Developing a Numerical Model for Determining the Distribution of the Depths of Electric Beam Doses in Modified Plastics

Dades bibliogràfiques
Parent link:Physics of Atomic Nuclei.— .— New York: Springer Science+Business Media LLC.
Vol. 87, iss. 9.— 2024.— P. 1302-1305
Altres autors: Sorokina A. A. Aida Arsenovna, Bulavskaya A. A. Angelina Aleksandrovna, Bushmina E. A. Elizaveta Alekseevna, Grigorieva (Grigorjeva) A. A. Anna Anatoljevna, Miloichikova I. A. Irina Alekseevna, Stuchebrov S. G. Sergey Gennadevich
Sumari:Radiation therapy is a way of treating malignant tumors where ionizing radiation interacts with tumor cells, causing their destruction. However, there is inevitably a side effect on healthy cells during the radiation treatment of malignant tumors. An important task of beam therapy is therefore to ensure the optimum distribution of a dose in order to minimize the impact of radiation on healthy tissues and deliver the maximum dose to the tumor. A device that allows the distribution of a dose’s depth in a patient’s body is a bolus. Boluses for electron beam therapy can now be manufactured by means of three-dimensional printing. The aim of this work is to develop a numerical model for determining the distribution of the depth of an electron beam dose in plastics modified with metallic additives. The use of these materials would allow the creation of smaller boluses that could shorten the manufacturing stage and simplify the procedure for fixing the device on a patient’s body. Numerical models of an electron beam source and plastic boluses are developed using the GEANT4 toolkit. Numerical experiments are performed using the Monte Carlo technique. Distributions of the depths of electron beam doses with nominal energies of 6, 12, and 15 MeV are obtained in modified plastics with copper additives. In the future, the resulting data will allow the thickness of a forming device created from the studied plastics via three-dimensional printing to be selected according to the clinical task
Текстовый файл
AM_Agreement
Idioma:anglès
Publicat: 2024
Matèries:
Accés en línia:https://doi.org/10.1134/S106377882410048X
Статья на русском языке
Format: Electrònic Capítol de llibre
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=681285

MARC

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200 1 |a Developing a Numerical Model for Determining the Distribution of the Depths of Electric Beam Doses in Modified Plastics  |d Разработка численной модели для определения глубинного распределения доз электронов в модифицированных пластиках  |z rus  |f A. A. Sorokina, A. A. Bulavskaya, E. A. Bushmina [et al.] 
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330 |a Radiation therapy is a way of treating malignant tumors where ionizing radiation interacts with tumor cells, causing their destruction. However, there is inevitably a side effect on healthy cells during the radiation treatment of malignant tumors. An important task of beam therapy is therefore to ensure the optimum distribution of a dose in order to minimize the impact of radiation on healthy tissues and deliver the maximum dose to the tumor. A device that allows the distribution of a dose’s depth in a patient’s body is a bolus. Boluses for electron beam therapy can now be manufactured by means of three-dimensional printing. The aim of this work is to develop a numerical model for determining the distribution of the depth of an electron beam dose in plastics modified with metallic additives. The use of these materials would allow the creation of smaller boluses that could shorten the manufacturing stage and simplify the procedure for fixing the device on a patient’s body. Numerical models of an electron beam source and plastic boluses are developed using the GEANT4 toolkit. Numerical experiments are performed using the Monte Carlo technique. Distributions of the depths of electron beam doses with nominal energies of 6, 12, and 15 MeV are obtained in modified plastics with copper additives. In the future, the resulting data will allow the thickness of a forming device created from the studied plastics via three-dimensional printing to be selected according to the clinical task 
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461 1 |t Physics of Atomic Nuclei  |c New York  |n Springer Science+Business Media LLC. 
463 1 |t Vol. 87, iss. 9  |v P. 1302-1305  |d 2024 
610 1 |a electron beam therapy 
610 1 |a boluses 
610 1 |a three-dimensional printing technologies 
610 1 |a distribution of dose depths 
610 1 |a Monte Carlo modeling 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
701 1 |a Sorokina  |b A. A.  |g Aida Arsenovna  |f 2000-  |c specialist in the field of nuclear technologies  |c Research Engineer of Tomsk Polytechnic University  |y Tomsk  |9 88958 
701 1 |a Bulavskaya  |b A. A.  |c Specialist in the field of nuclear technologies  |c Senior Lecturer of Tomsk Polytechnic University, Candidate of Physical and Mathematical Sciences  |f 1993-  |g Angelina Aleksandrovna  |9 22019 
701 1 |a Bushmina  |b E. A.  |c specialist in the field of nuclear technologies  |c Engineer of Tomsk Polytechnic University  |f 2000-  |g Elizaveta Alekseevna  |9 22672 
701 1 |a Grigorieva (Grigorjeva)  |b A. A.  |c nuclear technology specialist  |c engineer of Tomsk Polytechnic University  |f 1995-  |g Anna Anatoljevna  |9 22382 
701 1 |a Miloichikova  |b I. A.  |c physicist  |c Associate Professor of Tomsk Polytechnic University, Candidate of Physical and Mathematical Sciences  |f 1988-  |g Irina Alekseevna  |9 18707 
701 1 |a Stuchebrov  |b S. G.  |c physicist  |c Associate Professor of Tomsk Polytechnic University, Candidate of Physical and Mathematical Sciences  |f 1981-  |g Sergey Gennadevich  |9 15719 
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