A multi-institutional evaluation of small field output factor determination following the recommendations of IAEA/AAPM TRS-483.

Wolfgang Lechner, Rodolfo Alfonso, Mehenna Arib, M Saiful Huq, Anas Ismail, Rajesh Kinhikar, José M Lárraga-Gutiérrez, Karthick Raj Mani, Nkosingiphile Maphumulo, Otto A Sauer, Shaima Shoeir, Sivalee Suriyapee, Karen Christaki

Journal: Medical physics 2022;49(8):5537-5550

PMID: 35717637

Abstract

PURPOSE

The aim of this work was to test the implementation of small field dosimetry following TRS-483 and to develop quality assurance procedures for the experimental determination of small field output factors (SFOFs).

MATERIALS AND METHODS

Twelve different centers provided SFOFs determined with various detectors. Various linac models using the beam qualities 6 MV and 10 MV with flattening filter and without flattening filter were utilized to generate square fields down to a nominal field size of 0.5 cm × 0.5 cm. The detectors were positioned at 10 cm depth in water. Depending on the local situation, the source-to-surface distance was either set to 90 cm or 100 cm. The SFOFs were normalized to the output of the 10 cm × 10 cm field. The spread of SFOFs measured with different detectors was investigated for each individual linac beam quality and field size. Additionally, linac-type specific SFOF curves were determined for each beam quality and the SFOFs determined using individual detectors were compared to these curves. Example uncertainty budgets were established for a solid state detector and a micro ionization chamber.

RESULTS

The spread of SFOFs for each linac and field was below 5% for all field sizes. With the exception of one linac-type, the SFOFs of all investigated detectors agreed within 10% with the respective linac-type SFOF curve, indicating a potential inter-detector and inter-linac variability.

CONCLUSION

Quality assurance on the SFOF measurements can be done by investigation of the spread of SFOFs measured with multiple detectors and by comparison to linac-type specific SFOFs. A follow-up of a measurement session should be conducted if the spread of SFOFs is larger than 5%, 3%, and 2% for field sizes of 0.5 cm × 0.5 cm, 1 cm × 1 cm, and field sizes larger than 2 cm × 2 cm, respectively. Additionally, deviations of measured SFOFs to the linac-type-curves of more than 7%, 3%, and 2% for field sizes 0.5 cm × 0.5 cm, 1 cm × 1 cm, and field sizes larger than 1 cm × 1 cm, respectively, should be followed up.

© 2022 The Authors. Medical Physics published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine.

Address: Department of Radiation Oncology, Division of Medical Physics, Medical University Vienna, Vienna, Austria.; Department of Nuclear Engineering, Higher Institute of Technology and Applied Sciences, University of Havana, Havana, Cuba.; King Faisal Specialist Hospital and Research Centre, Riyadh, Saudi Arabia.; Department of Radiation Oncology, University of Pittsburgh School of Medicine and UPMC Hillman Cancer Center, Pittsburgh, Pennsylvania, USA.; Protection and Safety Department, Atomic Energy Commission of Syria, Damascus, Syria.; Department of Medical Physics, Tata Memorial Centre, Mumbai, India 400012 & Homi Bhabha National Institute, Mumbai, India.; Laboratorio de Física-Médica, Instituto Nacional de Neurología y Neurocirugía, Tlalpan, CDMX, México.; Department of Radiation Oncology, United Hospital Ltd., Dhaka, Bangladesh.; Radiation Dosimetry Section, National Metrology Institute of South Africa, Pretoria, South Africa.; Department of Radiation Oncology, University of Würzburg, Würzburg, Germany.; Children's Cancer Hospital Egypt, Cairo, Egypt.; Division of Radiation Oncology, Department of Radiology, Chulalongkorn University, Bangkok, Thailand.; International Atomic Energy Agency, Vienna, Austria.
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