232 lines
9.1 KiB
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232 lines
9.1 KiB
Plaintext
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$Id: README,v 1.10 2007/02/27 12:02:09 sincerti Exp $
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=========================================================
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Geant4 - Microbeam example
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=========================================================
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README file
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----------------------
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CORRESPONDING AUTHOR
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S. Incerti (a, *) et al.
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a. Centre d'Etudes Nucleaires de Bordeaux-Gradignan
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(CENBG), IN2P3 / CNRS / Bordeaux 1 University, 33175 Gradignan, France
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* e-mail:incerti@cenbg.in2p3.fr
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Last modified by S. Incerti, 27/02/2007
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---->0. INTRODUCTION.
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The microbeam example simulates the cellular irradiation beam line
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installed on the AIFIRA electrostatic accelerator facility located at
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CENBG, Bordeaux-Gradignan, France. For more information on this facility,
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please visit :
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http://www.cenbg.in2p3.fr/
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An overall description of this example is also available in this directory:
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to access it, simply open the microbeam.htm file with your internet browser.
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---->1. GEOMETRY SET-UP.
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The elements simulated are:
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1. A switching dipole magnet with fringing field, to deflect the 3 MeV alpha
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beam generated by the electrostatic accelerator into the microbeam line,
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oriented at 10 degrees from the main beam direction;
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2. A circular collimator object, defining the incident beam size at the
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microbeam line entrance;
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3. A quadrupole based magnetic symmetric focusing system allowing equal
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transverse demagnifications of 10. Fringe fields are calculated from Enge's
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model.
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4. A dedicated cellular irradiation chamber setup;
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5. A set of horizontal and vertical electrostatic deflecting plates which can
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be turned on or off to deflect the beam on target;
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6. A realistic human keratinocyte voxellized cell observed from confocal
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microscopy and taking into account realistic nucleus and cytoplasm chemical
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compositions
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---->2. EXPERIMENTAL SET-UP.
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The beam is defined at the microbeam line entrance through a collimator
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5 micrometer in diameter. The beam is then focused onto target using a
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quadruplet of quadrupoles in the so-called Dymnikov magnetic configuration.
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The beam is sent to the irradiation chamber where it travels through a
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isobutane gas detector for counting purpose before reaching the polypropylene
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culture foil of the target cell which is immersed in the growing medium and
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enclosed within a dish.
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A cell is placed on the polypropylene foil and is irradiated using the
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microbeam. The cell is represented through a 3D phantom (G4PVParameterization)
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obtained from confocal microscopy. In the provided example, the voxels sizes
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are : 359 nm (X) x 359 nm (Y) x 163 nm (Z)
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The primary particle beam parameters are generated from experimental
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measurements performed on the AIFIRA facility. Incident particle used for
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cellular irradiation are 3 MeV alpha particles.
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More details on the experimental setup and its simulation with Geant4 can
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be found in the following papers, which may be found on the SLAC-SPIRES
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online database (http://www.slac.stanford.edu/spires/) :
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- MONTE CARLO MICRODOSIMETRY FOR TARGETED IRRADIATION OF INDIVIDUAL CELLS USING
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A MICROBEAM FACILITY
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By S. Incerti, T. Pouthier, H. Seznec, Ph. Moretto, O. Boissonnade,
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T. M. H. Ha, F. Andersson, Ph. Barberet, C. Habchi and D. T. Nguyen
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In preparation (2007)
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- MONTE CARLO SIMULATION OF THE CENBG MICROBEAM AND NANOBEAM LINES WITH THE
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GEANT4 TOOLKIT
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By S. Incerti, Q. Zhang, F. Andersson, Ph. Moretto, G.W. Grime,
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M.J. Merchant, D.T. Nguyen, C. Habchi, T. Pouthier and H. Seznec
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In press in Nucl.Instrum.Meth.B, 2007
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- A COMPARISON OF CELLULAR IRRADIATION TECHNIQUES WITH ALPHA PARTICLES USING
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THE GEANT4 MONTE CARLO SIMULATION TOOLKIT
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By S. Incerti, N. Gault, C. Habchi, J.L.. Lefaix, Ph. Moretto, J.L.. Poncy,
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T. Pouthier, H. Seznec. Dec 2006. 3pp.
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Published in Rad.Prot.Dos.,1-3,2006 (Micros 2005 special issue).
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- GEANT4 SIMULATION OF THE NEW CENBG MICRO AND NANO PROBES FACILITY
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By S. Incerti, C. Habchi, Ph. Moretto, J. Olivier and H. Seznec. May 2006. 5pp.
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Published in Nucl.Instrum.Meth.B249:738-742, 2006
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- A COMPARISON OF RAY-TRACING SOFTWARE FOR THE DESIGN OF QUADRUPOLE MICROBEAM
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SYSTEMS
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By S. Incerti et al.,
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Published in Nucl.Instrum.Meth.B231:76-85, 2005
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- DEVELOPMENT OF A FOCUSED CHARGED PARTICLE MICROBEAM FOR THE IRRADIATION OF
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INDIVIDUAL CELLS.
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By Ph. Barberet, A. Balana, S. Incerti, C. Michelet-Habchi, Ph. Moretto,
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Th. Pouthier. Dec 2004. 6pp.
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Published in Rev.Sci.Instrum.76:015101, 2005
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- SIMULATION OF CELLULAR IRRADIATION WITH THE CENBG MICROBEAM LINE USING
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GEANT4.
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By S. Incerti, Ph. Barberet, R. Villeneuve, P. Aguer, E. Gontier,
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C. Michelet-Habchi, Ph. Moretto, D.T. Nguyen, T. Pouthier, R.W. Smith. Oct 2003. 6pp.
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Published in IEEE Trans.Nucl.Sci.51:1395-1401, 2004
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- SIMULATION OF ION PROPAGATION IN THE MICROBEAM LINE OF CENBG USING
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GEANT4.
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By S. Incerti, Ph. Barberet, B. Courtois, C. Michelet-Habchi,
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Ph. Moretto. Sep 2003.
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Published in Nucl.Instrum.Meth.B210:92-97, 2003
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---->3. SET-UP
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- a standard Geant4 example GNUmakefile is provided
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setup with:
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compiler = gcc-3.2.3
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G4SYSTEM = linux-g++
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The following section gives the necessary environment variables.
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------->>3.1 ENVIRONMENT VARIABLES
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All variables are defined with their default value.
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- G4SYSTEM = Linux-g++
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- G4INSTALL points to the installation directory of GEANT4;
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- G4LIB point to the compiled libraries of GEANT4;
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- G4WORKDIR points to the work directory;
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- CLHEP_BASE_DIR points to the installation directory of CHLEP;
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- G4LEDATA points to the low energy electromagnetic libraries;
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- LD_LIBRARY_PATH = $CLHEP_BASE_DIR/lib
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- G4LEVELGAMMADATA points to the photoevaporation library;
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- NeutronHPCrossSections points to the neutron data files;
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- G4RADIOACTIVEDATA points to the libraries for radio-active decay
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hadronic processes;
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However, the $G4LEVELGAMMADATA, $NeutronHPCrossSections and $G4RADIOACTIVEDATA
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variables do not need to be defined for this example.
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Once these variables have been set, simply type gmake to compile the Microbeam
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example.
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------->>3.2 VISUALIZATION
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The user can visualize the targeted cell with OpenGL, DAWN and vrml,
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as chosen in the microbeam.mac file. OpenGL is the default viewer. The
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cytoplasm in shown in red and the nucleus in green.
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---->4. HOW TO RUN THE EXAMPLE
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In interactive mode, run:
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> $G4WORDIR/bin/Linux-g++/Microbeam
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The macro microbeam.mac is executed by default. To get vizualisation, make
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sure to uncomment the /vis/... lines in the microbeam.mac macro.
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The Microbeam code reads the phantom.dat file containing all the necessary
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information describing the cell phantom. 10 alphas particles are generated.
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---->5. PHYSICS
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Low energy electromagnetic processes (for alphas, electrons, photons) and
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hadronic elastic and inelastic scattering for alphas are activated by default.
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Low energy electromagnetic electronic and nuclear stopping power are computed
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from ICRU tables.
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---->6. SIMULATION OUTPUT AND RESULT ANALYZIS
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This example does not need any external analysis package.
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The output results consists in several .txt files:
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* dose.txt : gives the total deposited dose in the cell nucleus and in the cell
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cytoplasm by each incident alpha particle;
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* 3DDose.txt : gives the average on the whole run of the dose deposited per
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Voxel per incident alpha particle;
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* range.txt : indicates the final stopping (x,y,z) position of the incident
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alpha particle within the irradiated medium (cell or culture medium)
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* stoppingPower.txt : gives the actual stopping power dE/dx of the incident
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alpha particle just before penetrating into the targeted cell;
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* beamPosition.txt : gives the beam transverse position distribution(X and Y)
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just before penetrating into the targeted cell;
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These files can be easily analyzed using for example the provided ROOT macro
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file plot.C; to do so :
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* be sure to have ROOT installed on your machine
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* be sure to be in the microbeam directory
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* launch ROOT by typing root
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* under your ROOT session, type in : .X plot.C to execute the macro file
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A graphical output obtained with this macro for 40000 incident alpha particles
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is shown in the file microbeam.gif
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The simulation predicts that 95% of the incident alpha particles detected by the
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gas detector are located within a circle of 10 um in diameter on the target, in
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nice agreement with experimental measurements performed on the CENBG setup.
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---------------------------------------------------------------------------
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Should you have any enquiry, please do not hesitate to contact:
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incerti@cenbg.in2p3.fr
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