MCNPX Estimation of Photoneutron Dose to Eye Voxel Anthropomorphic Phantom From 18 MV Linear Accelerator

被引:0
作者
Alghamdi, Ali A. A. [1 ,2 ]
机构
[1] Imam Abdulrahman Bin Faisal Univ, Coll Appl Med Sci, Dept Radiol Sci, Dammam, Saudi Arabia
[2] Imam Abdulrahman Bin Faisal Univ, Coll Appl Med Sci, Dept Radiol Sci, POB 2435, Dammam 31441, Saudi Arabia
来源
DOSE-RESPONSE | 2023年 / 21卷 / 02期
关键词
photoneutron dose; eye model; voxel anthropomorphic phantom; weight window; MONTE-CARLO; NEUTRON; RADIOTHERAPY; COMPOSITES; THERAPY; FIELD;
D O I
10.1177/15593258231169807
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The dose due to photoneutron contamination outside the field of irradiation can be significant when using high-energy linear accelerators. The eye is a radiation-sensitive organ, and this risk increases when high linear energy transfer neutron radiation is involved. This study aimed to provide a fast method to estimate photoneutron dose to the eye during radiotherapy. A typical high-energy linear accelerator operating at 18 MV was simulated using the Monte Carlo N-Particle Transport Code System extended version (MCNPX 2.5.0). The latest International Atomic Energy Agency photonuclear data library release was integrated into the code, accounting for the most known elements and isotopes used in typical linear accelerator construction. The photoneutron flux from a 5 x 5 cm(2) field size was scored at the treatment table plane and used as a new source for estimating the absorbed dose in a high-resolution eye voxel anthropomorphic phantom. In addition, common shielding media were tested to reduce the photoneutron dose to the eye using common shielding materials. Introducing a 2 cm thickness of common neutron shielding medium reduced the total dose received in the eye voxel anthropomorphic phantom by 54%. In conclusion, individualized treatment based on photoneutron dose assessment is essential to better estimate the secondary dose inside or outside the field of irradiation.
引用
收藏
页数:7
相关论文
共 30 条
  • [1] AAPM, 1986, 19 AAPM
  • [2] Feasibility study of using PET to determine nitrogen concentration after high energy photon irradiation
    Alghamdi, A. A.
    Al-Mokhlef, J.
    Alhaj, A.
    Spyrou, N. M.
    [J]. JOURNAL OF RADIOANALYTICAL AND NUCLEAR CHEMISTRY, 2007, 271 (03) : 783 - 787
  • [3] A high-resolution anthropomorphic voxel-based tomographic phantom for proton therapy of the eye
    Alghamdi, A. A.
    Ma, A.
    Marouli, M.
    Albarakati, Y.
    Kacperek, A.
    Spyrou, N. M.
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2007, 52 (02) : N51 - N59
  • [4] Ashrafinia M., 2020, Iran J Med Phys, V17, P7
  • [5] Safe bunker designing for the 18 MV Varian 2100 Clinac: a comparison between Monte Carlo simulation based upon data and new protocol recommendations
    Beigi, Manije
    Afarande, Fatemeh
    Ghiasi, Hosein
    [J]. REPORTS OF PRACTICAL ONCOLOGY AND RADIOTHERAPY, 2016, 21 (01) : 42 - 49
  • [6] Bolch W. E., 2015, Annals of the ICRP, V44, P91, DOI 10.1177/0146645314562320
  • [7] Chegeni Nahid, 2018, J Med Signals Sens, V8, P175, DOI 10.4103/jmss.JMSS_13_18
  • [8] De Maria C., 2019, CASE REP NEUROL MED, V3, P61
  • [9] Comparison of activation products and induced dose rates in different high-energy medical linear accelerators
    Fischer, Helmut W.
    Tabot, Ben
    Poppe, Bjoern
    [J]. HEALTH PHYSICS, 2008, 94 (03): : 272 - 278
  • [10] Gaylan Y., 2021, SDU FEN EDEB FAK FEN, V16, P490, DOI [DOI 10.29233/sdufeffd.933338, 10.29233/sdufeffd.933338]