Literature DB >> 15305464

Accurate Monte Carlo simulations for nozzle design, commissioning and quality assurance for a proton radiation therapy facility.

H Paganetti1, H Jiang, S Y Lee, H M Kooy.   

Abstract

Monte Carlo dosimetry calculations are essential methods in radiation therapy. To take full advantage of this tool, the beam delivery system has to be simulated in detail and the initial beam parameters have to be known accurately. The modeling of the beam delivery system itself opens various areas where Monte Carlo calculations prove extremely helpful, such as for design and commissioning of a therapy facility as well as for quality assurance verification. The gantry treatment nozzles at the Northeast Proton Therapy Center (NPTC) at Massachusetts General Hospital (MGH) were modeled in detail using the GEANT4.5.2 Monte Carlo code. For this purpose, various novel solutions for simulating irregular shaped objects in the beam path, like contoured scatterers, patient apertures or patient compensators, were found. The four-dimensional, in time and space, simulation of moving parts, such as the modulator wheel, was implemented. Further, the appropriate physics models and cross sections for proton therapy applications were defined. We present comparisons between measured data and simulations. These show that by modeling the treatment nozzle with millimeter accuracy, it is possible to reproduce measured dose distributions with an accuracy in range and modulation width, in the case of a spread-out Bragg peak (SOBP), of better than 1 mm. The excellent agreement demonstrates that the simulations can even be used to generate beam data for commissioning treatment planning systems. The Monte Carlo nozzle model was used to study mechanical optimization in terms of scattered radiation and secondary radiation in the design of the nozzles. We present simulations on the neutron background. Further, the Monte Carlo calculations supported commissioning efforts in understanding the sensitivity of beam characteristics and how these influence the dose delivered. We present the sensitivity of dose distributions in water with respect to various beam parameters and geometrical misalignments. This allows the definition of tolerances for quality assurance and the design of quality assurance procedures.

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Year:  2004        PMID: 15305464     DOI: 10.1118/1.1762792

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


  46 in total

1.  Dosimetric evaluation of nuclear interaction models in the Geant4 Monte Carlo simulation toolkit for carbon-ion radiotherapy.

Authors:  S Kameoka; K Amako; G Iwai; K Murakami; T Sasaki; T Toshito; T Yamashita; T Aso; A Kimura; T Kanai; N Kanematsu; M Komori; Y Takei; S Yonai; M Tashiro; H Koikegami; H Tomita; T Koi
Journal:  Radiol Phys Technol       Date:  2008-07-01

2.  An MCNPX Monte Carlo model of a discrete spot scanning proton beam therapy nozzle.

Authors:  Gabriel O Sawakuchi; Dragan Mirkovic; Luis A Perles; Narayan Sahoo; X Ron Zhu; George Ciangaru; Kazumichi Suzuki; Michael T Gillin; Radhe Mohan; Uwe Titt
Journal:  Med Phys       Date:  2010-09       Impact factor: 4.071

3.  Assessment of out-of-field absorbed dose and equivalent dose in proton fields.

Authors:  Ben Clasie; Andrew Wroe; Hanne Kooy; Nicolas Depauw; Jay Flanz; Harald Paganetti; Anatoly Rosenfeld
Journal:  Med Phys       Date:  2010-01       Impact factor: 4.071

4.  Monte Carlo calculations for absolute dosimetry to determine machine outputs for proton therapy fields.

Authors:  Harald Paganetti
Journal:  Phys Med Biol       Date:  2006-05-17       Impact factor: 3.609

5.  Dosimetric accuracy of planning and delivering small proton therapy fields.

Authors:  Bryan Bednarz; Juliane Daartz; Harald Paganetti
Journal:  Phys Med Biol       Date:  2010-11-19       Impact factor: 3.609

6.  Clinical CT-based calculations of dose and positron emitter distributions in proton therapy using the FLUKA Monte Carlo code.

Authors:  K Parodi; A Ferrari; F Sommerer; H Paganetti
Journal:  Phys Med Biol       Date:  2007-05-17       Impact factor: 3.609

7.  Characterizing the response of miniature scintillation detectors when irradiated with proton beams.

Authors:  Louis Archambault; Jerimy C Polf; Luc Beaulieu; Sam Beddar
Journal:  Phys Med Biol       Date:  2008-03-10       Impact factor: 3.609

8.  Commissioning a passive-scattering proton therapy nozzle for accurate SOBP delivery.

Authors:  M Engelsman; H M Lu; D Herrup; M Bussiere; H M Kooy
Journal:  Med Phys       Date:  2009-06       Impact factor: 4.071

9.  Experimental validation of the TOPAS Monte Carlo system for passive scattering proton therapy.

Authors:  M Testa; J Schümann; H-M Lu; J Shin; B Faddegon; J Perl; H Paganetti
Journal:  Med Phys       Date:  2013-12       Impact factor: 4.071

10.  Reduction of the secondary neutron dose in passively scattered proton radiotherapy, using an optimized pre-collimator/collimator.

Authors:  David J Brenner; Carl D Elliston; Eric J Hall; Harald Paganetti
Journal:  Phys Med Biol       Date:  2009-09-24       Impact factor: 3.609

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