Magnetic-field-induced dose effects in MR-guided radiotherapy systems: dependence on the magnetic field strength

被引:217
|
作者
Raaijmakers, A. J. E. [1 ]
Raaymakers, B. W. [1 ]
Lagendijk, J. J. W. [1 ]
机构
[1] Univ Med Ctr Utrecht, Dept Radiotherapy, NL-3584 CX Utrecht, Netherlands
来源
PHYSICS IN MEDICINE AND BIOLOGY | 2008年 / 53卷 / 04期
关键词
D O I
10.1088/0031-9155/53/4/006
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Several institutes are currently working on the development of a radiotherapy treatment system with online MR imaging (MRI) modality. The main difference between their designs is the magnetic field strength of the MRI system. While we have chosen a 1.5 Tesla (T) magnetic field strength, the Cross Cancer Institute in Edmonton will be using a 0.2 T MRI scanner and the company Viewray aims to use 0.3 T. The magnetic field strength will affect the severity of magnetic field dose effects, such as the electron return effect (ERE): considerable dose increase at tissue air boundaries due to returning electrons. This paper has investigated how the ERE dose increase depends on the magnetic field strength. Therefore, four situations where the ERE occurs have been simulated: ERE at the distal side of the beam, the lateral ERE, ERE in cylindrical air cavities and ERE in the lungs. The magnetic field comparison values were 0.2, 0.75, 1.5 and 3 T. Results show that, in general, magnetic field dose effects are reduced at lower magnetic field strengths. At the distal side, the ERE dose increase is largest for B = 0.75 T and depends on the irradiation field size for B = 0.2 T. The lateral ERE is strongest for B = 3 T but shows no effect for B = 0.2 T. Around cylindrical air cavities, dose inhomogeneities disappear if the radius of the cavity becomes small relative to the in- air radius of the secondary electron trajectories. At larger cavities (r > 1 cm), dose inhomogeneities exist for all magnetic field strengths. In water - lung - water phantoms, the ERE dose increase takes place at the water lung transition and the dose decreases at the lung - water transition, but these effects are minimal for B = 0.2 T. These results will contribute to evaluating the trade- off between magnetic field dose effects and image quality of MR- guided radiotherapy systems.
引用
收藏
页码:909 / 923
页数:15
相关论文
共 50 条
  • [21] MR Guided Esophageal Cancer Radiotherapy: Quantifying the Impact of the Magnetic Field
    Li, Z.
    Yin, Y.
    Zhu, J.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2019, 105 (01): : E190 - E190
  • [22] MAGNETIC-FIELD-INDUCED ENHANCEMENT OF EXCITON OSCILLATOR STRENGTH IN CDTE AND GAAS
    NEUMANN, C
    NOTHE, A
    EUROPHYSICS LETTERS, 1987, 4 (03): : 351 - 355
  • [23] Impact of 1.5 T Magnetic Field on Treatment Plan Quality in MR-Guided Radiotherapy: Typical Phantom Test Cases
    Yan, Lingling
    Xu, Yingjie
    Dai, Jianrong
    TECHNOLOGY IN CANCER RESEARCH & TREATMENT, 2024, 23
  • [24] Exchange-correlation effects in magnetic-field-induced superconductivity
    Capelle, K
    PHYSICAL REVIEW B, 2002, 65 (10) : 1 - 4
  • [25] DEPENDENCE OF THE DEPTH OF PENETRATION OF THE MAGNETIC FIELD IN A SUPERCONDUCTOR ON THE MAGNETIC FIELD STRENGTH
    SHARVIN, YV
    GANTMAKHER, VF
    SOVIET PHYSICS JETP-USSR, 1961, 12 (05): : 866 - 872
  • [26] Toward Magnetic Resonance Fingerprinting for Low-Field MR-Guided Radiation Therapy
    Mickevicius, N.
    Morris, Z.
    Glide-Hurst, C.
    MEDICAL PHYSICS, 2021, 48 (06)
  • [27] Toward magnetic resonance fingerprinting for low-field MR-guided radiation therapy
    Mickevicius, Nikolai J.
    Kim, Joshua P.
    Zhao, Jiwei
    Morris, Zachary S.
    Hurst, Newton J., Jr.
    Glide-Hurst, Carri K.
    MEDICAL PHYSICS, 2021, 48 (11) : 6930 - 6940
  • [28] Technical Note: A Monte Carlo study of magnetic-field-induced radiation dose effects in mice
    Rubinstein, Ashley E.
    Liao, Zhongxing
    Melancon, Adam D.
    Guindani, Michele
    Followill, David S.
    Tailor, Ramesh C.
    Hazle, John D.
    Court, Laurence E.
    MEDICAL PHYSICS, 2015, 42 (09) : 5510 - 5516
  • [29] Magnetic-field-induced birefringence and particle agglomeration in magnetic fluids
    Di, Ziyun
    Chen, Xianfeng
    Pu, Shengli
    Hu, Xiao
    Xia, Yuxing
    APPLIED PHYSICS LETTERS, 2006, 89 (21)
  • [30] Magnetic-field-induced changes in magnetic shape memory alloys
    Entel, P.
    Gruner, M. E.
    Adeagbo, W. A.
    Zayak, A. T.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2008, 481 (1-2 C): : 258 - 261