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Real‐time simulator for designing electron dual scattering foil systems

The purpose of this work was to develop a user friendly, accurate, real‐time computer simulator to facilitate the design of dual foil scattering systems for electron beams on radiotherapy accelerators. The simulator allows for a relatively quick, initial design that can be refined and verified with...

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Autores principales: Carver, Robert L., Hogstrom, Kenneth R., Price, Michael J., LeBlanc, Justin D., Pitcher, Garret M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5711107/
https://www.ncbi.nlm.nih.gov/pubmed/25493509
http://dx.doi.org/10.1120/jacmp.v15i6.4849
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author Carver, Robert L.
Hogstrom, Kenneth R.
Price, Michael J.
LeBlanc, Justin D.
Pitcher, Garret M.
author_facet Carver, Robert L.
Hogstrom, Kenneth R.
Price, Michael J.
LeBlanc, Justin D.
Pitcher, Garret M.
author_sort Carver, Robert L.
collection PubMed
description The purpose of this work was to develop a user friendly, accurate, real‐time computer simulator to facilitate the design of dual foil scattering systems for electron beams on radiotherapy accelerators. The simulator allows for a relatively quick, initial design that can be refined and verified with subsequent Monte Carlo (MC) calculations and measurements. The simulator also is a powerful educational tool. The simulator consists of an analytical algorithm for calculating electron fluence and X‐ray dose and a graphical user interface (GUI) C++ program. The algorithm predicts electron fluence using Fermi‐Eyges multiple Coulomb scattering theory with the reduced Gaussian formalism for scattering powers. The simulator also estimates central‐axis and off‐axis X‐ray dose arising from the dual foil system. Once the geometry of the accelerator is specified, the simulator allows the user to continuously vary primary scattering foil material and thickness, secondary scattering foil material and Gaussian shape (thickness and sigma), and beam energy. The off‐axis electron relative fluence or total dose profile and central‐axis X‐ray dose contamination are computed and displayed in real time. The simulator was validated by comparison of off‐axis electron relative fluence and X‐ray percent dose profiles with those calculated using EGSnrc MC. Over the energy range 7–20 MeV, using present foils on an Elekta radiotherapy accelerator, the simulator was able to reproduce MC profiles to within 2% out to 20 cm from the central axis. The central‐axis X‐ray percent dose predictions matched measured data to within 0.5%. The calculation time was approximately 100 ms using a single Intel 2.93 GHz processor, which allows for real‐time variation of foil geometrical parameters using slider bars. This work demonstrates how the user‐friendly GUI and real‐time nature of the simulator make it an effective educational tool for gaining a better understanding of the effects that various system parameters have on a relative dose profile. This work also demonstrates a method for using the simulator as a design tool for creating custom dual scattering foil systems in the clinical range of beam energies (6–20 MeV). PACS number: 87.10.Ca
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spelling pubmed-57111072018-04-02 Real‐time simulator for designing electron dual scattering foil systems Carver, Robert L. Hogstrom, Kenneth R. Price, Michael J. LeBlanc, Justin D. Pitcher, Garret M. J Appl Clin Med Phys Education The purpose of this work was to develop a user friendly, accurate, real‐time computer simulator to facilitate the design of dual foil scattering systems for electron beams on radiotherapy accelerators. The simulator allows for a relatively quick, initial design that can be refined and verified with subsequent Monte Carlo (MC) calculations and measurements. The simulator also is a powerful educational tool. The simulator consists of an analytical algorithm for calculating electron fluence and X‐ray dose and a graphical user interface (GUI) C++ program. The algorithm predicts electron fluence using Fermi‐Eyges multiple Coulomb scattering theory with the reduced Gaussian formalism for scattering powers. The simulator also estimates central‐axis and off‐axis X‐ray dose arising from the dual foil system. Once the geometry of the accelerator is specified, the simulator allows the user to continuously vary primary scattering foil material and thickness, secondary scattering foil material and Gaussian shape (thickness and sigma), and beam energy. The off‐axis electron relative fluence or total dose profile and central‐axis X‐ray dose contamination are computed and displayed in real time. The simulator was validated by comparison of off‐axis electron relative fluence and X‐ray percent dose profiles with those calculated using EGSnrc MC. Over the energy range 7–20 MeV, using present foils on an Elekta radiotherapy accelerator, the simulator was able to reproduce MC profiles to within 2% out to 20 cm from the central axis. The central‐axis X‐ray percent dose predictions matched measured data to within 0.5%. The calculation time was approximately 100 ms using a single Intel 2.93 GHz processor, which allows for real‐time variation of foil geometrical parameters using slider bars. This work demonstrates how the user‐friendly GUI and real‐time nature of the simulator make it an effective educational tool for gaining a better understanding of the effects that various system parameters have on a relative dose profile. This work also demonstrates a method for using the simulator as a design tool for creating custom dual scattering foil systems in the clinical range of beam energies (6–20 MeV). PACS number: 87.10.Ca John Wiley and Sons Inc. 2014-11-08 /pmc/articles/PMC5711107/ /pubmed/25493509 http://dx.doi.org/10.1120/jacmp.v15i6.4849 Text en © 2014 The Authors. This is an open access article under the terms of the http://creativecommons.org/licenses/by/3.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Education
Carver, Robert L.
Hogstrom, Kenneth R.
Price, Michael J.
LeBlanc, Justin D.
Pitcher, Garret M.
Real‐time simulator for designing electron dual scattering foil systems
title Real‐time simulator for designing electron dual scattering foil systems
title_full Real‐time simulator for designing electron dual scattering foil systems
title_fullStr Real‐time simulator for designing electron dual scattering foil systems
title_full_unstemmed Real‐time simulator for designing electron dual scattering foil systems
title_short Real‐time simulator for designing electron dual scattering foil systems
title_sort real‐time simulator for designing electron dual scattering foil systems
topic Education
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5711107/
https://www.ncbi.nlm.nih.gov/pubmed/25493509
http://dx.doi.org/10.1120/jacmp.v15i6.4849
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