Literature DB >> 26738533

MCNP6 model of the University of Washington clinical neutron therapy system (CNTS).

Gregory B Moffitt1, Robert D Stewart, George A Sandison, John T Goorley, David C Argento, Tatjana Jevremovic.   

Abstract

A MCNP6 dosimetry model is presented for the Clinical Neutron Therapy System (CNTS) at the University of Washington. In the CNTS, fast neutrons are generated by a 50.5 MeV proton beam incident on a 10.5 mm thick Be target. The production, scattering and absorption of neutrons, photons, and other particles are explicitly tracked throughout the key components of the CNTS, including the target, primary collimator, flattening filter, monitor unit ionization chamber, and multi-leaf collimator. Simulations of the open field tissue maximum ratio (TMR), percentage depth dose profiles, and lateral dose profiles in a 40 cm × 40 cm × 40 cm water phantom are in good agreement with ionization chamber measurements. For a nominal 10 × 10 field, the measured and calculated TMR values for depths of 1.5 cm, 5 cm, 10 cm, and 20 cm (compared to the dose at 1.7 cm) are within 0.22%, 2.23%, 4.30%, and 6.27%, respectively. For the three field sizes studied, 2.8 cm × 2.8 cm, 10.4 cm × 10.3 cm, and 28.8 cm × 28.8 cm, a gamma test comparing the measured and simulated percent depth dose curves have pass rates of 96.4%, 100.0%, and 78.6% (depth from 1.5 to 15 cm), respectively, using a 3% or 3 mm agreement criterion. At a representative depth of 10 cm, simulated lateral dose profiles have in-field (⩾ 10% of central axis dose) pass rates of 89.7% (2.8 cm × 2.8 cm), 89.6% (10.4 cm × 10.3 cm), and 100.0% (28.8 cm × 28.8 cm) using a 3% and 3 mm criterion. The MCNP6 model of the CNTS meets the minimum requirements for use as a quality assurance tool for treatment planning and provides useful insights and information to aid in the advancement of fast neutron therapy.

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Year:  2016        PMID: 26738533     DOI: 10.1088/0031-9155/61/2/937

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


  3 in total

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Authors:  Robert D Stewart
Journal:  Int J Part Ther       Date:  2018-09-21

2.  Mechanistic Modeling of the Relative Biological Effectiveness of Boron Neutron Capture Therapy.

Authors:  Seth W Streitmatter; Robert D Stewart; Gregory Moffitt; Tatjana Jevremovic
Journal:  Cells       Date:  2020-10-15       Impact factor: 6.600

3.  Comparisons of 3-Dimensional Conformal and Intensity-Modulated Neutron Therapy for Head and Neck Cancers.

Authors:  Natalie Viscariello; Matthew D Greer; Upendra Parvathaneni; Jay J Liao; George E Laramore; Robert D Stewart
Journal:  Int J Part Ther       Date:  2021-09-14
  3 in total

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