Comparison of response of passive dosimetry systems in scanning proton radiotherapy-a study using paediatric anthropomorphic phantoms
Creators
- 1. Ruder Boskovic Institute, Bijenicka cesta 54, 10000 Zagreb (Croatia)
- 2. Nuclear Physics Institute of the CAS, Department of Radiation Dosimetry, Na Truhlarce 39/64, 18000 Praha (Czech Republic)
- 3. Departament de Fisica, Universitat Autonoma de Barcelona, E-08193 Bellaterra (Spain)
- 4. Belgium Nuclear Research Center -SCK-CEN-, Boeretang 200, BE-2400 Mol (Belgium)
- 5. Cyclotron Centre Bronowice, Institute of Nuclear Physics, PAN -IFJPAN-, Radzikowskiego 152, 31-342 Krakow (Poland)
- 6. Radiology therapeutic Center Poland SP. Z O.O., Centrum Radioterapii Amethyst w Krakowie, Zlotej Jesieni 1, 31-826 Krakow (Poland)
- 7. Technische Universitaet Muenchen, Physik-Department, James-Franck-Str. 1, 85748 Garching bei Muenchen (Germany)
- 8. Helmholtz Zentrum Muenchen, Institute of Radiation Protection, Ingolstaedter Landstrasse 1, 85764 Neuherberg (Germany)
- 9. University of Newcastle upon Tyne, Tyne and Wear NE1 7RU, Newcastle upon Tyne (United Kingdom)
- 10. Cyclotron Centre Bronowice, Institute of Nuclear Physics, PAN (IFJPAN), Radzikowskiego 152, 31-342 Krakow (Poland)
Description
Proton beam therapy has advantages in comparison to conventional photon radiotherapy due to the physical properties of proton beams (e.g. sharp distal fall off, adjustable range and modulation). In proton therapy, there is the possibility of sparing healthy tissue close to the target volume. This is especially important when tumours are located next to critical organs and while treating cancer in paediatric patients. On the other hand, the interactions of protons with matter result in the production of secondary radiation, mostly neutrons and gamma radiation, which deposit their energy at a distance from the target. The aim of this study was to compare the response of different passive dosimetry systems in mixed radiation field induced by proton pencil beam inside anthropomorphic phantoms representing 5 and 10 years old children. Doses were measured in different organs with thermoluminescent (MTS-7, MTS-6 and MCP-N), radiophotoluminescent (GD-352 M and GD-302M), bubble and poly-allyl-diglycol carbonate (PADC) track detectors. Results show that RPL detectors are the less sensitive for neutrons than LiF TLDs and can be applied for in-phantom dosimetry of gamma component. Neutron doses determined using track detectors, bubble detectors and pairs of MTS-7/MTS-6 are consistent within the uncertainty range. This is the first study dealing with measurements on child anthropomorphic phantoms irradiated by a pencil scanning beam technique. (authors)
Availability note (English)
Available from doi: http://dx.doi.org/10.1093/rpd/ncx254Additional details
Identifiers
- DOI
- 10.1093/rpd/ncx254;
Publishing Information
- Journal Title
- Radiation Protection Dosimetry
- Journal Volume
- 180
- Journal Issue
- 1-4
- Journal Page Range
- p. 256-260
- ISSN
- 0144-8420
Conference
- Title
- 13. Symposium on Neutron and Ion Dosimetry
- Acronym
- NEUDOS-13
- Dates
- 13-19 May 2017
- Place
- Krakow (Poland)
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- France
- INIS RN
- 49102605
- Subject category
- S61: RADIATION PROTECTION AND DOSIMETRY; S62: RADIOLOGY AND NUCLEAR MEDICINE;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- ANIMAL TISSUES; CHILDREN; CRITICAL ORGANS; GAMMA RADIATION; IRRADIATION; MODULATION; NEOPLASMS; PARTICLE TRACKS; PATIENTS; PHANTOMS; PHYSICAL PROPERTIES; PROTON BEAMS; RADIOTHERAPY; THERMOLUMINESCENT DOSEMETERS; THERMOLUMINESCENT DOSIMETRY
- Descriptors DEC
- AGE GROUPS; ANIMALS; BEAMS; BODY; DISEASES; DOSEMETERS; DOSIMETRY; ELECTROMAGNETIC RADIATION; IONIZING RADIATIONS; LUMINESCENT DOSEMETERS; MAMMALS; MAN; MEASURING INSTRUMENTS; MEDICINE; MOCKUP; NUCLEAR MEDICINE; NUCLEON BEAMS; ORGANS; PARTICLE BEAMS; PRIMATES; RADIATIONS; RADIOLOGY; STRUCTURAL MODELS; THERAPY; VERTEBRATES
Optional Information
- Notes
- 14 refs.