Effect of range modulation on neutron dose equivalent exposures around a passive scattering proton therapy treatment nozzle

被引:0
|
作者
Polf, J [1 ]
Newhauser, W [1 ]
机构
[1] MD Anderson Canc Ctr, Dept Radiat Phys, Houston, TX USA
关键词
D O I
10.1118/1.1998668
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: The purpose of our study was to examine the influence of range modulation on the neutron dose equivalent exposures outside the treatment volume around a large‐field passively scattered proton therapy treatment nozzle. Method and Materials: In this study, the neutron dose equivalent spectra per proton (H(E/p)) and total neutron dose equivalent per therapeutic absorbed dose (H/D) were calculated using Monte Carlo simulations of the neutron fluence and the energy dependent neutron fluence‐to‐dose equivalent conversion factor for NCRP 38. (H(E)/p) and H/D were calculated at 54 locations around a passively scattered proton therapy treatment nozzle for varying amounts of range modulation. Results: As the step thickness of the range modulator wheel increased from 1.0 to 12.0 cm, the peak values of H(E)/p increased from 1⋅10−17 to 2⋅10−17 mSv/Gy at 50 cm from isocenter along the beam's central axis. In general, H/D increased with increasing range modulation at all locations studied, and the maximum H/D exposures shifted upstream of isocenter and away from the end of the nozzle. Conclusion: Several important findings can be summarized from the presented work. First, with increasing thickness of the RMW step, the high‐energy peak in the H(E)/p spectra shifted to higher energies. Second, at 90° with respect to the proton beam axis, the high‐energy peak occurs at substantially lower neutron energies. Also, the H/D values around the treatment nozzle increased as the modulation of the beam increased. Finally, the H/D values change significantly with distance from isocenter and angle with respect to the incident beam axis, due in part to the effects of the nozzle components on the neutron fluence downstream of the end of the nozzle. © 2005, American Association of Physicists in Medicine. All rights reserved.
引用
收藏
页码:2164 / 2164
页数:1
相关论文
共 50 条
  • [21] Measurements of neutron dose equivalent for a proton therapy center using uniform scanning proton beams
    Zheng, Yuanshui
    Liu, Yaxi
    Zeidan, Omar
    Schreuder, Andries Niek
    Keole, Sameer
    MEDICAL PHYSICS, 2012, 39 (06) : 3484 - 3492
  • [22] Dose Evaluation From Scattered Protons in Passive Scattering Proton Therapy
    Kim, C.
    Lee, N.
    Lee, S.
    Jeong, J.
    Kim, H.
    Shin, D.
    Lim, Y.
    Shin, W.
    Min, C.
    MEDICAL PHYSICS, 2018, 45 (06) : E259 - E260
  • [23] Neutron Dose Equivalent Evaluation for Pencil Beam Scanning Proton Therapy with Apertures
    Geng, C.
    Schuemann, J.
    Moteabbed, M.
    Paganetti, H.
    MEDICAL PHYSICS, 2015, 42 (06) : 3466 - 3466
  • [24] Monte Carlo Study of Neutron Dose Equivalent for a Compact Proton Therapy Unit
    Zheng, Y.
    Klein, E.
    Chen, K.
    Liu, Y.
    MEDICAL PHYSICS, 2010, 37 (06)
  • [25] Feasability of a treatment nozzle without a range modulator wheel using the passive scattering technique
    Harvey, M. C.
    Polf, J.
    Mohan, R.
    MEDICAL PHYSICS, 2007, 34 (06) : 2454 - 2454
  • [26] Effect of Variable RBE On the Distal Range of the Passive Scattering Proton Beams
    Khuntia, N.
    Gautam, A.
    Zhang, X.
    Zhu, X.
    Gillin, M.
    Sahoo, N.
    MEDICAL PHYSICS, 2017, 44 (06)
  • [27] An Iterating Method to Calculate the Geometry of Range Modulation Wheel in Passive Proton Therapy
    Tabatabaeian, Zahra Sadat
    Sadeghi, Mahdi
    Ghasemi, Mohammad Reza
    JOURNAL OF PHARMACEUTICAL RESEARCH INTERNATIONAL, 2019, 30 (06)
  • [28] Comparison of Dose Distributions Between Two Arrangements of a Range Compensator and of An Aperture Collimator in a Passive Scattering Method for Proton Therapy
    Hotta, K.
    Kohno, R.
    Takada, Y.
    Hara, Y.
    Tansho, R.
    MEDICAL PHYSICS, 2011, 38 (06) : 3568 - +
  • [29] Influence of Reduced Target-To-Nozzle Distance On Secondary Neutron Dose Equivalent in Proton and Carbon Ion Radiotherapy
    Sheng, Y.
    Shahnazi, K.
    Wang, W.
    Moyers, M.
    Deng, Y.
    Huang, Z.
    Liu, X.
    MEDICAL PHYSICS, 2015, 42 (06) : 3448 - 3448
  • [30] Monte Carlo Dose Verification of Passive Scattering Proton Therapy for Prostate Cancer
    Giantsoudi, D.
    Paganetti, H.
    MEDICAL PHYSICS, 2012, 39 (06) : 3819 - 3819