Track detector development for neutron and mixed field dosimetry Michele Ferrarini Fondazione CNAO.

Slides:



Advertisements
Similar presentations
Short-range, high-LET recoil tracks in CR-39 plastic nuclear track detector E. R. Benton 1, C. E. Johnson 1, J. DeWitt 1, N. Yasuda 2, and E. V. Benton.
Advertisements

Stefan Roesler SC-RP/CERN on behalf of the CERN-SLAC RP Collaboration
Neutron detectors and spectrometers 1) Complicated reactions → strong dependency of efficiency on energy 2) Small efficiency → necessity of large volumes.
Ion Beam Analysis techniques:
TRACK FORMATION AND ENERGY OF ALPHA PARTICLE
A passive REM counter based on CR39 SSNTD coupled with a boron converter Agosteo, S. 1 Caresana, M. 1 Ferrarini. M 1 Silari.M 2 1)Politecnico di Milano,
Neutron background measurements at LNGS Gian Luca Raselli INFN - Pavia JRA1 meeting, Paris 14 Feb
Space radiation dosimetry and the fluorescent nuclear track detector Nakahiro Yasuda National Institute of Radiological Sciences.
Study of the fragmentation of Carbon ions for medical applications Protons (hadrons in general) especially suitable for deep-sited tumors (brain, neck.
Neutron background measurement at LNGS: present status Measurement carried out in collaboration between LNGS ILIAS-JRA1 and ICARUS groups.
Radiation Dosimetry Dose Calculations D, LET & H can frequently be obtained reliably by calculations: Alpha & low – Energy Beta Emitters Distributed in.
Cross section measurements for analysis of D and T in thicker films Liqun Shi Institute of Modern Physics, Fudan University, Shanghai, , People’s.
TRAINING COURSE ON RADIATION DOSIMETRY: Instrumentation 1 – Gas detectors / Part 1 Anthony WAKER, University of Ontario Instutute of Technology Wed. 21/11/2012,
Radiology is concerned with the application of radiation to the human body for diagnostically and therapeutically purposes. This requires an understanding.
Optical Fibre Dosimetry First Thoughts. Goal Target Measuring dose in a distributed way using optical fibres (“active”) Constraints: – Mixed-Radiation.
TRAINING COURSE ON RADIATION DOSIMETRY: Instrumentation 3 Passive detectors Part 1 Antonio PARRAVICINI, MI.AM Thu. 22/11/2012, 14:00 – 15:00 pm.
UNRESTRICTED / ILLIMITÉ Efficacy of Boron-Coated Straws for Replacing 3 He Neutron Detectors B. M. van der Ende, J. Atanackovic, G. Bentoumi, L. Li, B.
Photon and Energy Fluence
Design on Target and Moderator of X- band Compact Electron Linac Neutron Source for Short Pulsed Neutrons Kazuhiro Tagi.
Radiation therapy is based on the exposure of malign tumor cells to significant but well localized doses of radiation to destroy the tumor cells. The.
Radiation Detection and Measurement, JU, First Semester, (Saed Dababneh). 1 Spectrum if all energy is captured in detector. Allows identification.
SOI detector Geant4-based studies to characterise the tissue-equivalence of SOI and diamond microdosimeteric detectors, under development at CMRP S. Dowdell,
ELI-NP: the way ahead, March Anna Ferrari An overview of the shielding problems around high energy laser-accelerated beams Anna Ferrari Institute.
Milestones M5 and M6 Mid-Term Review, October 2013M. Silari – ARDENT overview1 M5: comparison of detector technologies (WP1) M6: choice of detector technology.
P. Scampoli - 24th ICNTS Bologna, September 4,
Monte Carlo Study to determine the Neutron Fluence spectrum for a water Phantom: Preliminary Results University of the Western Cape Energy Postgraduate.
Cosmic-Ray Induced Neutrons: Recent Results from the Atmospheric Ionizing Radiation Measurements Aboard an ER-2 Airplane P. Goldhagen 1, J.M. Clem 2, J.W.
Digital analysis of scintillator pulses generated by high-energy neutrons. Jan Novák, Mitja Majerle, Pavel Bém, Z. Matěj 1, František Cvachovec 2, 1 Faculty.
4th ANNUAL ARDENT WORKSHOP TRAINING COURSE Passive detectors Part 2 (Nuclear Track Detectors) Antonio PARRAVICINI, MI.AM Thu. 25/06/2015, 09:00.
ARDENT Advanced Radiation Dosimetry European Network Training initiative WP1: Gas Detectors S. Rollet.
Simulations on “Energy plus Transmutation” setup, 1.5 GeV Mitja Majerle
Radiation damage calculation in PHITS
Monte Carlo methods in ADS experiments Study for state exam 2008 Mitja Majerle “Phasotron” and “Energy Plus Transmutation” setups (schematic drawings)
Passive detectors (nuclear track detectors) – part 2: Applications for neutrons This research project has been supported by the Marie Curie Initial Training.
Effects of Surrounding Materials on Proton-Induced Energy Deposition in Large Silicon Diode Arrays Christina L. Howe 1, Robert A. Weller 1, Robert A. Reed.
Assessment of radiation shielding materials for protection of space crews using CR-39 plastic nuclear track detector J. M. DeWitt 1, E. R. Benton 1, Y.
Geant4 User Workshop, Catania, Italy, 15th October, 2009
The Use of Accelerator Beams for Calibration and Characterization of Solid State Nuclear Track Detectors Eric Benton Department of Physics Oklahoma State.
Accelerator Physics, JU, First Semester, (Saed Dababneh). 1 In the figure: Photoelectric suppressed. Single Compton (effect of crystal dimensions).
3/2003 Rev 1 II.3.8 – slide 1 of 34 IAEA Post Graduate Educational Course Radiation Protection and Safe Use of Radiation Sources Session II.3.8 Part IIQuantities.
CERF simulation Mitsu 14th Feb Simulation components Production Transportation Detector response
Neutron measurement with nuclear emulsion Mitsu KIMURA 27th Feb 2013.
Contribution of the GFR-UAB group to neutron dosimetry and spectrometry C. Domingo, K. Amgarou, T. Bouassoule, M.J. García-Fusté, E. Morales, J. Castelo.
Activities within the ARDENT- project: November 2012 – June 2013 Benedikt Bergmann Institute of Experimental and Applied Physics, Czech Technical University.
M.Moll, M.Silari, H.Vincke – 3.April Mixed field irradiation -- Who answered ?  In total 36 forms filled / 34 persons answered: 38% 62% CERN:
ASW August 12, 2008 Impact of amended 10CFR835 on neutron calculations and measurements at high energy electron accelerators A. Fassò SLAC, Radiation Protection.
FLUKA for accelerator radiation protection –Indian perspective Sunil C Accelerator Radiation Safety Section Radiation Safety Systems Division, Bhabha Atomic.
Grup de Física de les Radiacions 24 th International Conference on Nuclear Tracks in Solids CALIBRATION OF THE UAB PADC BASED NEUTRON DOSEMETER Measurements.
Design of novel GEM-based neutron spectrometer E. Aza 1,2* 1 CERN, 1211 Geneva, Switzerland, 2 AUTH, Department of Physics, Thessaloniki, Greece,
Neutron Dosimetry and Spectrometry in Complex Radiation Fields using CR-39 detectors This research project has been supported by the Marie Curie Initial.
24 th ICNTS Design and test of an albedo personal neutron dosemeter based on PADC detectors R. Bedogni a, A. Esposito a, G. Gualdrini b, R. Mishra c, S.
1 Activation by Medium Energy Beams V. Chetvertkova, E. Mustafin, I. Strasik (GSI, B eschleunigerphysik), L. Latysheva, N. Sobolevskiy (INR RAS), U. Ratzinger.
EVIDOS: Optimisation of Individual Monitoring in Mixed Neutron/Photon Fields at Workplaces of the Nuclear Fuel Cycle EVIDOS: Optimisation of Individual.
From Microdosimetry to Nanodosimetry
Christopher Cassell[1,2] (BSc, Hon) ESR 15
Solar gamma-ray and neutron registration capabilities of the GRIS instrument onboard the International Space Station Yu. A. Trofimov, Yu. D. Kotov, V.
Fast neutron flux measurement in CJPL
An-Najah National University New Campus, Nablus, Palestine
Do we need dosimetry? The Italian group is studying this problem.
Project Structure Advanced Neutron Spectrometer on the International Space Station (ANS-ISS) Mark Christl NASA/MSFC Oct 23, 2015 Honolulu, HI 1 1.
Measurements and FLUKA Simulations of Bismuth and Aluminum Activation at the CERN Shielding Benchmark Facility(CSBF) E. Iliopoulou, R. Froeschl, M. Brugger,
Gas Detectors for Neutron Dosimetry and Monitoring
Neutral Particles.
A. R. Garcia, E. Mendoza and D. Cano-Ott
Witold Matysiak (University of Florida Proton Therapy Institute)
Outside the nucleus, the beta decay {image} will not occur because the neutron and electron have more total mass than the proton. This process can occur.
1. Introduction Secondary Heavy charged particle (fragment) production
Fragmentation cross sections of Fe26+, Si14+ and C6+ ions of 0
Design of A New Wide-dynamic-range Neutron Spectrometer for BNCT with Liquid Moderator and Absorber S. Tamaki1, I. Murata1 1. Division of Electrical,
Presentation transcript:

Track detector development for neutron and mixed field dosimetry Michele Ferrarini Fondazione CNAO

Nuclear track detectors Sensitive to high LET radiation  heavy charged particles

The damaged material is removed with Vt, the bulk material with Vb 3

Etching: the few nm track is enlarged up to a few microns 4

The real shape of the etched track depends on a few parameters: V=Vt(LET)/Vb θ= incidence angle LET = LET(y) 5

CR39 – most used track detector 6

Many formulas are available to calculate V(LET Many formulas are available to calculate V(LET)

The track is read by a microscope. Its shape also depends on the etching procedure (etchant, etchant temperature, etching duration etc…) 8

9

It is possible to: Count the tracks Count the tracks Count the tracks by filtering the tracks with certain parameters (  reduce background) Count the tracks by filtering the tracks with certain parameters (  reduce background) Calculate for any track the LET (discriminate the particles) and the impinging angle Calculate for any track the LET (discriminate the particles) and the impinging angle

Neutron and mixed field dosimetry and spectrometry Use the track detector coupled to a boron converter, as thermal neutron detector (expoiting the n,α reaction on 10B). The neutron is detected by the 1.47 MeV α particle. The number of tracks is proportional to the thermal neuton fluence (inside Bonner spheres and Rem counters) Use the track detector coupled to a boron converter, as thermal neutron detector (expoiting the n,α reaction on 10B). The neutron is detected by the 1.47 MeV α particle. The number of tracks is proportional to the thermal neuton fluence (inside Bonner spheres and Rem counters)

Use the recoil protons (radiator-degrader technique). The number of tracks is proportional to the fast neutron fluence. The detection efficiency depends on the neutron energy. Use the recoil protons (radiator-degrader technique). The number of tracks is proportional to the fast neutron fluence. The detection efficiency depends on the neutron energy. Calculation of particle LET and impinging angle. Direct estimate of the equivalent dose by calculating, for any particle the dose and the quality factor Q(LET). Calculation of particle LET and impinging angle. Direct estimate of the equivalent dose by calculating, for any particle the dose and the quality factor Q(LET).

Use of CR39 as thermal neutron detector Passive REM counter

The number of tracks is proportional to the ambient dose equivalent

Passive REM counters: Independent from field time structure (e.g. pulsed fields) Independent from field time structure (e.g. pulsed fields) Low background (few tracks/cm2) independent from exposure time and high sensitivity (5 tracks/cm2 per microSievert) Low background (few tracks/cm2) independent from exposure time and high sensitivity (5 tracks/cm2 per microSievert) Low lower detection limit (2 μSv) Low lower detection limit (2 μSv) This is how the passive neutron dosimetry is done here! This is how the passive neutron dosimetry is done here!

Bonner spheres

Spectral response of various spheres

Neutron spectrum (LINAC)

Marco Caresana Radiator Degrader Neutron Spectrometer (RDNS) Radiator: high density (0.95 g·cm -3 ) polyethylene, Degrader: aluminum (purity 99.0%)

Marco Caresana Detector sensitivity (1) Recoil protons generated inside the radiator(external radiation component). (2) Recoil protons generated inside the detector(proton self radiator). (3) Carbon and oxygen recoil nuclei generated inside the detector (ion self radiator).

Marco Caresana Sensitivity experimental verification (xPEyAl), where x and y indicate the polyethylene (PE, mm) and the aluminum (Al, µm) thickness,respectively.

Marco Caresana Evaluation of the unfolding capability RDNS with 15 configurations was tested both with simulated and experimental irradiation with a neutron Pu-Be source

Marco Caresana Spectrometric capability Experimental data

Marco Caresana Conclusions Advantages Possibility to make simultaneous measurement in several configurations because the detectors can be placed side by side without an appreciable cross scattering; The presence of a small amount of moderating material which, produces negligible perturbation in the measured neutron field; The small dimension allows measurements also in very narrow sites where a moderator based spectrometer cannot be used. Disadvantages Insensitivity to the thermal neutrons, even if this fact can be bypassed by introducing a PADC detector coupled with a boron converter. This solution has not been characterized yet; The response functions are angular dependent. The RDNS was characterized for normal impinging neutrons only. The angular dependence has not been studied yet; Low sensitivity when compared with moderation based fast neutron detectors. This fact is intrinsic in detectors based on protons recoil detection

Neutron dosimetry based on LET spectrometry

It is possible to calculate V and θ from the track parameters. LET= LET (V)

From LET and θ it is possible to calculate the dose and the dose equivalent. If a 1 cm PMMA radiator is used, H is a good approximation of H*(10). This is almost independent from the impinging particle.

Any energy, but not any LET or any impinging angle. These contributions are lost: low LET particles (electrons, but also protons with E>10 MeV) low energy particles (e.g. protons below 0.5 MeV) particles impinging below the critical angle - the critical angle is a function of LET.

High energy quasi monoenergetic beams tested Uppsala, SE (21, 46.5, 96, 175 MeV) Ithemba labs, ZA, 100 and 200 MeV (results on their way)

Quasi monoenergetic fields LNL 2.0 MeV 3.3 MeV PTB 19.0 MeV 14.8 MeV MeV

2 MeV neutrons Signal only due to protons 3.3 MeV neutrons

For any energy between 2.0 and 175 MeV neutrons the ratio between the measured dose and the reference value ranges between 0.6 and 0.9. The efficiency for MeV neutrons drops to less than 0.4

At 3.3 MeV all the dose is due to protons At 175 MeV more than 60% of the dose is due to recoils heavier than protons. The technique may also be used to measure charged fragments, ions, etc…

The majority of the dose in accelerator environment is due to neutrons from 1 to a few hunderd MeV

What is left to do? 1) Some work about the quality of measurements is still necessary for the first two applications, that are at a much more advanced stage. 1) Some work about the quality of measurements is still necessary for the first two applications, that are at a much more advanced stage. Metrological characterization Metrological characterization

2) Much is left to do for the LET spectrometry technique. A full Monte Carlo characterization of the dosemeters is still in progress (MCNPX? FLUKA?) - Angular response still to be understood - Metrological characterization for personal and environmental dosimetry - Medical physics application (?) : secondary dose evaluation due to fragments, with LET spectrometry 2) Much is left to do for the LET spectrometry technique. A full Monte Carlo characterization of the dosemeters is still in progress (MCNPX? FLUKA?) - Angular response still to be understood - Metrological characterization for personal and environmental dosimetry - Medical physics application (?) : secondary dose evaluation due to fragments, with LET spectrometry

S. Agosteo, F. Campi, M. Caresana, M. Ferrarini, A.Porta M.Silari, (2007), Sensitivity study of CR39 track detector in a system of extended range Bonner spheres, Radiat. Prot. Dosimetry vol.126, No. 1-4 pp S. Agosteo, F. Campi, M. Caresana, M. Ferrarini, A.Porta M.Silari, (2007), Sensitivity study of CR39 track detector in a system of extended range Bonner spheres, Radiat. Prot. Dosimetry vol.126, No. 1-4 pp M. Silari, et al. (M.Ferrarini), Intercomparison of radiation protection devices in a high-energy stray neutron field. Part III: Instrument response Radiation Measurements 44 (2009) 673–691 M. Silari, et al. (M.Ferrarini), Intercomparison of radiation protection devices in a high-energy stray neutron field. Part III: Instrument response Radiation Measurements 44 (2009) 673–691 B. Wiegel, et al (M.Ferrarini), Intercomparison of radiation protection devices in a high-energy stray neutron field, Part II: Bonner sphere spectrometry Radiation Measurements 44 (2009) 660–672 B. Wiegel, et al (M.Ferrarini), Intercomparison of radiation protection devices in a high-energy stray neutron field, Part II: Bonner sphere spectrometry Radiation Measurements 44 (2009) 660–672 S.Agosteo, M.Caresana, M.Ferrarini, M.Silari A passive rem counter based on CR39 SSNTD coupled with a boron converter (2008) ICNTS 24, Bologna, Radiation Measurements 44 (2009) 985–987 doi: /j.radmeas : S.Agosteo, M.Caresana, M.Ferrarini, M.Silari A passive rem counter based on CR39 SSNTD coupled with a boron converter (2008) ICNTS 24, Bologna, Radiation Measurements 44 (2009) 985–987 doi: /j.radmeas : M. Caresana, M. Ferrarini, L.Garlati, A.Parravicini, About ageing and fading of CR39 PADC track detectors used as air Radon concentration measurements devices, Radiation Measurements, (20120) DOI: /j.radmeas M. Caresana, M. Ferrarini, L.Garlati, A.Parravicini, About ageing and fading of CR39 PADC track detectors used as air Radon concentration measurements devices, Radiation Measurements, (20120) DOI: /j.radmeas S. Agosteo, M. Caresana, M. Ferrarini, M. Silari, A dual-detector extended range rem-counter, Radiation Measurements (2010), doi: /j.radmeas S. Agosteo, M. Caresana, M. Ferrarini, M. Silari, A dual-detector extended range rem-counter, Radiation Measurements (2010), doi: /j.radmeas M. Caresana, M. Ferrarini, A. Pola, S. Agosteo, F. Campi, A. Porta, Study of a radiator degrader CR39 based neutron spectrometer Nucl. Instr. and Meth. A (2010), doi: /j.nima M. Caresana, M. Ferrarini, A. Pola, S. Agosteo, F. Campi, A. Porta, Study of a radiator degrader CR39 based neutron spectrometer Nucl. Instr. and Meth. A (2010), doi: /j.nima M. Caresana, M. Ferrarini, L. Garlati, A. Parravicini, Further studies on ageing and fading of CR39 PADC track detectors used as air radon concentration measurement devices, Radiation Measurements volume 46, issue 10, year 2011, pp – 1167 M. Caresana, M. Ferrarini, L. Garlati, A. Parravicini, Further studies on ageing and fading of CR39 PADC track detectors used as air radon concentration measurement devices, Radiation Measurements volume 46, issue 10, year 2011, pp – 1167 M. Caresana, M. Ferrarini, A. Porta, F. Campi, Performance evaluation of a radiator degrader CR39 based neutron spectrometer, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, Volume 680, 11 July 2012, Pages M. Caresana, M. Ferrarini, A. Porta, F. Campi, Performance evaluation of a radiator degrader CR39 based neutron spectrometer, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, Volume 680, 11 July 2012, Pages M. Caresana, M. Ferrarini, M. Fuerstner, S. Mayer, Determination of LET in PADC detectors through the measurement of track parameters, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, Volume 683, 11 August 2012, Pages 8-15 M. Caresana, M. Ferrarini, M. Fuerstner, S. Mayer, Determination of LET in PADC detectors through the measurement of track parameters, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, Volume 683, 11 August 2012, Pages 8-15 S. Agosteo, R.Bedogni, M.Caresana, N.Charitonidis, M.Chiti, A.Esposito, M.Ferrarini, C. Severino, M.Silari, Characterization of extended range Bonner Sphere Spectrometers in the CERF high-energy broad neutron field at CERN, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, (2012) 55–68 S. Agosteo, R.Bedogni, M.Caresana, N.Charitonidis, M.Chiti, A.Esposito, M.Ferrarini, C. Severino, M.Silari, Characterization of extended range Bonner Sphere Spectrometers in the CERF high-energy broad neutron field at CERN, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, (2012) 55–68