|
Theme leader: | I.G. Pirozhenko |
Rector of DIAS-TH: | D.I. Kazakov |
Participating Countries and International organizations:
The problem under study and the main purpose of the reserch:
Projects in the theme: | |||
Name of the project | Project Leaders | Project code |
|
1. | Dubna International Advanced School of Theoretical Physics (DIAS-TH) |
I.G. Pirozhenko
D.I. Kazakov
|
09-3-1117-1-2024/2028 |
Projects: | |||
Name of the project | Project Leaders | ||
Laboratory (Responsible from laboratories) | |||
1. | Dubna International Advanced School of Theoretical Physics (DIAS-TH) |
I.G. Pirozhenko
D.I. Kazakov
|
BLTP |
N.V. Antonenko, A.N. Baushev, E.A. Davydov, M. Hnatic, A.P. Isaev, M.A. Ivanov, R.V. Jolos, O.P. Klimenko, E.A. Kolganova, V.A. Osipov, M.V. Savina, S.S. Sidorov, Sorin A.S., A.A. Starobinsky, O.V. Teryaev, P.V. Tretyakov, V.I. Zhuravlev, + 4 students
|
MLIT | Yu.L. Kalinovsky, V.V. Korenkov, S.V. Shmatov |
FLNP |
V.L. Aksenov
|
VBLHEP | V.D. Kekelidze |
DLNP | V.A. Bednyakov, D.V. Naumov |
FLNR | A.S. Denikin, V. Khudoba, Yu.Ts. Oganessian |
Brief annotation and scientific rationale:
Expected results upon completion of the project:
Expected results of the project in the current year:
|
Theme leaders: | D.V. Kamanin A.Yu. Verkheev |
Participating Countries and International organizations:
Armenia, Azerbaijan, Belarus, Bulgaria, CERN, Cuba, Egypt, Kazakhstan, Moldova, Mongolia, Russia, Serbia, South Africa, Tunisia, Uzbekistan, Vietnam.
The problem under study and the main purpose of the reserch:
Development of the human resources training programmes at JINR aimed at further employment of the trainees as scientific and engineering specialists of the Institute is a key task, which includes work with various target audiences, including schoolchildren and school teachers.
For these purposes, the UC, together with the universities of the JINR Member States, creates appropriate conditions for students and PhD students from universities of the Member States to enable them to work on their qualification theses based on the research
conducted in the laboratories of the Institute, supports the activities of the JINR-based departments of the universities based in the country of the Institute’s location, participates in the creation and development of network training programmes, trains students, PhD students, and interns on the basis of cooperation agreements with the universities of the JINR Member States and international organizations. An important part of the human resources programme is organization and running of international student practices and schools for young people from the Member States of the Institute; building and maintenance of the laboratory environment intended for hands-on training in scientific and engineering disciplines; support and further development of the system of training courses aimed at gaining or improving professional skills and qualifications of JINR technical and engineering personnel.
Development of the JINR outreach programme aimed at promotion of modern science achievements among school students and teachers, organization of excursions and online tours of the JINR main facilities; participation in science festivals, exhibitions, and forums promoting JINR; development of cooperation and communication with educational centres for school students; design and production of information materials for the JINR information centres, administration of the UC groups in the social media.
- Participation in the development of lecture courses and seminars for students and PhD students of the JINR-based departments of the Russian universities.
- Training of students and PhD students at JINR on the basis of cooperation agreements with the universities of the JINR Member States and other countries.
- Support and further development of the Engineering and Physics Training hands-on activities for students and PhD students from the JINR Member States and partner universities.
- Support of the system of assigning Institute employees to JINR for preparation of their PhD theses without completing the academic programme of the PhD course. Participation in the Institute system of attestation of scientific personnel.
- Organization and running of the JINR student programme "START", online programme "INTEREST", international student schools and practices.
- Launch of the short-term Advanced Science Programmes for Young Researchers and Engineers “ASPYRE” at JINR.
- Further development of the licensed system of training courses aimed at gaining or improving professional skills and qualifications of the technical and engineering personnel of the Institute.
- Implementation of the advanced training programmes for school teachers from the JINR Member States.
- Support of Dubna Interschool Physics and Mathematics Open Classroom and science programmes for school students, interaction with the Physics and Mathematics Lyceum named after Academician V.G. Kadyshevsky and other educational institutions.
- Further development of the partner network of JINR information centres.
- Organization and running of the JEMS programme.
- Development of printed and electronic popular-science informational materials promoting the Institute and modern scientific achievements.
- Provision of JINR partner universities and information centres in the Member States with electronic and printed informational materials.
- Extension of the JINR partner network through further development of educational programmes.
Expected results in the current year:
- Support and supervision of the educational process at the JINR-based departments of the Russian universities.
- Support of the system of assigning young researchers to JINR laboratories for preparation of their PhD theses.
- Organization and running of the International Student Practices in JINR Fields of Research for students of the JINR Member States' universities. Attraction of new countries for participation in the programme.
- Organization and running of the JINR student programme "START" (summer and winter sessions) and online programme "INTEREST" (spring and autumn waves).
- Test-running of the short-term Advanced Science Programmes for Young Researchers and Engineers “ASPYRE” at JINR.
- Organization and running of joint scientific events and schools with partner universities at JINR.
- Support and further development of an information system on the preparation of qualification theses by students and PhD students from universities of the JINR Member States in the Institute laboratories.
- Organization and running of the Engineering and Physics Training hands-on activities for students and PhD students from the JINR Member States, further development of the existing laboratory works, development of laboratory works at LINAC-200. Further development of educational programmes on the accelerator arrangement and beam diagnostics.
- Development of the language courses programme aimed at teaching Russian as a foreign language and English to JINR personnel.
- Running of the training courses aimed at gaining or improving professional skills and qualifications of the technical and engineering personnel of the Institute.
- Organization of scientific schools for physics teachers from the Institute Member States at JINR.
- Further development of educational programmes for high school students from the partner countries of JINR.
- Further development of virtual tours of JINR main facilities and video-conferences with educational institutions of the JINR Member States. Organization and guidance of group visits to JINR for school and university students.
- Promotion of modern educational resources in the JINR Member States.
- Organization of the participation of JINR in science festivals on the basis of Russian universities.
- Further development of the partner network of JINR information centres.
- Organization and running of the JEMS programmes in accordance with the international cooperation plan.
Area of activity | Leaders | ||
Laboratory (Subdivision) Leaders from Laboratories (Responsible from Laboratories) |
|||
1. | Organization of the educational process at JINR |
D.V. Kamanin A.Yu. Verkheev |
DLNP V.A. Bednyakov D.V. Naumov |
A.G. Olshevskiy, A.S. Zhemchugov |
BLTP D.I. Kazakov |
N.V. Antonenko |
FLNP E.V. Lychagin V.N. Shvetsov |
M.V. Avdeev, A.V. Belushkin |
VBLHEP A.V. Butenko N.A. Strokovsky O.V. Belov |
A.I. Malakhov, A.O. Sidorin |
FLNR S.I. Sidorchuk |
A.V. Karpov, A.G. Popeko |
MLIT S.V. Shmatov V.V. Korenkov T.A. Strizh |
O.Yu. Derenovskaya, I.S. Pelevanyuk, O.I. Streltsova |
LRB A.N. Bugay E.A.Krasavin |
I..V. Koshlan |
Directorate V.D. Kekelidze L. Kostov B.N. Gikal |
V.A. Matveev, B.Yu. Sharkov |
ICD O.-A. Culicov |
A.A. Kotova |
2. | Outreach and JINR promotion | A.A. Suschevich |
DLNP |
N.V. Anfimov, M.V. Shirchenko |
BLTP |
A.V. Andreev, A.V. Frizen |
FLNP |
D.M. Chudoba, C. Khramko |
VBLHEP |
D.K. Dryablov |
FLNR |
K.B. Gikal, A.V. Karpov |
MLIT |
I.S. Pelevanyuk |
LRB |
T.S. Khramko, I.A. Kolesnikova, Yu.S. Severyukhin |
Universal JINR library |
M.S. Pilipenko |
3. | Engineering and physics training | M.A. Nozdrin |
VBLHEP | R.V. Pivin, K.G. Osipov |
DLNP | A.N. Trifonov, A.S. Zhemchugov |
FLNR | D.S. Belozerov, A.Yu. Bodrov, V.A. Buzmakov, K.B. Gikal, A.M. Kapitonov, A.V. Khalkin, E.V. Melnik, K.V. Papenkov, A.V. Sabelnikov, K.A. Verlamov, V.Yu. Zhegolev, D.A. Zlydenny |
4. | JINR information centres JEMS programme |
D.V. Kamanin |
DLNP D.V. Naumov |
E.N. Dubovik |
BLTP N.V. Antonenko |
A.V. Andreev |
FLNP V.N. Shvetsov |
D.M. Chudoba |
VBLHEP R. Lednicky |
A.O. Sidorin |
FLNR S.I. Sidorchuk |
G. Kaminski, A.V. Karpov |
MLIT O.Yu. Derenovskaya |
I.S. Pelevanyuk |
LRB A.N. Bugay |
I.V. Koshlan |
DSOA S.N. Nedelko |
A.S. Zhemchugov |
ISD O.-A. Culicov |
E.A. Badawy, Yu.N. Polyakova |
Project in the theme: | |||
Name of the Project | Project Leader | Project Code | |
1. | Open information and educational environment for supporting fundamental and applied multidisciplinary research at JINR | Yu.A. Panebrattsev | 09-9-1139-1-2021.2028 |
Project: | ||||||
Name of the project | Project Leader | |||||
Laboratory (Responsibles from laboratories) |
||||||
1. | Open information and educational environment for supporting fundamental and applied multidisciplinary research at JINR | Yu.A. Panebrattsev |
|
VBLHEP A.P. Cheplakov K.V. Klygina N.E. Sidorov |
A.S. Averichev, А.А. Aparin, O.V. Belov, E.I. Golubeva, A.A. Korobitsyn, N.A. Lashmanov, Vinh Ba Luong, Yu.D. Orlova, M.P. Osmachko, N.E., Pukhaeva, P.D. Semchukov, N.I. Vorontsova, G.A. Yarygin |
FLNR A.V. Karpov A.S. Denikin |
D. Aznabayev, T. Isatayev, S.M. Lukianov, K. Mendibayev, M.A. Naumenko, V.A. Rachkov |
LRB A.N. Bugai I.V. Koshlan |
A.V. Chizhov, D.V. Davydov, I.S. Gordeev, M.I. Kapralov, V.A. Krylov, E.E. Pavlik, A.Yu. Rosanov, A.K. Ryumin |
Brief annotation and scientific rationale:
The integration of science, education and the achievements of modern technologies is becoming especially important as one of the most important factors for the development of the economy and the social structure of a society based on knowledge-intensive technologies. To solve these tasks, it is necessary to combine the efforts of various universities and research centers to create new training courses and research practices.
Multimedia and interactive methods, combined with real data obtained in one of the research centers, could largely solve this problem. The Joint Institute for Nuclear Research, as an international organization, under whose auspices the participating states, associate members and dozens of collaborating universities from around the world, offers its solution to this problem in the form of the implementation of the project “Open information and educational environment for supporting fundamental and applied multidisciplinary research at JINR”
Project purposes:
- The use of modern educational technologies for the preparation of university students and advanced training of specialists for work at JINR.
- Attracting talented young people from the participating countries and countries cooperating with JINR to participate in research projects of the Institute.
- Implementation of the results in the field of fundamental and applied research obtained at JINR into the educational process in the member countries and associate members of JINR. Expanding the geography of cooperation.
- Cooperation with the world’s leading scientific centers and universities in the field of creating educational resources for physics teachers and high school students.
- Increasing the awareness of fundamental and applied multidisciplinary research conducted at JINR and the JINR brand among a wide audience. Placement of courses prepared by leading JINR specialists on international platforms of open education.
- Creation of educational and exhibition content on JINR topics at the level of leading scientific centers.
- Information support of the main areas of fundamental and applied research at JINR.
- Creation of online courses and new educational programs on the subject of the Institute's activities on modern educational platforms.
- Development of a project to create virtual, remote and laboratory practicums for the study of nuclear physics and applied research.
- Development of exhibition activities about the achievements of JINR and modern science in the Russian Federation and countries cooperating with JINR.
- Creation of multimedia resources and web solutions to support JINR information centers.
- Creation of electronic educational materials and research laboratory practicums for schoolchildren to study physics and biology at an advanced level in schools of the Russian Federation and partner countries.
- Creation and development of an information system for supporting applied research at the NICA accelerator complex (ARIADNA project).
- Creation and development of a web-based knowledge base on low energy nuclear physics “Nuclear Reaction Video 2.0”.
- Conclusion of an agreement on cooperation with NRNU MEPhI in the field of creating online courses in nuclear physics, engineering, atomic and related technologies and their further publishing at the educational portals of JINR (edu.jinr.ru) and NRNU MEPhI (online.mephi.ru).
- Creation of an exhibition item — a full-scale model of the NICA collider magnet using real equipment components and augmented reality (AR) elements.
- Development of a virtual practicum on radiobiology for working with an electron microscope on the example of the study of microfossils and organic compounds in meteorites and in ancient terrestrial rocks.
- Development of a platform for remote practicums together with iThemba LABS.
- Development of hands-on practicums and new virtual laboratory works on nuclear electronics and the basics of detection of ionizing particles.
- Organizing practices and workshops for university students.
- Development of the JINR – iThemba LABS Corner exposition. Creation of a series of videos on the basics of experimental nuclear physics for schoolchildren for the JINR – iThemba LABS Corner exposition.
- Creation of electronic educational materials for the study of physics at advanced level in grades 7–9 for the training of future engineers (project “Physics 7–9. Engineers of the Future”).
- Creation of electronic educational materials for the elective course “Nuclear Physics” for a specialized school, including research practicums in nuclear physics (hands-on, virtual and remote).
|
Country or International Organization | City | Institute or laboratory |
Belarus | Minsk | INP BSU |
CERN | Geneva | CERN |
China | Hefei | ASIPP |
Georgia | Tbilisi | HEPI-TSU |
Germany | Hamburg | DESY |
Italy | Pisa | INFN |
Moldova | Chisinau | MSU |
Russia | Moscow | FMBA |
FMBC | ||
IBMP RAS | ||
Nizhny Novgorod | IAP RAS | |
Petropavlovsk-Kamchatsky | FRC GC RAS | |
KSU | ||
Puschino | ITEB RAS | |
Saratov | SSU | |
Slovakia | Bratislava | IEE SAS |
South Africa | Somerset West | iThemba LABS |
|
Analytical and Methodological Developments
for the Organization of Scientific Research and International Cooperation
in the Main Directions of JINR Development
Theme leaders: | V. A. Matveev S.N. Nedelko O.-A. Culicov |
Member States of JINR, states participating in JINR activities on the basis of bilateral agreements, international organizations.
The problem under study and the main purpose of the research:
Development of analytical materials concerning prospects of scientific research. Preparation of scientific research plans. Development of science-organization and methodological materials for the special-purpose financing of research areas, themes and projects. Development and application of information systems for the analysis of results of theoretical and experimental research. Organization of international cooperation with the Member States of JINR, with states participating in JINR activities on the basis of bilateral agreements, and with scientific research institutions with which JINR has collaboration agreements.
Expected results in the current year:
- Improvement of the organization and coordination of JINR scientific research work.
- Analysis of the results of JINR activities for 2023 in the main research areas.
- Update, administration and support of the electronic system for maintaining the Topical Plan for JINR Research and International Cooperation (Topical Plan). Preparation for the publication of the Topical Plan for the year 2025. Identification of JINR’s priority research directions for 2025.
- Development of JINR’s grantmaking activities and participation in special-purpose programmes for financing scientific research in 2024.
- Preparation of analytical materials for ministries and agencies.
- Development and promotion of JINR’s information resources on the Internet. Support of the system of accounting of protocols on scientific and technological cooperation.
- Promotion of realization of JINR’s right to independently confer academic degrees. Support of the operation of JINR’s dissertational councils.
- Preparation for the publication of the JINR Annual Report for 2023. Preparation of materials for the INIS system.
- Scientific and organizational support and preparation of materials of JINR’s governing and advisory bodies.
- Prompt interaction with representatives of Member States and states participating in the activities of JINR on the basis of bilateral agreements in the fields of scientific research. Organization and holding of meetings of cooperation committees. Interaction with international organizations.
- Organization and holding of contests for JINR Prizes, preparation of materials for nominating candidates for memberships in academies of sciences, for conferring honorary titles, for awarding medals and other decorations.
Area of activity | Leaders | ||
Laboratory (Subdivision), Responsible from Subdivision | |||
1. | Preparation for the publication of the Topical Plan |
S.N. Nedelko A.S. Zemchugov |
DSOA | N.A. Boklagova, D.S. Korobov, N. Kučerka |
2. | Support and improvement of the operation of JINR’s governing and advisory bodies |
S.N. Nedelko O.-A. Culicov |
DSOA | T.V. Bogdanova, N.A. Boklagova, T.B. Ivashkevich, D.S. Korobov, N. Kučerka, N.I. Sissakian |
ICD | Al-Maaitah D.O., O.N. Belova, N.M. Dokalenko, O.M. Korotchik, A.A. Kotova, Polykova Yu.N. |
3. | Preparation of analytical materials for ministries and agencies |
S.N. Nedelko O.-A. Culicov A.S. Zhemchugov |
DSOA | N.A. Boklagova, S.V. Degtyarev, D.S. Korobov, O.V. Krupa, N.I. Sissakian |
ICD | E. Badavi, T.V. Keselis, M. Khvedelidze, A.A. Kotova, D. Markoviс |
UC | D.V. Kamanin |
STL | E.V. Ivanova, V.V. Litsitis |
4. | Development of JINR’s grantmaking activities and participation in special-purpose programmes for financing scientific research |
S.N. Nedelko O.-A. Culicov |
DSOA | N.A. Boklagova, D.S. Korobov. N.I. Sissakian |
5. | Support for the operation of JINR’s dissertation councils |
S.N. Nedelko A.S. Zhemchugov |
DSOA | T.B. Ivashkevich, N.I. Sissakian |
VBLHEP | O.V. Belov |
6. | Organizational support for JINR’s activities under Russian and international protocols and agreements |
S.N. Nedelko O.-A. Culicov |
DSOA | S.V. Degtyarev, N. Kučerka, N.I. Sissakian |
ICD | E. Badavi,, T.V. Keselis, A.A. Kotova |
UC | D.V. Kamanin |
7. | Provision for the operation and development of JINR’s Internet resources |
S.N. Nedelko O.-A. Culicov |
DSOA | N.A. Boklagova, D.S. Korobov, A.G, Nanev, N.I. Sissakian, B.M. Starchenko |
SCSS | N.V. Borozna, N.A., Bykova, N.V. Zaikina, K.P. Moisenz |
UC | D.V. Kamanin, A.A. Suschevich, A.Yu. Verkheev |
Editorial office of the weeklynewspaper "Dubna: science,community, progress" |
E.M. Molchanov |
8. | Preparation for the publication of the quarterly bulletin "JINR News" and the JINR Annual Report | S.N. Nedelko A.S. Zhemchugov |
DSOA | E.S. Asanova, I.V. Kronshtadtova, B.M. Starchenko, Yu.G. Shimanskaya, I.Yu. Shcherbakova |
9. | Preparation of materials for the INIS system | S.N. Kruglova |
DSOA | B.M. Starchenko |
10. | International cooperation | O.-A. Culicov |
ICD | E. Badavi, A.G. Kolesnikova, T.V. Keselis, M. Khvedelidze, A.A. Kotova, D. Markovic, Yu.N. Polyakova |
DSOA | N.A. Boklagova, D.S. Korobov, N. Kučerka, A.S. Zhemchugov |
|
Theme leaders: | V.V. Glagolev G.A. Shelkov |
Deputy: | V.V. Tereschenko |
The problem under study and the main purpose of the research:
In addition to the Projects highlighted below, the task of particular importance is the complete of commissioning of the basis facility of DLNP - the linear electron accelerator LINAC-200.
The main objectives of the research at the LINAC-200 linear electron accelerator for the upcoming 7-year period are:
– providing electron beams with energies of up to 200 MeV (with a possible increase in energy up to 800 MeV) for research and scientific and methodological work on the creation of detectors of elementary particles at JINR and in scientific centres of the member states for experiments at the NICA collider and other facilities, including those outside JINR;
– study of controlled generation of electromagnetic radiation by relativistic electrons based on the use of functional materials, search for new methods and creation of equipment for beam diagnostics in accelerators;
– carrying out research work on the creation of beams of relativistic electrons with a large orbital momentum;
– implementation of educational programmes of the JINR University Centre;
– conducting research, including applied studies in the field of radiation materials science, radiobiology, radiochemistry.
The expected operating time of the accelerator within the framework of the open user programme will be at least 2000 hours per year.
The goal of the project "Design and development of a test zone for methodological studies of detectors at the linear electron accelerator at DLNP" is to create an infrastructure based on the LINAC-200 for methodological studies using electron beams with energies from 20 MeV to 200 MeV.
Within the project "Precision laser metrology for accelerators and detector complexes", the main objectives are to carry out scientific research and methodological studies on the development of Precision Laser Inclinometers for their application to scientific and applied tasks (monitoring the position of collider elements, improving the accuracy of measurements of Gravity antennas, earthquake forecasting); improvement of methods of metrological measurements; creation of a seismically isolated platform.
The goal of the project "Development of experimental techniques and applied research on monochromatic positron beams (PAS)" is to create a facility to study the structure of various materials and defects arising under various physical influences (aging, external loads, radiation exposure). One of the methods is positron annihilation spectroscopy (PAS). This method is sensitive to the detection of various (so-called "open-volume") defects ranging in size from 0.1 to 1 nm with a minimum concentration of up to 10–7 cm–3. The PAS method has four orders of magnitude better spatial resolution compared to the transmission electron microscope.
Under the project "New semiconductor detectors for fundamental and applied research", the main goal is the development and methodological study of a new class of physical devices - hybrid pixel semiconductor detectors operating in the mode of counting individual particles. These devices first appeared at the turn of the 2000 s and differ from other pixel detectors by the ability to process and digitize the signal directly in the pixel, which makes it possible to obtain data on the energy of each particle falling into an individual pixel in addition to coordinate information.
Under the project "GDH & SPASCHARM & NN": the introduction equipment operating at ultralow temperatures and polarized targets into the practice of physical experiment and conduct of polarization studies. Participation in innovative projects using cryogenic, magnetic and polarization technologies.
Projects in the theme: | |||
Name of the project | Project Leader | Project code | |
1. | Design and development of a test zone for methodological studies of detectors at a linear electron accelerator LINAC-200 in the DLNP | M.I.Gostkin Deputy: E.S. Abdelshakur |
08-2-1126-1-2024/2028 |
2. | Precision laser metrology for accelerators and detector complexes | V.V. Glagolev M.V. Lyablin |
08-2-1126-2-2016/2028 |
3. | Development of experimental techniques and applied research with slow monochromatic positron beams (PAS) |
A.A. Sidorin Scientific leader: I.N. Meshkov |
08-2-1126-3-2016/2028 |
4. | Novel semiconductor detectors for fundamental and applied research |
G.A. Shelkov Deputy: V.A. Rozhkov |
08-2-1126-4-2015/2028 |
5. | GDH&SPASCHARM | Yu.A.Usov Deputy: Yu.A.Plis |
08-2-1126-5-2011/2028 |
Projects: | ||||
Name of the project | Leaders | |||
Laboratory (Responsible from laboratories) | ||||
1. | Design and development of a test zone for methodological studies of detectors at a linear electron accelerator LINAC-200 in the DLNP | M.I. Gostkin Deputy: E.S. Abdelshakur |
|
|
DLNP | D.L. Demin, M.A. Demichev, A.S. Zhemchugov, V.G. Kruchonok, A.A. Nozdrin, S.Yu. Porokhovoy, D.V. Kharchenko |
|||
FLNR | S.V. Mitrofanov, Yu.G. Teterev |
|||
VBLHEP | V.V. Kobets |
Brief annotation and scientific rationale:
Scientific and methodological studies of elementary particle detectors are a necessary condition for the progress of nuclear physics and high energy physics. Preparation of experiments at future accelerators requires new types of detectors capable of coping with large loads and providing the required accuracy and reliability of particle detection. Development of new detectors is also important for applied research based on the use of synchrotron radiation sources and intense X-ray facilities. In particular, creation of new SR sources and super-powerful lasers in the JINR Member States leads to the creation of experimental stations based on detectors with high spatial and energy resolution.
The lack of facilities with test electron beams at JINR significantly slows down progress in development of new types of electromagnetic calorimeters and coordinate detectors for future MPD and SPD experiments at the NICA collider, photon imaging detectors, radiation-resistant detectors and dosimetric instruments. The purpose of the presented project is to create an infrastructure based on the linear electron accelerator LINAC-200 for methodological research on electron beams with an energy of 20 MeV and 200 MeV. It is planned to use a test area based on LINAC-200 and for conducting experiments on the study of photonuclear reactions, for applied research (radiation materials science, radiation genetics, etc.)
Expected results upon completion of the project:
As a result of the implementation of the project, an equipped test zone will appear at the LINAC-200 accelerator of DLNP JINR for carrying out scientific methodological and scientific experimental work by JINR groups and institutes of the JINR Member States.
Expected results of the project this year:
Measurement of electron beam characteristics (emittance, energy, focusing...) at energies of 20 and 200 MeV.
Launching a hodoscope based on MWPC.
Development a computer model of the test zone in GEANT4.
Study of dose measurement methods for biological and materials science purposes.
2. | Presicion laser metrology for accelerators and detector complexes |
V.V. Glagolev M.V. Lyablin |
|
||
DLNP | I.V. Bednyakov, S.A. Bednyakov, K.S. Bunyatov, Yu.I. Davydov, Yu.V. Klemeshov, S.M. Kolomoets, A.V. Krasnoperov, A.M. Kuzkin, R.V. Ni, A.A. Pluzhnikov, K.D. Polyakov, G.D. Shirkov, S.N. Shilov, S.N. Studenov, G.T. Torosyan |
||||
BLTP | A.N. Baushev |
||||
GA&C | G.V. Trubnikov |
Brief annotation and scientific rationale:
The implementation of the project is aimed at long-term monitoring of the behaviour of the base of the collider (NICA) to track critical design changes that can cause beam deviations from the calculated orbits. Also, monitoring will make it possible to control angular vibrations of the collider elements from microseismic noise of industrial and natural origin in order to identify sources of noise and frequencies that coincide with the resonant frequencies of the collider elements, which can lead to a decrease in luminosity.
An equally important component of the project is development of a compact inclinometer capable of measuring changes in the angles of inclination of the surface with an accuracy of about 10-8 radians throughout the year, and further, building of a network of such inclinometers in seismic regions to determine energy accumulation zones and potentially seismic areas.
Expected results upon completion of the project:
Creation of a network of small-sized laser inclinometers (MPLIs) for monitoring the behaviour of the base of the collider (NICA) to track critical design changes that can cause beam deviations from the calculated orbits. Creation of a hardware-software complex for synchronization and processing of MPLI data. Creation of software for visualization of changes in the position of the Earth's surface under the NICA collider.
Modification of the current MPLIversion for long-term stable operation for 6-12 months with angular measurements accuracy of 10-7 rad at remote geodetic points, powered by solar panels.
R&D on a new version of the MPLI - an interferometric PLI (IPLI), which has a weak temperature dependence and less expensive production based on available components.
Based on the sets of modified MPLIs and IPLIs, carry out deployment of networks to determine the regions of seismic energy accumulation and monitor objects on the territory of Kamchatka, Armenia, Belarus and Uzbekistan.
Create the necessary software for receiving data from the PLI network, online control, visualization of the Earth's surface by a controlled network, algorithms (including machine learning, neural networks) for determining zones of increased accumulation of seismic energy.
Creation of a prototype of an amplitude interferometric length meter for a length of 16 m, creation of a prototype of a laser reference line for a length of 128 m, creation of a prototype of a seismically stabilized research platform, use of compact MPLIs to improve the frequency parameters of the gravitational antennas of the VIRGO detector.
Expected results of the project this year:
Complete research work on the creation of an Interference Precision Laser Inclinometer (IPLI).
Install the third MPLI at the point of beam ejection to the MPD hall of the NICA collider.
Install MPLI at the geophysical observatory Naroch in Belarus.
3. | Development of experimental techniques and applied research with slow monochromatic positron beams (PAS) |
A.A. Sidorin Scientific leader: I.N. Meshkov |
|
||
DLNP | E.V. Akhmanova, V.I. Hilinov, Nguyen Vu Minh Trung, O.S. Orlov, E.P. Popov, A.Yu. Rudakov, S.F. Samedov |
||||
VBLHEP | V.V. Kobets, I.N. Meshkov |
Brief annotation and scientific rationale:
Applied research in the field of solids by PAS methods and the development of experimental techniques using these methods are among the goals of the project. To study defects in materials, the annihilation line Doppler broadening (DBAL) method is used, which is implemented on a flow of slow monochromatic positrons. The DBAL spectrometer is made according to the standard scheme. The Positron Annihilation Lifetime Spectroscopy (PALS) method implemented on an autonomous 22Na source is also used. To develop the experimental base, the PALS method is being introduced on a flow of slow monochromatic positrons. The group proposed an original version of this method based on the formation of an ordered stream of slow positrons.
Expected results upon completion of the project:
- Improvement of the DBAL spectrometer by adding to the measurement scheme the possibility of registering the coincidence of two annihilation gamma quanta.
- Completion of the positron ordering system and commissioning of the PALS spectrometer on a monochromatic positron beam.
- Development of the ion etching technique using the created etching system and its application to the study of thin-film multilayer materials.
- There is a problem of high-temperature vacuum heating, which can be solved by heating samples with an electron beam. The available technical capabilities make it possible to implement this heating method.
Expected results of the project this year:
- Continuation of applied research together with TPU, SAFU.
- Applied research of radiation resistance of refractory materials.
- Manufacturing and testing of the voltage generation system of the required shape on the resonator.
4. | Novel semiconductor detectors for fundamental and applied research |
G.A. Shelkov Deputy: V.A. Rozhkov |
|
||
DLNP | S. Abdelshakur, N.N. Kaurtsev, A.V. Lapkin, S.A. Malinin, R.V. Sotensky |
||||
FLNR | A.T. Isatov, S. Mitrofanov, Yu.G. Teterev |
||||
FLNP | A.A. Ahmedov, D. Berikov, Yu.N. Kopach |
||||
LRB | A.N. Bugay, A.V. Chizhov |
Brief annotation and scientific rationale:
In 2015, topic 1126 was opened. The main goal of the work is the development and methodological research of a new class of physical devices - hybrid pixel semiconductor detectors operating in the single-particle counting mode. These devices first appeared at the turn of the 2000s. and differ from other pixel detectors by the ability to process and digitize the signal directly in the pixel, which makes it possible to obtain data on the energy of each particle falling into an individual pixel in addition to coordinate information.
The ability to detect and identify certain substances in certain parts of the human body provides crucial information about metabolic pathways, tissue components, and delivery mechanisms for these substances. This problem is of particular importance in the study of drug delivery. To carry out such studies using X-ray CT is currently difficult due to the lack of available detecting systems with high spatial resolution and capable of measuring the energy of gamma rays. The purpose of this project is to create a hardware and software basis for the development of detection systems with hybrid pixel detectors and X-ray diagnostic equipment based on them.
Expected results upon completion of the project:
The main direction of further work will be development of our own pixel chip and manufacture of new energy-sensitive semiconductor detectors of X-ray images and equipment for:
- creation of a hardware and software basis for the development of new types of radiographic devices for medical diagnostics, including computed tomography;
- improvement of methods for identifying substances in X-ray studies using data on the measured energy of gamma rays.
Expected results of the project this year:
- Manufacturing and testing of the first samples of the developed chip.
- Continuation of joint work with chemists of Moscow State University on the MARS microtomograph.
5. | GDH&SPASCHARM | Yu.A. Usov |
|
||
DLNP | N.A. Bazhanov, D.V. Belov, N.S. Borisov, A.S. Dolzhikov, A.N. Fedorov, I.V. Gapienko, I.S. Gorodnov, V.L. Kashevarov, A. Kovalik, E.S. Kuzmin, A.B. Neganov, A.A. Priladyshev, Yu.A. Plis, A.B. Sadovsky, Yu.N. Uzikov, V.P. Volnykh |
||||
BLTP | S.B. Gerasimov |
||||
VBLHEP | V.V. Fimushkin, M.V. Kulikov, L.V. Kutuzova |
Brief annotation and scientific rationale:
1) Experimental study of one-spin asymmetries in the production of various light particles using a pion beam with an energy of 28 GeV at the first stage, and the study of one-spin and two-spin asymmetries in dozens of reactions, including those with the formation of charmonium, using a polarized proton beam (SPASCHARM project).
The ultimate goal of the SPASCHARM project is to study the spin structure of the proton, starting with determining the contribution of gluons to the spin of the proton at large values of the Björken variable x by studying the spin effects in the formation of charmonium. This will make it possible to understand the hadronic mechanism of charmonium production and to isolate the gluon polarization Δg(x) at large values of x.
2) Experiments with a real photon beam: photoproduction of mesons on nucleons and nuclei and Compton scattering on nucleons. Main objectives: experimental confirmation of the Gerasimov-Drell-Hearn (GDH) sum rule, investigation of the helicity structure of partial reaction channels, resolution of the excitation spectrum of baryons from light quarks, search for missing baryon resonances and exotic states (dibaryons, narrow nucleon resonances), study of the structure of hadrons.
3) Measurement of ΔσΤ and ΔσL in an experiment on the transmission of polarized neutrons through a polarized deuteron target at neutron energies <16 MeV, where there are limited experimental data and where theory predicts a significant effect of three-nucleon forces (3NF). This part of the project (NN) is a continuation of measurements of the same quantities in the scattering of neutrons by protons, which were carried out earlier.
4) Research and development of polarization equipment for MESA.
To date, there is no theory that gives a complete and consistent description of all the observed polarization effects in the hadronic sector. Therefore, a systematic experimental study of polarization effects in a wide variety of reactions using polarized beams and polarized targets is of great importance for the development of a theory that consistently describes all the observed spin phenomena.
The observed polarizations are the paramount characteristics of the interactions of elementary particles and nuclear reactions. Formally, the measurement of spin-dependent parameters imposes additional restrictions on the proposed reaction mechanism, the structure of the microobject under study, and the very nature of the fundamental interaction. It should be noted that modern experiments aimed at searching for the effects of CP violation and T invariance violation outside the Standard Model, as well as CPT violation, are based on polarization measurements.
Expected results upon completion of the project:
Development and construction of a new cryostat for a polarized "frozen" target of the SPASCHARM installation
Development and construction of the main components of a powerful 3He/4He dilution refrigerator for the “MESA” facility.
Completion of work on the creation of a cryostat for a polarized target at the University of Bonn.
Return transport and full launch of the polarized target in Mainz for the “GDH” project.
Carrying out polarization studies using a polarized “frozen” target at the “MAMI C” accelerator.
Carrying out polarization studies on a new polarized target at the Bonn University accelerator, “ELSA”.
Assembly, installation and testing of a powerful 3He/4He dilution refrigerator on the beam channel of the MESA setup.
Launch of the modified polarized target of the “SPASCHARM” facility and the beginning of the collection of physical statistics on the accelerator.
According to the NN-interaction program, channeling experiments will be carried out after the upgrade of the stand for the source of polarized deuterons, - 2024-2025.
Carrying out precise measurements of vector and tensor polarizations of the deuteron beam at the VdG accelerator.
Preparation of a special device for using a new target material based on trityl-doped butanol.
Manufacture and installation of equipment for measuring polarization of neutrons using scattering on a 4He target.
Depreservation of the polarized deuteron target and the beginning of measuring the difference between the cross sections ΔσΤ and ΔσL in the experiment on transmission of at neutron energies <16 MeV.
Expected results of the project this year:
Complete creation of a new cryostat for a polarized target at the University of Bonn.
Participation in the physical data taking at the ELSA accelerator.
Optimization of the polarized deuteron beam of the VdG Accelerator, Czech Technical University (Prague).
Collaboration
Country or International Organization | City | Institute or laboratory |
Armenia | Gyumri | IGES NAS RA |
Azerbaijan | Baku | IRP ANAS |
Belarus | Minsk | BSU |
CGM NASB | ||
Bulgaria | Sofia | INRNE BAS |
Czech Republic | Prague | CTU |
Germany | Bonn | UniBonn |
Mainz | JGU | |
Russia | Arkhangelsk | NArFU |
Moscow | "Kristal" | |
NNRU “MEPhI” | ||
Novosibirsk | ISP SB RAS | |
Petropavlovsk-Kamchatsky | FRC GC RAS | |
Protvino | IHEP | |
St. Petersburg | ETU | |
NWRSCC | ||
Tomsk | TPU | |
TSU | ||
Serbia | Novi Sad | UNS |
Uzbekistan | Tashkent | IS AS RUz |
Vietnam | Ho Chi Minh City | CNT VINATOM |