Monte Carlo modeling of proton therapy installations: a global experimental method to validate secondary neutron dose calculations
Creators
- 1. Institut de Radioprotection et de Sûreté Nucléaire - IRSN/PRP-HOM/SDE/LDRI, BP-17 F-92262 Fontenay-aux-Roses (France)
- 2. Institut de Radioprotection et de Sûreté Nucléaire - IRSN/PRP-HOM/SDE/LMDN, BP3 F-13115 Saint-Paul-lez-Durance, Cedex (France)
- 3. Institut Curie – Centre de Protonthérapie d'Orsay (ICPO) - Campus universitaire bâtiment 101, F-91898 Orsay (France)
- 4. Institut de Physique Nucléaire (IPN), Université Paris-Sud 11, F-91406 Orsay Cedex (France)
- 5. Centre Antoine Lacassagne (CAL) - Cyclotron biomédical, 227 avenue de la Lanterne, F-06200 Nice (France)
Description
Monte Carlo calculations are increasingly used to assess stray radiation dose to healthy organs of proton therapy patients and estimate the risk of secondary cancer. Among the secondary particles, neutrons are of primary concern due to their high relative biological effectiveness. The validation of Monte Carlo simulations for out-of-field neutron doses remains however a major challenge to the community. Therefore this work focused on developing a global experimental approach to test the reliability of the MCNPX models of two proton therapy installations operating at 75 and 178 MeV for ocular and intracranial tumor treatments, respectively. The method consists of comparing Monte Carlo calculations against experimental measurements of: (a) neutron spectrometry inside the treatment room, (b) neutron ambient dose equivalent at several points within the treatment room, (c) secondary organ-specific neutron doses inside the Rando–Alderson anthropomorphic phantom. Results have proven that Monte Carlo models correctly reproduce secondary neutrons within the two proton therapy treatment rooms. Sensitive differences between experimental measurements and simulations were nonetheless observed especially with the highest beam energy. The study demonstrated the need for improved measurement tools, especially at the high neutron energy range, and more accurate physical models and cross sections within the Monte Carlo code to correctly assess secondary neutron doses in proton therapy applications. (paper)
Availability note (English)
Available from http://dx.doi.org/10.1088/0031-9155/59/11/2747Additional details
Identifiers
Publishing Information
- Journal Title
- Physics in Medicine and Biology
- Journal Volume
- 59
- Journal Issue
- 11
- Journal Page Range
- p. 2747-2765
- ISSN
- 0031-9155
- CODEN
- PHMBA7
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 47007443
- Subject category
- S62: RADIOLOGY AND NUCLEAR MEDICINE;
- Descriptors DEI
- COMPARATIVE EVALUATIONS; COMPUTERIZED SIMULATION; CROSS SECTIONS; DOSE EQUIVALENTS; MEV RANGE 100-1000; MEV RANGE 10-100; MONTE CARLO METHOD; NEOPLASMS; NEUTRON SPECTROSCOPY; NEUTRONS; ORGANS; PARTICLES; PATIENTS; PHANTOMS; PROTON BEAMS; RADIATION DOSES; RADIOTHERAPY; RBE; STRAY RADIATION
- Descriptors DEC
- BARYONS; BEAMS; BODY; CALCULATION METHODS; DISEASES; DOSES; ELEMENTARY PARTICLES; ENERGY RANGE; EVALUATION; FERMIONS; HADRONS; MEDICINE; MEV RANGE; MOCKUP; NUCLEAR MEDICINE; NUCLEON BEAMS; NUCLEONS; PARTICLE BEAMS; RADIATIONS; RADIOLOGY; SIMULATION; SPECTROSCOPY; STRUCTURAL MODELS; THERAPY