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Simultaneous measurement of the spectral and temporal properties of a LINAC pulse from outside the treatment room

dc.contributor.authorSánchez-Tembleque Verbo, Victor
dc.contributor.authorSánchez Parcerisa, Daniel
dc.contributor.authorValladolid Onecha, Víctor
dc.contributor.authorFraile Prieto, Luis Mario
dc.contributor.authorUdías Moinelo, José Manuel
dc.date.accessioned2023-06-17T12:32:43Z
dc.date.available2023-06-17T12:32:43Z
dc.date.issued2019-01-07
dc.descriptionWork supported by the Spanish Government (FPA2015-65035-P, RTC-2015-3772-1), Comunidad de Madrid (S2013/MIT-3024 TOPUS-CM) and European Regional Funds. This is a Contribution for the Moncloa Campus of International Excellence, “Grupo de Física Nuclear-UCM”, Ref. 910059. The authors acknowledge partial support by EU's H2020 under MediNet: a Networking Activity of ENSAR-2 (grant agreement 654002).
dc.description.abstractA detection system composed of a CeBr3 scintillating crystal coupled with a photomultiplier tube and connected to a digital oscilloscope was installed in the control room of a Cyberknife™ clinical accelerator during normal irradiation in order to infer the temporal characteristics of the beam and spectral characteristics of the low-intensity scattered radiation present outside the treatment room. Three batches of 20,000 pulses were measured at three different gantry angles. After digitalization and post-processing of the signals, the time profile of the beam pulses was determined with an accuracy of 14 ns with respect to the gating signal, while the energy spectrum of the measured radiation field could be acquired with a resolution of 5.5%. The proposed device makes it possible, thanks to the increased sensitivity of the scintillating crystals and the digital signal processing techniques in place, to monitor the properties of the radiation present outside the bunker produced by the treatment beam, minimizing interference with patient treatment, QA or research activitie
dc.description.departmentDepto. de Estructura de la Materia, Física Térmica y Electrónica
dc.description.facultyFac. de Ciencias Físicas
dc.description.refereedTRUE
dc.description.sponsorshipUnión Europea. Horizonte 2020
dc.description.sponsorshipMinisterio de Ciencia e Innovación (MICINN)
dc.description.sponsorshipComunidad de Madrid
dc.description.sponsorshipCampus de Excelencia Internacional Moncloa
dc.description.statuspub
dc.eprint.idhttps://eprints.ucm.es/id/eprint/63622
dc.identifier.doi10.1016/j.radphyschem.2019.01.002
dc.identifier.issn0969-806X
dc.identifier.officialurlhttps://doi.org/10.1016/j.radphyschem.2019.01.002
dc.identifier.urihttps://hdl.handle.net/20.500.14352/12450
dc.journal.titleRadiation Physics and Chemistry
dc.language.isoeng
dc.page.final5
dc.page.initial1
dc.publisherElsevier
dc.relation.projectIDCAPPERAM (793576); ENSAR-2 (654002)
dc.relation.projectID(FPA2015-65035-P, RTC-2015-3772-1)
dc.relation.projectIDTOPUS-CM (S2013/MIT-3024)
dc.relation.projectIDUCM (910059)
dc.rightsAtribución-NoComercial-SinDerivadas 3.0 España
dc.rights.accessRightsopen access
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/3.0/es/
dc.subject.keywordRadioactivity
dc.subject.ucmFísica (Física)
dc.subject.ucmRadiactividad
dc.subject.unesco22 Física
dc.titleSimultaneous measurement of the spectral and temporal properties of a LINAC pulse from outside the treatment room
dc.typejournal article
dc.volume.number158
dcterms.referencesBeddar, A.S., Mackie, T.R., Attix, F.H., 1992a. Water-equivalent plastic scintillation detectors for high-energy beam dosimetry: i. Physical characteristics and theoretical considerations. Phys. Med. Biol. 37 (10), 1883. Beddar, A.S., Mackie, T.R., Attix, F.H., 1992b. Water-equivalent plastic scintillation detectors for high-energy beam dosimetry: ii. Properties and measurements. Phys. Med. Biol. 37 (10), 1901. Brownridge, J., Samnick, S., Stiles, P., Tipton, P., Veselka, J., Yeh, N., 1984. Determination of the photon spectrum of a clinical accelerator. Med. Phys. 11 (6), 794–796. Ding, G.X., 2002. Energy spectra, angular spread, fluence profiles and dose distributions of 6 and 18 MV photon beams: results of Monte Carlo simulations for a Varian 2100EX accelerator. Phys. Med. Biol. 47 (7), 1025. Fraile, L.M., Mach, H., Vedia, V., Olaizola, B., Paziy, V., Picado, E., Udias, J.M., 2013. Fast timing study of a CeBr3 crystal: time resolution below 120 ps at 60Co energies. Nucl. Instrum. Methods A 701, 235–242. Giza, O., Sanchez-Parcerisa, D., Sanchez-Tembleque, V., Herraiz, J.L., Camacho, J., Avery, S., Udias, J.M., 2019. Photoacoustic dose monitoring in clinical high-energy photon beams. Biomed. Phys. Eng. Express (submitted for publication). Kim, J., Park, E.Y., Jung, Y., Kim, B.C., Kim, J.H., Yi, C.Y., Kim, I.J., Kim, C., 2017. X-ray acoustic-based dosimetry using a focused ultrasound transducer and a medical linear accelerator. IEEE Trans. Radiat. Plasma Med. Sci. 6, 534–540. Ma, C.M., Jiang, S.B., 1999. Monte Carlo modelling of electron beams from medical accelerators. Phys. Med. Biol. 44 (12), R157. Picado, E., Carmona-Gallardo, M., Cal-González, J., Fraile, L.M., Mach, H., Udías, J.M., Vedia, V., 2017. Efficiency measurement and Monte Carlo simulations of a CeBr3. Appl. Rad. Isot. 120, 71–75. Salvat, F., Fernández-Varea, J.M., Sempau, J., 2008. (June). PENELOPE-2008: A code system for Monte Carlo simulation of electron and photon transport. In the Workshop Proceedings, June. Sanchez-Tembleque V., Sanchez-Parcerisa D., Fraile L.M., Udias J., 2017. Medida simultánea del espectro y el perfil temporal del pulso de un LÍNAC desde fuera de la sala. In: Proceedings of XXXVI Meeting of the Spanish Physics Society, Symposium on Nuclear Physics, Santiago, 21st July 2017. Sanchez-Parcerisa, D., Giza, O., Camacho, J., Sanchez-Tembleque, V., Avery, S., Udias, J., 2018. EP-1734: photo-and proto-acoustic dose monitoring in radiosurgery and proton beams. Radiother. Oncol. 127, S928. Van Eijk, C.W., 2002. Inorganic scintillators in medical imaging. Phys. Med. Biol. 47 (8), R85. Vedia, V., Mach, H., Fraile, L.M., Udías, J.M., Lalkovski, S., 2015. Enhanced time response of 1-in. LaBr3(Ce) crystals by leading edge and constant fraction techniques. Nucl. Instrum. Methods A 795, 244–250. Verhaegen, F., Seuntjens, J., 2003. Monte Carlo modelling of external radiotherapy photon beams. Phys. Med. Biol. 48 (21), R107.
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