JOURNAL DESCRIPTION

The Medical Radiology and Radiation Safety journal ISSN 1024-6177 was founded in January 1956 (before December 30, 1993 it was entitled Medical Radiology, ISSN 0025-8334). In 2018, the journal received Online ISSN: 2618-9615 and was registered as an electronic online publication in Roskomnadzor on March 29, 2018. It publishes original research articles which cover questions of radiobiology, radiation medicine, radiation safety, radiation therapy, nuclear medicine and scientific reviews. In general the journal has more than 30 headings and it is of interest for specialists working in thefields of medicine¸ radiation biology, epidemiology, medical physics and technology. Since July 01, 2008 the journal has been published by State Research Center - Burnasyan Federal Medical Biophysical Center of Federal Medical Biological Agency. The founder from 1956 to the present time is the Ministry of Health of the Russian Federation, and from 2008 to the present time is the Federal Medical Biological Agency.

Members of the editorial board are scientists specializing in the field of radiation biology and medicine, radiation protection, radiation epidemiology, radiation oncology, radiation diagnostics and therapy, nuclear medicine and medical physics. The editorial board consists of academicians (members of the Russian Academy of Science (RAS)), the full member of Academy of Medical Sciences of the Republic of Armenia, corresponding members of the RAS, Doctors of Medicine, professor, candidates and doctors of biological, physical mathematics and engineering sciences. The editorial board is constantly replenished by experts who work in the CIS and foreign countries.

Six issues of the journal are published per year, the volume is 13.5 conventional printed sheets, 88 printer’s sheets, 1.000 copies. The journal has an identical full-text electronic version, which, simultaneously with the printed version and color drawings, is posted on the sites of the Scientific Electronic Library (SEL) and the journal's website. The journal is distributed through the Rospechat Agency under the contract № 7407 of June 16, 2006, through individual buyers and commercial structures. The publication of articles is free.

The journal is included in the List of Russian Reviewed Scientific Journals of the Higher Attestation Commission. Since 2008 the journal has been available on the Internet and indexed in the RISC database which is placed on Web of Science. Since February 2nd, 2018, the journal "Medical Radiology and Radiation Safety" has been indexed in the SCOPUS abstract and citation database.

Brief electronic versions of the Journal have been publicly available since 2005 on the website of the Medical Radiology and Radiation Safety Journal: http://www.medradiol.ru. Since 2011, all issues of the journal as a whole are publicly available, and since 2016 - full-text versions of scientific articles. Since 2005, subscribers can purchase full versions of other articles of any issue only through the National Electronic Library. The editor of the Medical Radiology and Radiation Safety Journal in accordance with the National Electronic Library agreement has been providing the Library with all its production since 2005 until now.

The main working language of the journal is Russian, an additional language is English, which is used to write titles of articles, information about authors, annotations, key words, a list of literature.

Since 2017 the journal Medical Radiology and Radiation Safety has switched to digital identification of publications, assigning to each article the identifier of the digital object (DOI), which greatly accelerated the search for the location of the article on the Internet. In future it is planned to publish the English-language version of the journal Medical Radiology and Radiation Safety for its development. In order to obtain information about the publication activity of the journal in March 2015, a counter of readers' references to the materials posted on the site from 2005 to the present which is placed on the journal's website. During 2015 - 2016 years on average there were no more than 100-170 handlings per day. Publication of a number of articles, as well as electronic versions of profile monographs and collections in the public domain, dramatically increased the number of handlings to the journal's website to 500 - 800 per day, and the total number of visits to the site at the end of 2017 was more than 230.000.

The two-year impact factor of RISC, according to data for 2017, was 0.439, taking into account citation from all sources - 0.570, and the five-year impact factor of RISC - 0.352.

Medical Radiology and Radiation Safety. 2026. Vol. 71. № 4

DOI:10.33266/1024-6177-2026-71-4-145-148

M.V. Yakovlev

FORMATION OF A PROTON BEAM FOR RADIATION THERAPY

Central Research Institute of Mechanical Engineering, Korolev, Russia

Contact person:  M.V. Yakovlev, e-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.

 

ABSTRACT

Purpose: To develop and substantiate new techniques for forming a proton beam for radiation therapy that ensure a uniform distribution of the absorbed dose within the clinical target volume (CTV) while reducing the radiation burden on healthy tissues. Special attention is paid to methods that do not require reconfiguration of accelerator systems and are, consequently, suitable for real-time use.

Methods: The study considers two main approaches. The first is based on scanning the clinical target volume with the Bragg peak using a rotating disk made of tissue-equivalent material with an annular groove of variable depth (Patent No. 2823897) or using a combination of two absorbing filters for a “pencil” proton beam (Patent No. 2837979). The second method (Patent No. 2823905) consists of converting a monoenergetic beam into a beam of complex spectral composition by passing protons through a set of filters of varying thicknesses, fixed as segments on a rotating disk. The thickness and width of the filters are selected proportionally to the difference in proton ranges and the amplitudes of the histogram columns of the desired spectrum.

Results: Thus, the proposed techniques allow for:

‒ Scanning the CTV with the Bragg peak in depth without the need for accelerator retuning.

‒ Reproducing both uniform and complex absorbed dose distributions (by varying the groove profile and disk rotation speed).

‒ Converting a monoenergetic proton beam into a beam with an arbitrary spectral composition, reproducing the histogram of a given spectrum in terms of mean particle energy and relative quantity.

‒ Reducing the dose burden on healthy tissues compared to the passive scattering method and reducing the volume of pre-calculations.

Conclusions: The developed techniques for Bragg peak scanning and forming a complex spectral composition of the beam are effective, require no modification of accelerator systems, and can be used in real-time during radiation therapy sessions, as well as for experimental testing of treatment procedures. Their application helps improve irradiation accuracy and reduce undesirable radiation effects on surrounding healthy tissues.

Keywords:   proton beam, radiation therapy, clinical volume, absorbed dose, scanning technique, proton spectrum conversion

For citation:  Yakovlev MV. Formation of a Proton Beam for Radiation Therapy. Medical Radiology and Radiation Safety. 2026;71(4):145–148. DOI:10.33266/1024-6177-2026-71-4-145-148

 

References

1.Lebedeva Zh.S. Formirovaniye Doznykh Raspredeleniy v Protonnoy Onkooftal’mologii = Formation of Dose Distributions in Proton Onco-Ophthalmology. Candidate’s Thesis. Physical and Mathematical Sciences. St. Petersburg Publ., 2015, 134 p. (In Russ.).

2.Stroom J., Heijmen B. Safety Margins for Geometric Uncertainties in Radiotherapy and the ICRU-62 Report. Radiother. Oncol. 2002;64:75. 

3.Tsiklotron TS-80: Novyye Perspektivy v Oblasti Yadernoy Meditsiny = The C-80 Cyclotron: New Prospects in Nuclear Medicine. URL: https://www.atomic-energy.ru/SMI/2017/03/31/74329.

4.Shilobreyev B.A., Lazurik V.T., Yakovlev M.V. Granichnyye Effekty v Elementakh Bortovoy Apparatury Kosmicheskikh Apparatov pri Deystvii Potokov Ioniziruyushchego Izlucheniya = Boundary Effects in Elements of Onboard Equipment of Spacecraft Exposed to Ionizing Radiation Fluxes. Moscow, Fizmatlit Publ., 2017. 152 p. (In Russ.). ISBN 978-5-9221-1755-5.

5.Yakovlev M.V., Yakovleva A.D. Sposob Opredeleniya Kharakteristik Poley Ioniziruyushchego Izlucheniya = Method for Determining Characteristics of Ionizing Radiation Fields. Patent No.2823897. Bulletin No.22. Published July 30, 2024 (In Russ.).

6.Yakovlev M.V. Ustroystvo dlya Kontrolya Raspredeleniya Pogloshchennoy Dozy Ioniziruyushchego Izlucheniya = Device for Monitoring the Distribution of the Absorbed Dose of Ionizing Radiation. Patent No.2837979: Bulletin No.10. Published April 7, 2025 (In Russ.).

7.Yakovlev M.V., Yakovleva A.D. Sposob Opredeleniya Pogloshchennoy Dozy v Tonkikh Sloyakh Veshchestva pri Obluchenii Elektronami s Energiyey 0,1–10,0 MeV = Method for Determining the Absorbed Dose in thin Layers of Matter when Irradiated with Electrons with an Energy of 0.1–10.0 MeV. Patent No.2823905. Bulletin No.22. Published July 30, 2024 (In Russ.).

 

 PDF (RUS) Full-text article (in Russian)

 

Conflict of interest.The authors declare no conflict of interest.

Financing.  The study had no sponsorship.

Contribution. The article was prepared by one author.

Article received: 20.03.2026. Accepted for publication: 25.04.2026.

 

 

Contact Information

 

46, Zhivopisnaya st., 123098, Moscow, Russia Phone: +7 (499) 190-95-51. E-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.

Journal location

Attendance

4398877
Today
Yesterday
This week
Last week
This month
Last month
For all time
1582
3494
5076
28992
36801
106570
4398877

Forecast today
2976


Your IP:2600:1f28:365:80b0:447d:1359:2b40:8a31