Reference dosimetry condition and beam quality correction factor for CyberKnife beam
Creators
- 1. Chiba Cancer Center, Chiba (Japan)
- 2. Tokyo Metropolitan University Graduate School of Human Health Sciences, Tokyo (Japan)
- 3. Yokahama CyberKnife Center, Yokohama (Japan)
- 4. Tokyo Metropolitan University Graduate School of Human Health Sciences, Tokyo, Japan and Chiba Cancer Center, Chiba (Japan)
Description
This article is intended to improve the certainty of the absorbed dose determination for reference dosimetry in CyberKnife beams. The CyberKnife beams do not satisfy some conditions of the standard reference dosimetry protocols because of its unique treatment head structure and beam collimating system. Under the present state of affairs, the reference dosimetry has not been performed under uniform conditions and the beam quality correction factor kQ for an ordinary 6 MV linear accelerator has been temporally substituted for the kQ of the CyberKnife in many sites. Therefore, the reference conditions and kQ as a function of the beam quality index in a new way are required. The dose flatness and the error of dosimeter reading caused by radiation fields and detector size were analyzed to determine the reference conditions. Owing to the absence of beam flattening filter, the dose flatness of the CyberKnife beam was inferior to that of an ordinary 6 MV linear accelerator. And if the absorbed dose is measured with an ionization chamber which has cavity length of 2.4, 1.0 and 0.7 cm in reference dosimetry, the dose at the beam axis for a field of 6.0 cm collimator was underestimated 1.5%, 0.4%, and 0.2% on a calculation. Therefore, the maximum field shaped with a 6.0 cm collimator and ionization chamber which has a cavity length of 1.0 cm or shorter were recommended as the conditions of reference dosimetry. Furthermore, to determine the kQ for the CyberKnife, the realistic energy spectrum of photons and electrons in water was simulated with the BEAMnrc. The absence of beam flattening filter also caused softer photon energy spectrum than that of an ordinary 6 MV linear accelerator. Consequently, the kQ for ionization chambers of a suitable size were determined and tabulated as a function of measurable beam quality indexes in the CyberKnife beam.
Additional details
Identifiers
- DOI
- 10.1118/1.2978228;
Publishing Information
- Journal Title
- Medical Physics
- Journal Volume
- 35
- Journal Issue
- 10
- Journal Page Range
- p. 4591-4598
- ISSN
- 0094-2405
- CODEN
- MPHYA6
INIS
- Country of Publication
- United States
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 44053363
- Subject category
- S61: RADIATION PROTECTION AND DOSIMETRY;
- Descriptors DEI
- COMPUTERIZED SIMULATION; CORRECTIONS; DOSEMETERS; DOSIMETRY; ELECTRONS; ENERGY SPECTRA; IONIZATION CHAMBERS; LINEAR ACCELERATORS; MONTE CARLO METHOD; PHOTON BEAMS; RADIOTHERAPY
- Descriptors DEC
- ACCELERATORS; BEAMS; CALCULATION METHODS; ELEMENTARY PARTICLES; FERMIONS; LEPTONS; MEASURING INSTRUMENTS; MEDICINE; NUCLEAR MEDICINE; RADIATION DETECTORS; RADIOLOGY; SIMULATION; SPECTRA; THERAPY
Optional Information
- Notes
- (c) 2008 American Association of Physicists in Medicine