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Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy

BACKGROUND AND PURPOSE: The standard dosimetry system of medical accelerators in radiotherapy consists of an ionization chamber, an electrometer, and cables. Guidance for TG‐51 reference dosimetry reported that the electrometer correction factor (P (elec)) should be checked every few years. Therefor...

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Autores principales: Kawashima, Motohiro, Varnava, Maria, Ozawa, Shuichi, Okada, Hiroki, Higuchi, Hiromitsu, Hoshino, Yoshihiko, Tashiro, Mutsumi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10402674/
https://www.ncbi.nlm.nih.gov/pubmed/37357597
http://dx.doi.org/10.1002/acm2.14082
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author Kawashima, Motohiro
Varnava, Maria
Ozawa, Shuichi
Okada, Hiroki
Higuchi, Hiromitsu
Hoshino, Yoshihiko
Tashiro, Mutsumi
author_facet Kawashima, Motohiro
Varnava, Maria
Ozawa, Shuichi
Okada, Hiroki
Higuchi, Hiromitsu
Hoshino, Yoshihiko
Tashiro, Mutsumi
author_sort Kawashima, Motohiro
collection PubMed
description BACKGROUND AND PURPOSE: The standard dosimetry system of medical accelerators in radiotherapy consists of an ionization chamber, an electrometer, and cables. Guidance for TG‐51 reference dosimetry reported that the electrometer correction factor (P (elec)) should be checked every few years. Therefore, continuous Pelec measurements have not been reported. The purpose of this study is to measure the Pelec with a charge generator at our institution and to evaluate variations over time. The measurements are compared with calibration data given by an Accredited Dosimetry Calibration Laboratory (ADCL). MATERIALS AND METHODS: We used four reference‐class electrometers: RT521R (RTQM system/EMF Japan), Model 35040 (FLUKE), RAMTEC Duo (Toyo medic), and UNIDOS‐E (PTW). Each electrometer was connected to the charge generator, and the required charge was applied. The measurement points used were the same as those used for calibration by the ADCL. From the measured charges at each point, the P (elec) was obtained from the slope of the linear regression function. The measurements were repeated over a 3‐month period to evaluate variations over time for each electrometer. Additionally, error budgets for the P (elec) measurements were estimated, and the overall uncertainty was determined. RESULTS: The measured P (elec) values were 1.0000, 0.9995, 1.0009/0.9999, and 0.9995/0.9998 for RT521R, Model 35040, the low/medium (L/M) ranges of RAMTEC Duo, and the L/M ranges of UNIDOS‐E, respectively. The measured P (elec) values agreed within 0.1% with those given by the ADCL. We found a small drift in the measurements for one electrometer. Additionally, the uncertainty considered was 0.26% for k = 2 (k, coverage factor). CONCLUSION: In this study, stable P (elec) values were obtained for four electrometers using a charge generator over a three‐month period. The measured P (elec) values were within the overall uncertainty stated in the electrometer guidelines. However, performing periodic measurements for the P (elec) was able to help in detecting small errors.
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spelling pubmed-104026742023-08-05 Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy Kawashima, Motohiro Varnava, Maria Ozawa, Shuichi Okada, Hiroki Higuchi, Hiromitsu Hoshino, Yoshihiko Tashiro, Mutsumi J Appl Clin Med Phys Radiation Measurements BACKGROUND AND PURPOSE: The standard dosimetry system of medical accelerators in radiotherapy consists of an ionization chamber, an electrometer, and cables. Guidance for TG‐51 reference dosimetry reported that the electrometer correction factor (P (elec)) should be checked every few years. Therefore, continuous Pelec measurements have not been reported. The purpose of this study is to measure the Pelec with a charge generator at our institution and to evaluate variations over time. The measurements are compared with calibration data given by an Accredited Dosimetry Calibration Laboratory (ADCL). MATERIALS AND METHODS: We used four reference‐class electrometers: RT521R (RTQM system/EMF Japan), Model 35040 (FLUKE), RAMTEC Duo (Toyo medic), and UNIDOS‐E (PTW). Each electrometer was connected to the charge generator, and the required charge was applied. The measurement points used were the same as those used for calibration by the ADCL. From the measured charges at each point, the P (elec) was obtained from the slope of the linear regression function. The measurements were repeated over a 3‐month period to evaluate variations over time for each electrometer. Additionally, error budgets for the P (elec) measurements were estimated, and the overall uncertainty was determined. RESULTS: The measured P (elec) values were 1.0000, 0.9995, 1.0009/0.9999, and 0.9995/0.9998 for RT521R, Model 35040, the low/medium (L/M) ranges of RAMTEC Duo, and the L/M ranges of UNIDOS‐E, respectively. The measured P (elec) values agreed within 0.1% with those given by the ADCL. We found a small drift in the measurements for one electrometer. Additionally, the uncertainty considered was 0.26% for k = 2 (k, coverage factor). CONCLUSION: In this study, stable P (elec) values were obtained for four electrometers using a charge generator over a three‐month period. The measured P (elec) values were within the overall uncertainty stated in the electrometer guidelines. However, performing periodic measurements for the P (elec) was able to help in detecting small errors. John Wiley and Sons Inc. 2023-06-26 /pmc/articles/PMC10402674/ /pubmed/37357597 http://dx.doi.org/10.1002/acm2.14082 Text en © 2023 The Authors. Journal of Applied Clinical Medical Physics published by Wiley Periodicals, LLC on behalf of The American Association of Physicists in Medicine. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Radiation Measurements
Kawashima, Motohiro
Varnava, Maria
Ozawa, Shuichi
Okada, Hiroki
Higuchi, Hiromitsu
Hoshino, Yoshihiko
Tashiro, Mutsumi
Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy
title Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy
title_full Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy
title_fullStr Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy
title_full_unstemmed Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy
title_short Assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy
title_sort assessment of a self‐inspection method and reporting measured electrometer correction factors for reference‐class electrometers in radiotherapy
topic Radiation Measurements
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10402674/
https://www.ncbi.nlm.nih.gov/pubmed/37357597
http://dx.doi.org/10.1002/acm2.14082
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