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Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields

PURPOSE: To design and commission a water phantom suitable for constrained environments and magnetic fields for magnetic resonance (MR)‐guided proton therapy. METHODS: A phantom was designed, to enable precise, remote controlled detector positioning in water within the constrained environment of a m...

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Autores principales: Fuchs, Hermann, Padilla‐Cabal, Fatima, Hummel, Andreas, Georg, Dietmar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7898880/
https://www.ncbi.nlm.nih.gov/pubmed/33222211
http://dx.doi.org/10.1002/mp.14605
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author Fuchs, Hermann
Padilla‐Cabal, Fatima
Hummel, Andreas
Georg, Dietmar
author_facet Fuchs, Hermann
Padilla‐Cabal, Fatima
Hummel, Andreas
Georg, Dietmar
author_sort Fuchs, Hermann
collection PubMed
description PURPOSE: To design and commission a water phantom suitable for constrained environments and magnetic fields for magnetic resonance (MR)‐guided proton therapy. METHODS: A phantom was designed, to enable precise, remote controlled detector positioning in water within the constrained environment of a magnet for MR‐guided proton therapy. The phantom consists of a PMMA enclosure whose outer dimensions of [Formula: see text] were chosen to optimize space usage inside the 13.5‐cm bore gap of the magnet. The moving mechanism is based on a low‐height H‐shaped non‐ferromagnetic belt drive, driven by stepper motors located outside of the magnetic field. The control system and the associated electronics were designed in house, with similar features as available in commercial water phantoms. Reproducibility as well as accuracy of the phantom positioning were tested using a high‐precision Leica AT 402 laser tracker. Laterally integrated depth dose curves and lateral beam profiles at three depths were acquired repeatedly for a 148.2 MeV proton beam in water. RESULTS: The phantom was successfully operated with and without applied magnetic fields. For complex movements, a positioning uncertainty within 0.16 mm was found with an absolute accuracy typically below 0.3 mm. Laterally integrated depth dose curves agreed within 0.1 mm with data taken using a commercial water phantom. The lateral beam offset determined from beam profile measurements agreed well with data from Monte Carlo simulations. CONCLUSION: The phantom is optimally suited for detector positioning and dosimetric experiments within constrained environments in high magnetic fields.
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spelling pubmed-78988802021-03-03 Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields Fuchs, Hermann Padilla‐Cabal, Fatima Hummel, Andreas Georg, Dietmar Med Phys COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY PURPOSE: To design and commission a water phantom suitable for constrained environments and magnetic fields for magnetic resonance (MR)‐guided proton therapy. METHODS: A phantom was designed, to enable precise, remote controlled detector positioning in water within the constrained environment of a magnet for MR‐guided proton therapy. The phantom consists of a PMMA enclosure whose outer dimensions of [Formula: see text] were chosen to optimize space usage inside the 13.5‐cm bore gap of the magnet. The moving mechanism is based on a low‐height H‐shaped non‐ferromagnetic belt drive, driven by stepper motors located outside of the magnetic field. The control system and the associated electronics were designed in house, with similar features as available in commercial water phantoms. Reproducibility as well as accuracy of the phantom positioning were tested using a high‐precision Leica AT 402 laser tracker. Laterally integrated depth dose curves and lateral beam profiles at three depths were acquired repeatedly for a 148.2 MeV proton beam in water. RESULTS: The phantom was successfully operated with and without applied magnetic fields. For complex movements, a positioning uncertainty within 0.16 mm was found with an absolute accuracy typically below 0.3 mm. Laterally integrated depth dose curves agreed within 0.1 mm with data taken using a commercial water phantom. The lateral beam offset determined from beam profile measurements agreed well with data from Monte Carlo simulations. CONCLUSION: The phantom is optimally suited for detector positioning and dosimetric experiments within constrained environments in high magnetic fields. John Wiley and Sons Inc. 2020-12-08 2021-01 /pmc/articles/PMC7898880/ /pubmed/33222211 http://dx.doi.org/10.1002/mp.14605 Text en © 2020 The Authors. Medical Physics published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY
Fuchs, Hermann
Padilla‐Cabal, Fatima
Hummel, Andreas
Georg, Dietmar
Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields
title Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields
title_full Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields
title_fullStr Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields
title_full_unstemmed Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields
title_short Technical Note: Design and commissioning of a water phantom for proton dosimetry in magnetic fields
title_sort technical note: design and commissioning of a water phantom for proton dosimetry in magnetic fields
topic COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7898880/
https://www.ncbi.nlm.nih.gov/pubmed/33222211
http://dx.doi.org/10.1002/mp.14605
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