Literature DB >> 21701053

Experimental determination of the effective point of measurement for various detectors used in photon and electron beam dosimetry.

Hui Khee Looe1, Dietrich Harder, Björn Poppe.   

Abstract

The subject of this study is the 'shift of the effective point of measurement', Δz, well known as a method of correction compensating for the 'displacement effect' in photon and electron beam dosimetry. Radiochromic EBT 1 films have been used to measure the 'true' TPR curves of 6 and 15 MV photons and 6 and 9 MeV electrons in the solid water-equivalent material RW3. For the Roos and Markus chambers, the cylindrical 'PinPoint', 'Semiflex' and 'Rigid-Stem' chambers, the 2D-Array and the E-type silicon diode (all from PTW-Freiburg), the positions of the effective points of measurement have been determined by direct or indirect comparison between their TPR curves and those of the EBT 1 film. Both for the Roos and Markus chambers, we found Δz = (0.4 ± 0.1) mm, which confirms earlier experimental and Monte Carlo results, but means a shortcoming of the 'water-equivalent window thickness' formula. For the cylindrical chambers, the ratio Δz/r was observed to increase with r, confirming a recent Monte Carlo prediction by Tessier (2010 E2-CN-182, Paper no 147, IDOS, Vienna) as well as the experimental observations by Johansson et al (1978 IAEA Symp. Proc. (Vienna) IAEA-SM-222/35 pp 243-70). According to a theoretical consideration, the shift of the effective point of measurement from the reference point of the detector is caused by a gradient of the fluence of the ionizing particles. As the experiments have shown, the value of Δz depends on the construction of the detector, but remains invariant under changes of radiation quality and depth. Other disturbances, which do not belong to the class of 'gradient effects', are not corrected by shifting the effective point of measurement.

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Year:  2011        PMID: 21701053     DOI: 10.1088/0031-9155/56/14/005

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  5 in total

1.  Addendum to the AAPM's TG-51 protocol for clinical reference dosimetry of high-energy photon beams.

Authors:  Malcolm McEwen; Larry DeWerd; Geoffrey Ibbott; David Followill; David W O Rogers; Stephen Seltzer; Jan Seuntjens
Journal:  Med Phys       Date:  2014-04       Impact factor: 4.071

2.  Protocol for the measurement of the absorbed dose rate to water for a planar 32P beta emitting brachytherapy source: A multi-institutional validation.

Authors:  Liana Mulet; Izabella Barreto; Gil'ad N Cohen; Antonio L Damato; Thomas Mauceri; Jennifer Pursley; Christopher L Deufel
Journal:  Brachytherapy       Date:  2021-10-24       Impact factor: 2.362

3.  Verification of high-dose-rate brachytherapy treatment planning dose distribution using liquid-filled ionization chamber array.

Authors:  A B Mohamed Yoosuf; Prakash Jeevanandam; Glenn Whitten; Geraldine Workman; Conor K McGarry
Journal:  J Contemp Brachytherapy       Date:  2018-04-30

4.  Technical Note: Characterization of the new microSilicon diode detector.

Authors:  Ann-Britt Schönfeld; Daniela Poppinga; Rafael Kranzer; Rudy Leon De Wilde; Kay Willborn; Björn Poppe; Hui Khee Looe
Journal:  Med Phys       Date:  2019-07-31       Impact factor: 4.071

5.  The use of 0.5rcav as an effective point of measurement for cylindrical chambers may result in a systematic shift of electron percentage depth doses.

Authors:  Princess C Anusionwu; Jorge E Alpuche Aviles; Stephen Pistorius
Journal:  J Appl Clin Med Phys       Date:  2020-01-03       Impact factor: 2.102

  5 in total

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