2020/08/31 by Mahbubur Rahman, M. Ramish Ashraf, Rongxiao Zhang +10 · 1 citation
Medicine · Physics and Astronomy · #Advanced Radiotherapy Techniques #Beam (structure) #Boron Compounds in Chemistry #Flash (photography) #Isocenter #Linear particle accelerator #Materials science #Medicine #Nuclear medicine #Optics #Physics #Radiation Therapy and Dosimetry #physics.med-ph
paper · pdf · doi:10.1016/j.ijrobp.2021.01.011
Manuscript: 21 Pages, 1 Table, 8 Figures; Supplementary Material A: 2 Pages, 2 Figures; Appendix: Film Dosimetry: 2 Pages, 2 Tables
openalex publication_date 2021/01/13 · arxiv created 2021/02/02 · arxiv updated 2021/02/03 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/06
Purpose: In this study, procedures were developed to achieve efficient reversible conversion of a clinical linear accelerator (LINAC) and deliver electron FLASH (eFLASH) or conventional beams to the treatment room isocenter. Material & Methods: The LINAC was converted to deliver eFLASH beam within 20 minutes by retracting the x-ray target from the beam's path, positioning the carousel on an empty port, and selecting 10 MV photon beam energy in the treatment console. Dose per pulse and average dose rate were measured in a solid water phantom at different depths with Gafchromic film and OSLD. A pulse controller counted the pulses via scattered radiation signal and gated the delivery for preset pulse count. A fast photomultiplier tube-based Cherenkov detector measured per pulse beam output at 2 ns sampling rate. After conversion back to clinical mode, conventional beam output, flatness, symmetry, field size and energy were measured for all clinically commissioned energies. Results: Dose per pulse of 0.86 +/- 0.01 Gy (310 +/- 7 Gy/s average dose rate) were achieved at isocenter. The dose from simultaneous irradiation of film and OSLD were within 1%. The PMT showed the LINAC required about 5 pulses before the output stabilized and its long-term stability was within 3% for measurements performed at 3 minutes intervals. The dose, flatness, symmetry, and photon energy were unchanged from baseline and within tolerance (1%, 3%, 2%, and 0.1% respectively) after reverting to conventional beams. Conclusion: 10 MeV FLASH beams were achieved at the isocenter of the treatment room. The beam output was reproducible but requires further investigation of the ramp up time in the first 5 pulses, equivalent to <100 cGy. The eFLASH beam can irradiate both small and large subjects in minimally modified clinical settings and dose rates can be further increased by reducing the source to surface distance.