ダウンロード数: 83

このアイテムのファイル:
ファイル 記述 サイズフォーマット 
mp.15864.pdf4.15 MBAdobe PDF見る/開く
タイトル: Design of a filtration system to improve the dose distribution of an accelerator‐based neutron capture therapy system
著者: Hu, Naonori
Tanaka, Hiroki  kyouindb  KAKEN_id
Ono, Koji
著者名の別形: 呼, 尚徳
田中, 浩基
キーワード: boron neutron capture therapy
Monte Carlo simulation
neutron moderator
thermal neutrons
発行日: Oct-2022
出版者: Wiley
American Association of Physicists in Medicine
誌名: Medical Physics
巻: 49
号: 10
開始ページ: 6609
終了ページ: 6621
抄録: [Purpose] The aim of this study is to design and evaluate a neutron filtration system to improve the dose distribution of an accelerator-based neutron capture therapy system. [Methods] An LiF-sintered plate composed of 99%-enriched 6Li was utilized to filter out low-energy neutrons to increase the average neutron energy at the beam exit. A 5-mm thick filter to fit inside a 12-cm diameter circular collimator was manufactured, and experimental measurements were performed to measure the thermal neutron flux and gamma-ray dose rate inside a water phantom. The experimental measurements were compared with the Monte Carlo simulation, particle, and heavy ion transport code system. Following the experimental verification, three filter designs were modeled, and the thermal neutron flux and the biologically weighted dose distribution inside a phantom were simulated. Following the phantom simulation, a dummy patient CT dataset was used to simulate a boron neutron capture therapy (BNCT) irradiation of the brain. A mock tumor located at 4, 6, 8 cm along the central axis and 4-cm off-axis was set, and the dose distribution was simulated for a maximum total biologically weighted brain dose of 12.5 Gy with a beam entering from the vertex. [Results] All three filters improved the beam penetration of the accelerator-based neutron source. Filter design C was found to be the most suitable filter, increasing the advantage depth from 9.1 to 9.9 cm. Compared with the unfiltered beam, the mean weighted dose in the tumor located at a depth of 8 cm along the beam axis was increased by ∼25%, and 34% for the tumor located at a depth of 8 cm and off-axis by 4 cm. [Conclusion] A neutron filtration system for an accelerator-based BNCT system was investigated using Monte Carlo simulation. The proposed filter design significantly improved the dose distribution for the treatment of deep targets in the brain.
著作権等: © 2022 The Authors. Medical Physics published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine.
This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
URI: http://hdl.handle.net/2433/279040
DOI(出版社版): 10.1002/mp.15864
PubMed ID: 35941788
出現コレクション:学術雑誌掲載論文等

アイテムの詳細レコードを表示する

Export to RefWorks


出力フォーマット 


このリポジトリに保管されているアイテムはすべて著作権により保護されています。