Literature DB >> 15719964

Reference photon dosimetry data and reference phase space data for the 6 MV photon beam from varian clinac 2100 series linear accelerators.

Sang Hyun Cho1, Oleg N Vassiliev, Seungsoo Lee, H Helen Liu, Geoffrey S Ibbott, Radhe Mohan.   

Abstract

The current study presents the reference photon dosimetry data (RPDD) and reference phase space data (RPSD) for the 6 MV photon beam from Varian 2100 series linear accelerators. The RPDD provide the basic photon dosimetry data, typically collected during the initial commissioning of a new linear accelerator, including output factors, depth dose data, and beam profile data in air and in water. The RPSD provide the full phase space information, such as position, direction, and energy for each particle generated inside the head of any particular linear accelerator in question. The dosimetric characteristics if the 6 MV photon beam from the majority of the aforementioned accelerators, which are unaltered from the manufacturer's original specifications, can be fully described with these two data sets within a clinically acceptable uncertainty (approximately +/-2 %). The current study also presents a detailed procedure to establish the RPDD and RPSD using measured data and Monte Carlo calculations. The RPDD were constructed by compiling our own measured data and the average data based on the analysis of more than 50 sets of measured data from the Radiological Physics Center (RPC) and 10 sets of clinical dosimetry data obtained from 10 different institutions participating in the RPC's quality assurance monitoring program. All the measured data from the RPC and the RPC-monitored institutions were found to be within a statistically tight range (i.e., 1sigma approximately 1% or less) for each dosimetric quantity. The manufacturer's standard data, except for in-air off-axis factors that are available only from the current study, were compared with the RPDD, showing that the manufacturer's standard data could also be used as the RPDD for the photon beam studied in this study. The RPSD were obtained from Monte Carlo calculations using the BEAMnrc/ DOSXYZnrc code system with 6.2 MeV (a spread of 3% full width at half maximum) and 1.0 mm full width at half maximum as the values of the energy and radial spread of a Gaussian electron pencil beam incident on the target, respectively. The RPSD were capable of generating Monte Carlo data that agreed with the RPDD within the acceptance criteria adopted in the current study (e.g., 1% or 1 mm for depth dose). A complete set of the RPDD and RPSD from the current study is available from the RPC website (http://rpc.mdanderson.org) or via mass storage media such as DVD or CD-ROM upon request.

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Year:  2005        PMID: 15719964     DOI: 10.1118/1.1829172

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


  20 in total

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Authors:  Jessie Y Huang; David Eklund; Nathan L Childress; Rebecca M Howell; Dragan Mirkovic; David S Followill; Stephen F Kry
Journal:  Med Phys       Date:  2013-12       Impact factor: 4.071

2.  Evaluation of beam matching accuracy among six linacs from the same vendor.

Authors:  Chockkalingam Krishnappan; Chandrasekaran Anu Radha; Karunakaran Balaji; Prasanna Kumar Mani; Vendhan Subramani; Velmurugan Thanigaimalai; Madhan Kumar Gunasekaran; Velayudham Ramasubramanian
Journal:  Radiol Phys Technol       Date:  2018-09-29

3.  Technical Report: Reference photon dosimetry data for Varian accelerators based on IROC-Houston site visit data.

Authors:  James R Kerns; David S Followill; Jessica Lowenstein; Andrea Molineu; Paola Alvarez; Paige A Taylor; Francesco C Stingo; Stephen F Kry
Journal:  Med Phys       Date:  2016-05       Impact factor: 4.071

4.  Modification and validation of an analytical source model for external beam radiotherapy Monte Carlo dose calculations.

Authors:  Scott E Davidson; Jing Cui; Stephen Kry; Joseph O Deasy; Geoffrey S Ibbott; Milos Vicic; R Allen White; David S Followill
Journal:  Med Phys       Date:  2016-08       Impact factor: 4.071

5.  Dosimetric comparison of Acuros XB deterministic radiation transport method with Monte Carlo and model-based convolution methods in heterogeneous media.

Authors:  Tao Han; Justin K Mikell; Mohammad Salehpour; Firas Mourtada
Journal:  Med Phys       Date:  2011-05       Impact factor: 4.071

6.  Monte Carlo modeling of a 6 and 18 MV Varian Clinac medical accelerator for in-field and out-of-field dose calculations: development and validation.

Authors:  Bryan Bednarz; X George Xu
Journal:  Phys Med Biol       Date:  2009-01-14       Impact factor: 3.609

7.  Feasibility of a multigroup deterministic solution method for three-dimensional radiotherapy dose calculations.

Authors:  Oleg N Vassiliev; Todd A Wareing; Ian M Davis; John McGhee; Douglas Barnett; John L Horton; Kent Gifford; Gregory Failla; Uwe Titt; Firas Mourtada
Journal:  Int J Radiat Oncol Biol Phys       Date:  2008-09-01       Impact factor: 7.038

8.  Comparison of normal tissue dose calculation methods for epidemiological studies of radiotherapy patients.

Authors:  Matthew M Mille; Jae Won Jung; Choonik Lee; Gleb A Kuzmin; Choonsik Lee
Journal:  J Radiol Prot       Date:  2018-04-11       Impact factor: 1.394

9.  Radiotherapy of lung cancers: FFF beams improve dose coverage at tumor periphery compromised by electronic disequilibrium.

Authors:  Oleg N Vassiliev; Stephen F Kry; He C Wang; Christine B Peterson; Joe Y Chang; Radhe Mohan
Journal:  Phys Med Biol       Date:  2018-09-28       Impact factor: 3.609

10.  Review of fast monte carlo codes for dose calculation in radiation therapy treatment planning.

Authors:  Keyvan Jabbari
Journal:  J Med Signals Sens       Date:  2011-01
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