Sensitive volume effects on Monte Carlo calculated ion chamber response in magnetic fields

被引:37
作者
Malkov, Victor N. [1 ]
Rogers, D. W. O. [1 ]
机构
[1] Carleton Univ, Dept Phys, Carleton Lab Radiotherapy Phys, Ottawa, ON, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
dosimetry; EGSnrc; ion chamber; magnetic fields; Monte Carlo; MRgRT; sensitive volume; RADIOTHERAPY IONIZATION CHAMBERS; REFERENCE DOSIMETRY; PHOTON BEAMS; LINAC; TRANSVERSE; ACCELERATOR; SYSTEMS; K(Q);
D O I
10.1002/mp.12421
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 development of magnetic resonance-guided radiation therapy (MRgRT) necessitates accurate Monte Carlo (MC) models of ion chambers for computing ion chamber corrections to compensate for the presence of the magnetic field. This study evaluates the sensitivity of the ion chamber dose response in a magnetic field on the collection volume used in the MC simulation. Methods: The EGSnrc system's egs_ chamber application is used with a recently developed and validated magnetic field transport code. The calculated dose to the sensitive volume of the chamber per unit incident photon fluence, normalized to that at 0 T, is evaluated as a function of magnetic field for the PTW 30013, PTW 31006, PTW 31010, Exradin A12S, and Exradin A1SL chambers. The sensitive region is varied by excluding the volume corresponding to either 0, 0.5, or 1 mm of distance away from the stem. The photon field, magnetic field, and ion chamber are all oriented perpendicular to each other as in the majority of published experimental works. Results: The calculations for a Co-60 source demonstrate that variations from the 0 mm simulations are on the order of several percent with a maximum deviation, occurring at 0.5 T, of 1.75 +/- 0.03% and 3.39 +/- 0.06% for the 0.5 mm or 1 mm simulations, respectively, for a 0.057 cm 3 A1SL chamber. Larger volume chambers showed smaller, but still non-negligible, variations. Simulations of the A1SL chamber with a 7 MV photon source, corresponding to the Elekta MR-linac machine, demonstrate that the effect is slightly reduced but still persists with a maximum deviation of 1.97 +/- 0.08% for the 1 mm reduction. Conclusions: Usually, the geometric sensitive volume of the ion chamber is used in MC calculation as a substitute for the potentially unknown, smaller, true collection volume (governed by the complex electric field distribution inside the chamber). The calculations in this study demonstrate that even a small variation in simulated volume can lead to fairly large variations in the MC calculated ion chamber response in a magnetic field. This is an important effect that must be addressed to ensure proper calibration of MRgRT machines using MC ion chamber correction factors. This effect may play a role, even where there is no magnetic field, in small-field dosimetry when volume averaging effect are important. (C) 2017 American Association of Physicists in Medicine
引用
收藏
页码:4854 / 4858
页数:5
相关论文
共 22 条
[1]   Quantification of static magnetic field effects on radiotherapy ionization chambers [J].
Agnew, J. ;
O'Grady, F. ;
Young, R. ;
Duane, S. ;
Budgell, G. J. .
PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (05) :1731-1743
[2]   Evaluation of a commercial MRI Linac based Monte Carlo dose calculation algorithm with GEANT4 [J].
Ahmad, Syed Bilal ;
Sarfehnia, Arman ;
Paudel, Moti Raj ;
Kim, Anthony ;
Hissoiny, Sami ;
Sahgal, Arjun ;
Keller, Brian .
MEDICAL PHYSICS, 2016, 43 (02) :894-907
[3]   High spatial resolution dosimetric response maps for radiotherapy ionization chambers measured using kilovoltage synchrotron radiation [J].
Butler, D. J. ;
Stevenson, A. W. ;
Wright, T. E. ;
Harty, P. D. ;
Lehmann, J. ;
Livingstone, J. ;
Crosbie, J. C. .
PHYSICS IN MEDICINE AND BIOLOGY, 2015, 60 (22) :8625-8641
[4]   First MR images obtained during megavoltage photon irradiation from a prototype integrated linac-MR system [J].
Fallone, B. G. ;
Murray, B. ;
Rathee, S. ;
Stanescu, T. ;
Steciw, S. ;
Vidakovic, S. ;
Blosser, E. ;
Tymofichuk, D. .
MEDICAL PHYSICS, 2009, 36 (06) :2084-2088
[5]   Consequences of air around an ionization chamber: Are existing solid phantoms suitable for reference dosimetry on an MR-linac? [J].
Hackett, S. L. ;
van Asselen, B. ;
Wolthaus, J. W. H. ;
Kok, J. G. M. ;
Woodings, S. J. ;
Lagendijk, J. J. W. ;
Raaymakers, B. W. .
MEDICAL PHYSICS, 2016, 43 (07) :3961-3968
[6]  
Kawrakow I, PIRS701 NAT RES COUN
[7]   Breast dosimetry in transverse and longitudinal field MRI-Linac radiotherapy systems [J].
Mahdavi, S. R. ;
Esmaeeli, A. D. ;
Pouladian, M. ;
Monfared, A. S. ;
Sardari, D. ;
Bagheri, S. .
MEDICAL PHYSICS, 2015, 42 (02) :925-936
[8]   Charged particle transport in magnetic fields in EGSnrc [J].
Malkov, V. N. ;
Rogers, D. W. O. .
MEDICAL PHYSICS, 2016, 43 (07) :4447-4458
[9]   Dosimetry for the MRI accelerator: the impact of a magnetic field on the response of a Farmer NE2571 ionization chamber [J].
Meijsing, I. ;
Raaymakers, B. W. ;
Raaijmakers, A. J. E. ;
Kok, J. G. M. ;
Hogeweg, L. ;
Liu, B. ;
Lagendijk, J. J. W. .
PHYSICS IN MEDICINE AND BIOLOGY, 2009, 54 (10) :2993-3002
[10]   Polarity effects and apparent ion recombination in microionization chambers [J].
Miller, Jessica R. ;
Hooten, Brian D. ;
Micka, John A. ;
DeWerd, Larry A. .
MEDICAL PHYSICS, 2016, 43 (05) :2141-2152