Spectral analysis of Monte Carlo calculated fluence correction and cema conversion factors for high- energy photon beams at different depths

被引:0
|
作者
Roers, Julian [1 ,2 ]
Czarnecki, Damian [1 ]
Alissa, Mohamad [1 ]
Zink, Klemens [1 ,3 ,4 ]
机构
[1] Univ Appl Sci Giessen, Inst Med Phys & Radiat Protect IMPS, Giessen, Germany
[2] Univ Hosp Munster, Dept Radiotherapy, Munster, Germany
[3] Univ Med Ctr Giessen Marburg, Dept Radiotherapy & Radiooncol, Marburg, Germany
[4] Marburg Iontherapy Ctr MIT, Marburg, Germany
关键词
radiation dosimetry; CEMA; charged particle fluence; detector response; perturbation factor; build-up region; Monte Carlo simulation; REPLACEMENT CORRECTION FACTORS; DETECTOR DOSE-RESPONSE; REFERENCE DOSIMETRY; MEGAVOLTAGE PHOTON; ION CHAMBERS; PERTURBATION; QUALITY;
D O I
10.3389/fphy.2022.1075514
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Purpose: The aim of this study is to investigate the depth-dependent detector response of detailed thimble air-filled ionization chambers by calculating spectral charged particle fluence correction factors at different depths in water. Those spectral correction factors will help to understand, how the detector response varies at different depths and what kind of influences disparate effects have on the spectral detector response.Methods: The cema-approach can be used to obtain spectral charged particle fluence-based correction factors for various measurement conditions by substituting the commonly well-known dose conversion factor with a conversion factor based on the dosimetric quantity cema ( "converted-energy per unit mass "). The resulting spectral fluence correction factors were calculated with the EGSnrc software toolkit and analyzed for two air-filled cylindrical ionization chambers (PTW type 31021 Semiflex 3D, SNC125c (TM)) at different depths in a water phantom irradiated with a 6 MV linear accelerator x-ray spectrum. The ionization chamber models have been stepwise decomposed to investigate the perturbation caused by internal and external effects on the fluence distribution within the detector.Results: Monte Carlo calculated fluence-based perturbation correction factors revealed that for all investigated detectors, considerable fluence disturbances occur, especially in the build-up region of depth-dose curves. Our results have shown that even slight variations in depth can have major consequences on the differential charged particle fluence within the ionization chamber, mainly due to internal cavity-specific effects. Furthermore, the results showed that in the case of relative dose measurements, the depth-depending detector response can significantly differ from unity in a range of 1.4%-2.8% depending on the ionization chamber design.Conclusion: The complexity of different effects on the fluence disturbance could be broken down with regard to their influence on the spectral fluence distribution in the sensitive volume of the investigated detectors. It could be demonstrated, that the displacement of water is a depth-depending effect, which can not be compensated or corrected ideally for each investigated water depth by the shift of the effective point of measurement. Generally, the spectral analysis of those energy-dependent correction factors serves to a deeper understanding of the detector response under various conditions.
引用
收藏
页数:14
相关论文
共 50 条
  • [1] Monte Carlo calculated beam quality correction factors for high energy electron beams
    Alissa, Mohamad
    Zink, Klemens
    Roeser, Arnd
    Flatten, Veronika
    Schoenfeld, Andreas A.
    Czarnecki, Damian
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2024, 117
  • [2] Monte Carlo calculated fluence correction factors in PMMA and polystyrene phantoms in clinical proton beams
    Palmans, H
    Vynckier, S
    PROCEEDINGS OF THE 22ND ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-4, 2000, 22 : 872 - 875
  • [3] Monte Carlo calculated beam quality correction factors for high energy photon and electron fields
    Czarnecki, Damian
    Zink, Klemens
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2025, 131
  • [4] Monte Carlo calculated beam quality correction factors for two cylindrical ionization chambers in photon beams
    Alissa, Mohamad
    Zink, Klemens
    Tessier, Frederic
    Schoenfeld, Andreas A.
    Czarnecki, Damian
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2022, 94 : 17 - 23
  • [5] Monte Carlo calculated beam quality correction factors for proton beams
    Goma, C.
    Andreo, P.
    Sempau, J.
    RADIOTHERAPY AND ONCOLOGY, 2016, 119 : S36 - S37
  • [6] DOSE CONVERSION AND WALL CORRECTION FACTORS FOR FRICKE DOSIMETRY IN HIGH-ENERGY PHOTON BEAMS - ANALYTICAL MODEL AND MONTE-CARLO CALCULATIONS
    MA, CM
    NAHUM, AE
    PHYSICS IN MEDICINE AND BIOLOGY, 1993, 38 (01): : 93 - 114
  • [7] Monte Carlo calculated correction factors for a proton calorimeter in clinical proton beams
    Shipley, D.
    Romano, F.
    Palmans, H.
    RADIOTHERAPY AND ONCOLOGY, 2018, 127 : S459 - S459
  • [8] Monte Carlo calculated beam quality correction factors for photon reference dosimetry
    Czarnecki, D.
    Alissa, M.
    Schoenfeld, A. A.
    Zink, K.
    RADIOTHERAPY AND ONCOLOGY, 2022, 170 : S729 - S730
  • [9] Measurement and Monte Carlo calculation of the backscatter correction factor at the exit of high energy photon beams as a function of different parameters
    Koukorava, C
    Dimitriadis, A
    Theodorou, K
    Kappas, C
    RADIOTHERAPY AND ONCOLOGY, 2004, 73 : S88 - S89
  • [10] Monte Carlo calculated correction factors for diodes and ion chambers in small photon fields
    Czarnecki, D.
    Zink, K.
    PHYSICS IN MEDICINE AND BIOLOGY, 2013, 58 (08): : 2431 - 2444