531 gMC->Gsatt("ITSV","SEEN",0);
532 gMC->Gsatt("ITS1","SEEN",1);
533 gMC->Gsatt("ITS2","SEEN",1);
534 gMC->Gsatt("ITS3","SEEN",1);
535 gMC->Gsatt("ITS4","SEEN",1);
536 gMC->Gsatt("ITS5","SEEN",1);
537 gMC->Gsatt("ITS6","SEEN",1);
539 gMC->Gsatt("IPCB","SEEN",1);
540 gMC->Gsatt("ICO2","SEEN",1);
541 gMC->Gsatt("ICER","SEEN",0);
542 gMC->Gsatt("ISI2","SEEN",0);
543 gMC->Gsatt("IPLA","SEEN",0);
544 gMC->Gsatt("ICO3","SEEN",0);
545 gMC->Gsatt("IEPX","SEEN",0);
546 gMC->Gsatt("ISI3","SEEN",1);
547 gMC->Gsatt("ISUP","SEEN",0);
548 gMC->Gsatt("ICHO","SEEN",0);
549 gMC->Gsatt("ICMO","SEEN",0);
550 gMC->Gsatt("ICMD","SEEN",0);
551 gMC->Gsatt("ICCO","SEEN",1);
552 gMC->Gsatt("ICCM","SEEN",0);
553 gMC->Gsatt("ITMD","SEEN",0);
554 gMC->Gsatt("ITTT","SEEN",1);
557 gMC->Gdopt("hide", "on");
558 gMC->Gdopt("shad", "on");
559 gMC->Gsatt("*", "fill", 7);
560 gMC->SetClipBox(".");
561 gMC->SetClipBox("*", 0, 300, -300, 300, -300, 300);
563 gMC->Gdraw("alic", 40, 30, 0, 11, 10, .07, .07);
564 gMC->Gdhead(1111, "Inner Tracking System Version 1");
565 gMC->Gdman(17, 6, "MAN");
568 //_____________________________________________________________________________
569 void AliITSv1::StepManager()
572 // Called at every step in the ITS
577 TLorentzVector position, momentum;
578 TClonesArray &lhits = *fHits;
582 if(gMC->IsTrackInside()) vol[3] += 1;
583 if(gMC->IsTrackEntering()) vol[3] += 2;
584 if(gMC->IsTrackExiting()) vol[3] += 4;
585 if(gMC->IsTrackOut()) vol[3] += 8;
586 if(gMC->IsTrackDisappeared()) vol[3] += 16;
587 if(gMC->IsTrackStop()) vol[3] += 32;
588 if(gMC->IsTrackAlive()) vol[3] += 64;
590 // Fill hit structure.
591 if(gMC->TrackCharge() && gMC->Edep()) {
593 // Only entering charged tracks
594 if((id=gMC->CurrentVolID(copy))==fIdSens[0]) {
596 id=gMC->CurrentVolOffID(1,copy);
598 id=gMC->CurrentVolOffID(2,copy);
600 } else if(id==fIdSens[1]) {
602 id=gMC->CurrentVolOffID(1,copy);
604 id=gMC->CurrentVolOffID(2,copy);
606 } else if(id==fIdSens[2]) {
609 id=gMC->CurrentVolOffID(1,copy);
611 } else if(id==fIdSens[3]) {
614 id=gMC->CurrentVolOffID(1,copy);
616 } else if(id==fIdSens[4]) {
619 id=gMC->CurrentVolOffID(1,copy);
621 } else if(id==fIdSens[5]) {
624 id=gMC->CurrentVolOffID(1,copy);
627 gMC->TrackPosition(position);
628 gMC->TrackMomentum(momentum);
636 hits[7]=gMC->TrackTime();
637 new(lhits[fNhits++]) AliITShit(fIshunt,gAlice->CurrentTrack(),vol,hits);
641 //____________________________________________________________________________
642 void AliITSv1::Streamer(TBuffer &R__b)
644 // Stream an object of class AliITSv1.
646 if (R__b.IsReading()) {
647 Version_t R__v = R__b.ReadVersion(); if (R__v) { }
648 AliITS::Streamer(R__b);
649 // This information does not need to be read. It is "hard wired"
650 // into this class via its creators.
652 //R__b.ReadArray(fId1Name);
654 R__b.WriteVersion(AliITSv1::IsA());
655 AliITS::Streamer(R__b);
656 // This information does not need to be saved. It is "hard wired"
657 // into this class via its creators.
659 //R__b.WriteArray(fId1Name, __COUNTER__);