Open Access
Numéro |
EPJ Web Conf.
Volume 170, 2018
ANIMMA 2017 – Advancements in Nuclear Instrumentation Measurement Methods and their Applications
|
|
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Numéro d'article | 09001 | |
Nombre de pages | 6 | |
Section | Environmental and medical sciences | |
DOI | https://doi.org/10.1051/epjconf/201817009001 | |
Publié en ligne | 10 janvier 2018 |
- H. Paganetti, Proton Therapy Physics. CRC Press, 2011 [CrossRef] [Google Scholar]
- ICRP, The 2007 Recommendations of the International Commission on Radiological Protection. ICRP Publication 103. Ann. ICRP 37 (2-4), 2007. [Google Scholar]
- S. B. Jia, M. H. Hadizadeha, A. A. Mowlavib and M. E. Loushab, Evaluation of energy deposition and secondary particle production in proton therapy of brain using a slab head phantom. Reports of Practical Oncology & Radiotherapy Volume 19, Issue 6, November-December 2014, Pages 376–384 [Google Scholar]
- M. R. Islam, Y. Zheng, T. L. Collums, J. M. Monson, S. Ahmad and E. R. Benton, Measurement ans simulation of secondary neutrons from uniform scanning proton beams in proton therapy. Radiation Measurements 96 (2017) 8–18 [CrossRef] [Google Scholar]
- Z. Riazi, H. Afarideh and R. Sadighi-Bonabi, Influence of ridge filter material on the beam efficiency and secondary neutron production in a proton therapy system. Z. Med. Phys. 22 (2012) 231–240 [CrossRef] [PubMed] [Google Scholar]
- Z. Vykydala, M. Králíka, J. Šolca, J. Vilímovskýb and V. Vondráčekb, Angular distribution of neutron spectral fluence around phantom irradiated with high energy protons. Radiation Measurements, Volume 92, September 2016, Pages 1–7 [CrossRef] [Google Scholar]
- X. Yan, U. Titt, A. M. Koehler and W. D. Newhauser, Measurement of neutron dose equivalent to proton therapy patients outside of the proton radiation field. Nuclear Instruments and Methods in Physics Research A 476 (2002) 429–434 [CrossRef] [Google Scholar]
- Y. C. Lin, C. C. Lee, T. C. Chao and H. Y. Tsai, Ambient neutron dose equivalent during proton therapy using wobbling scanning system : Measurements and calculations. Radiation Physics and Chemistry (2017) [Google Scholar]
- S. Trinkl, V. Mares, F. S. Englbrecht, J. J. Wilkens, M. Wielunski, K. Parodi, W. Rühm and M. Hillbrand, Systematic Out-of-field Secondary Neutron Spectrometry and Dosimetry in Pencil Beam Scanning Proton therapy. Med. Phys. 44 (5), May 2017 [Google Scholar]
- M. R. Islam, T. L. Collums, Y. Zheng, J. Monson and E. R. Benton, Off-axis dose equivalent due to secondary neutrons from uniform scanning proton beams during proton radiotherapy. Phys. Med. Biol. 58 (2013) 8235–8251 [CrossRef] [PubMed] [Google Scholar]
- M. R. Islam, Off-axis Neutron Study from a Uniform Scanning Proton Beam Using Monte Carlo Code FLUKA. Master thesis, Oklahoma State University, 2013 [Google Scholar]
- H. Jiang, B. Wang, X. G. Xu, H. D. Suit and H. Paganetti, Simulation of organ-specific patient effective dose due to secondary neutrons in proton radiation treatment. Phys. Med. Biol. 50 (2005) 4337–4353 [CrossRef] [PubMed] [Google Scholar]
- J. Farah, F. Martinetti, R. Sayah, V. Lacoste, L. Donadille, F. Trompier, C. Nauraye, L. De Marzi, I. Vabre, S. Delacroix, Monte Carlo modeling of proton therapy installations: a global experimental method to validate secondary neutron dose calculations. Physics in Medicine and Biology, Volume 59, Number 11 (2014) 2747–2765 [CrossRef] [PubMed] [Google Scholar]
- S. M. Valle, G. Battistoni, V. Patera, D. Pinci, A. Sarti, A. Sciubba, E. Spiriti and M. Marafini, The MONDO Project: A secondary neutron tracker detector for particle therapy. Nuclear Instruments and Methods in Physics Research A (2016) [Google Scholar]
- M. Marafini, L. Gasparini, R. Mirabelli, D. Pinci, V. Patera, A. Sciubba, E. Spiriti, D. Stoppa, G. Traini and A. Sarti, MONDO: a neutron tracker for particle therapy secondary emission characterisation. Phys. Med. Biol. 62 (2017) 3299–3312 [CrossRef] [PubMed] [Google Scholar]
- T. J. Langford, E. J. Beise, H. Breuer, C. R. Heimbach, G. Ji and J. S. Nico, Development and characterization of a high sensitivity segmented Fast Neutron Spectrometer (FaNS-2). Journal of Instrumentation, Volume 11, January 2016 [Google Scholar]
- Nuclear Instruments and Methods in Physics Research A 506 (2003) 250–303. IEEE Transactions on Nuclear Science 53 No. 1 (2006) 270–278. Nuclear Instruments and Methods in Physics Research A 835 (2016) 186–225. [CrossRef] [Google Scholar]
- M. Kachel, D. Husson, S. Higueret, J. Taforeau and L. Lebreton, FastPixN, a new integrated pixel chip for a future fast version of the IRSN - Recoil Proton Telescope. Radiat Prot Dosimetry 214 Oct.; 161 (1-4):249–52. [Google Scholar]
- N. Arbor, S. Higueret, H. Elazhar, R. Combe, P. Meyer, N. Dehaynin, F. Taupin, D. Husson, Real-time detection of fast and thermal neutrons in radiotherapy with CMOS sensors. Phys Med Biol. 2017 Mar 7;62(5):1920–1934. [CrossRef] [PubMed] [Google Scholar]
- N. Soppera, M. Bossant, E. Dupont, JANIS 4: An Improved Version of the NEA Java-based Nuclear Data Information System. Nuclear Data Sheets, Volume 120, June 2014, Pages 294–296. [CrossRef] [Google Scholar]