Literature DB >> 11837615

Dosimetry characteristics of degraded electron beams investigated by Monte Carlo calculations in a setup for intraoperative radiation therapy.

Peter Björk1, Per Nilsson, Tommy Knöös.   

Abstract

Degraded electron beams, as used for intraoperative radiation therapy (IORT) or similar complicated dosimetric situations, have different characteristics compared to conventional electron therapy beams. If international dosimetry protocols are applied in a direct manner to such degraded beams, uncertainties will be introduced in the absorbed dose determination. The Monte Carlo method has been used to verify experimentally determined relative absorbed dose distributions and output factors in an IORT geometry. Monte Carlo generated dose distributions are mostly within +/-2% or +/-2 mm of measured data. The simulated output variation between the IORT cones (relative output factors) are mostly within 2% of measured values. By comparing IORT and conventional electron beam characteristics (e.g. energy spectra, angular distributions and the contributions of different system components to these quantities) limitations and uncertainties of commonly used dosimetric techniques in IORT electron fields are quantified. The intraoperative treatment field contains a larger amount of scattered electrons, which leads to a broader energy spectrum as well as a wider angular distribution of electrons at the phantom surface. The dose from the scattered electrons can contribute up to 40% of the total dose at a depth of dose maximum, compared to approximately 10% for standard beams. A study of the energy spectra at the reference depth reveals that an uncertainty of the order of 1% can be introduced if ionization chamber based dosimetry is used to determine output factors for the investigated IORT system. We recommend that relative absorbed dose distributions and output factors in IORT electron beams and for similar complicated dosimetric situations should be determined with detectors having a small energy and angular dependence (e.g. diamond detectors or p-Si diodes).

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Year:  2002        PMID: 11837615     DOI: 10.1088/0031-9155/47/2/305

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  5 in total

1.  Monte Carlo Calculation of the Energy Spectrum of a 6 MeV Electron Beam using PENetration and Energy Loss of Positrons and Electrons Code.

Authors:  Danny Giancarlo Apaza Veliz; Jorge Homero Wilches Visbal; Felipe Chen Abrego; José Luis Vega Ramírez
Journal:  J Med Phys       Date:  2020-07-20

2.  Design and dosimetry characteristics of a commercial applicator system for intra-operative electron beam therapy utilizing ELEKTA Precise accelerator.

Authors:  Alexander Nevelsky; Zvi Bernstein; Raquel Bar-Deroma; Abraham Kuten; Itzhak Orion
Journal:  J Appl Clin Med Phys       Date:  2010-07-19       Impact factor: 2.102

3.  Monte Carlo Simulation of Electron Beams produced by LIAC Intraoperative Radiation Therapy Accelerator.

Authors:  M Robatjazi; K Tanha; S R Mahdavi; H R Baghani; H R Mirzaei; M Mousavi; N Nafissi; E Akbari
Journal:  J Biomed Phys Eng       Date:  2018-03-01

4.  Modification of the 4 MeV electron beam from a linear accelerator for irradiation of small superficial skin tumors.

Authors:  Assi Valve; Antti Kulmala; David Followill; Mikko Tenhunen
Journal:  Phys Imaging Radiat Oncol       Date:  2019-05-01

5.  Dosimetric characteristics of electron beams produced by two mobile accelerators, Novac7 and Liac, for intraoperative radiation therapy through Monte Carlo simulation.

Authors:  Sergio Righi; Evis Karaj; Giuseppe Felici; Fabio Di Martino
Journal:  J Appl Clin Med Phys       Date:  2013-01-07       Impact factor: 2.102

  5 in total

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