Dose-area product ratio in external small-beam radiotherapy: beam shape, size and energy dependencies in clinical photon beams




Niemelä Jarkko, Partanen Mari, Ojala Jarkko, Kapanen Mika, Keyriläinen Jani

PublisherIOP PUBLISHING LTD

2021

Biomedical Physics and Engineering Express

BIOMEDICAL PHYSICS & ENGINEERING EXPRESS

BIOMED PHYS ENG EXPR

ARTN 035019

7

3

9

2057-1976

DOIhttps://doi.org/10.1088/2057-1976/abf6aa

https://iopscience.iop.org/article/10.1088/2057-1976/abf6aa

https://research.utu.fi/converis/portal/detail/Publication/58622054



In small-field radiotherapy (RT), a significant challenge is to define the amount of radiation dose absorbed in the patient where the quality of the beam has to be measured with high accuracy. The properties of a proposed new beam quality specifier, namely the dose-area-product ratio at 20 and 10 cm depths in water or DAPR(20,10), were studied to yield more information on its feasibility over the conventional quality specifier tissue-phantom ratio or TPR20,10. The DAPR(20,10) may be measured with a large-area ionization chamber (LAC) instead of small volume chambers or semi-conductors where detector, beam and water phantom positioning and beam perturbations introduce uncertainties. The effects of beam shape, size and energy on the DAPR(20,10) were studied and it was shown that the DAPR(20,10) increases with increasing beam energy similarly to TPR20,10 but in contrast exhibits a small beam size and shape dependence. The beam profile outside the beam limiting devices has been shown to have a large contribution to the DAPR(20,10). There is potential in large area chambers to be used in DAPR measurement and its use in dosimetry of small-beam RT for beam quality measurements.

Last updated on 2024-26-11 at 15:09