Literature DB >> 11991119

Depth dose enhancement of electron beams subject to external uniform longitudinal magnetic fields: a Monte Carlo study.

M A Earl1, L Ma.   

Abstract

We studied the dose distributions from electron beams subjected to a longitudinal magnetic field applied to them before they reach the phantom. We found that specific combinations of the length and intensity of the magnetic field produced enhancement of the peaks of the central-axis depth-dose distributions. The EGS4 Monte Carlo system was used in this study. In the simulations, a uniform axial magnetic field parallel to the electron beam direction was applied to the air gap between the collimation and the phantom. We extensively studied the simplified case of an 18 MeV electron beam point source. Dose deposition was calculated for various magnetic field strengths, distances through which the magnetic field was applied, collimation sizes, and source to collimation distances. The magnetic field strengths varied from 0 to 3 T, the source-to-collimation distances studied were 50 and 95 cm, the collimation sizes studied were 10 x 10 and 20 x 20 cm2, and the distance through which the field was applied ranged from 10 to 20 cm. Specific combinations of these variables resulted in as much as a 70% enhancement of the peak dose relative to the surface dose. Finally, to determine how the geometry of a real accelerator affects the resulting dose distribution, we performed a full simulation of an Elekta SL20 linear accelerator and compared the results with the ideal case.

Mesh:

Year:  2002        PMID: 11991119     DOI: 10.1118/1.1461374

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  3 in total

1.  Normal lung tissue complication probability in MR-Linac and conventional radiotherapy.

Authors:  Somayeh Gholami; Francesco Longo; Sara Shahzadeh; Hassan Ali Nedaie; Ryan Sharp; Ali S Meigooni
Journal:  Rep Pract Oncol Radiother       Date:  2020-09-29

2.  Simulation of therapeutic electron beam tracking through a non-uniform magnetic field using finite element method.

Authors:  Mohammad Javad Tahmasebibirgani; Reza Maskani; Mohammad Ali Behrooz; Mansour Zabihzadeh; Hojatollah Shahbazian; Jafar Fatahiasl; Nahid Chegeni
Journal:  Electron Physician       Date:  2017-04-25

3.  Focused very high-energy electron beams as a novel radiotherapy modality for producing high-dose volumetric elements.

Authors:  K Kokurewicz; E Brunetti; G H Welsh; S M Wiggins; M Boyd; A Sorensen; A J Chalmers; G Schettino; A Subiel; C DesRosiers; D A Jaroszynski
Journal:  Sci Rep       Date:  2019-07-25       Impact factor: 4.379

  3 in total

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