Различия
Показаны различия между двумя версиями страницы.
| Предыдущая версия справа и слева Предыдущая версия Следующая версия | Предыдущая версия | ||
| iki:rscf-grant-application-autumn-2021 [2021/11/09 14:26] – poroykovay | iki:rscf-grant-application-autumn-2021 [2022/09/16 14:23] (текущий) – poroykovay | ||
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| Строка 213: | Строка 213: | ||
| **Информация о научных изданиях, | **Информация о научных изданиях, | ||
| - | Advances in Space Research (WoS Q1, Scopus Q1) - статья\\ | + | Advances in Space Research (WoS Q1, Scopus Q1) - 1 статья\\ |
| - | <wrap hi> | + | Measurement (WoS Q1, Scopus Q1) – 1 статья\\ |
| - | Measurement (WoS Q1, Scopus Q1) – статья\\ | + | Sensors (WoS Q1, Scopus Q2) - 1 статья\\ |
| - | Sensors (WoS Q1, Scopus Q2) - статья\\ | + | Measurement Science and Technology (WoS Q3, Scopus Q2) - 1 статья\\ |
| - | Measurement Science and Technology (WoS Q3, Scopus Q2) - статья\\ | + | Planetary and Space Science (WoS Q3, Scopus Q2) – 1 статья\\ |
| - | Planetary and Space Science (WoS Q3, Scopus Q2) – статья\\ | + | Solar System Research (WoS Q4, Scopus Q3) – 1 статья\\ |
| - | Solar System Research (WoS Q4, Scopus Q3) – статья\\ | + | Journal of Physics: Conference Series (Scopus Q4) – 3 статьи\\ |
| - | Journal of Physics: Conference Series (Scopus Q4) – статья\\ | + | |
| **Иные способы обнародования результатов выполнения проекта**\\ | **Иные способы обнародования результатов выполнения проекта**\\ | ||
| Строка 227: | Строка 226: | ||
| **1.10 Число публикаций членов научного коллектива, | **1.10 Число публикаций членов научного коллектива, | ||
| - | **130** из них **60** опубликованы в изданиях, | + | **81** из них **53** опубликованы в изданиях, |
| **1.11 Планируемое участие научного коллектива в международных коллаборациях (проектах) (при наличии)**\\ | **1.11 Планируемое участие научного коллектива в международных коллаборациях (проектах) (при наличии)**\\ | ||
| Строка 380: | Строка 379: | ||
| Оптический метод позволяет одновременно получить информацию о частицах, | Оптический метод позволяет одновременно получить информацию о частицах, | ||
| - | Несмотря на то, что оптические измерения позволяют получить большое количество информации о процессах, | + | Несмотря на то, что оптические измерения позволяют получить большое количество информации о процессах, |
| - | Второй отличительной особенностью предлагаемого проекта от других подобных исследований, | + | |
| - | В первый год проекта планируется разработка специализированного многоэлементного индукционного датчика, | + | В первый год проекта планируется разработка специализированного многоэлементного индукционного датчика, |
| Для успешного применения индукционных и ударных датчиков будут проведены экспериментальные исследования по воздействию на них монодисперсных частиц, | Для успешного применения индукционных и ударных датчиков будут проведены экспериментальные исследования по воздействию на них монодисперсных частиц, | ||
| Строка 447: | Строка 445: | ||
| //The optical method allows you to simultaneously obtain information about particles occurring in a volume of 5x5x3 cm^3. However, the software does not allow automated registration of particle take-off events and requires a large number of manual operations to select suitable tracks. In this project, the optical method will be modernized. In the first year of the project, it is planned to upgrade the software to improve the accuracy and degree of automation of measurements. It is also planned to purchase high-speed cameras, which will allow determining the instantaneous velocity of particles and significantly improve the temporal resolution of the research being carried out. In the transition to measuring the instantaneous velocity of a particle, it will be necessary to develop an algorithm and software to determine the position of an individual particle (and not a particle track) in three-dimensional space. The development of such an algorithm is planned for the second year of the project.// | //The optical method allows you to simultaneously obtain information about particles occurring in a volume of 5x5x3 cm^3. However, the software does not allow automated registration of particle take-off events and requires a large number of manual operations to select suitable tracks. In this project, the optical method will be modernized. In the first year of the project, it is planned to upgrade the software to improve the accuracy and degree of automation of measurements. It is also planned to purchase high-speed cameras, which will allow determining the instantaneous velocity of particles and significantly improve the temporal resolution of the research being carried out. In the transition to measuring the instantaneous velocity of a particle, it will be necessary to develop an algorithm and software to determine the position of an individual particle (and not a particle track) in three-dimensional space. The development of such an algorithm is planned for the second year of the project.// | ||
| - | //Despite the fact that optical measurements | + | //Despite the fact that optical measurements |
| - | //The second distinguishing feature of the proposed project from other similar studies is the development of a method for measuring the parameters of dust particles based on the integration of signals from various sensors. Simultaneously with the optical method, the registration of particle parameters using induction and shock sensors will be used.// | + | //In the first year of the project, it is planned to develop a specialized multielement induction sensor that can measure the speed and charge of several particles simultaneously. In this case, an approximate position in space will be known for each particle. The sensor can be made in the form of a honeycomb structure, where each element is a closed loop, in which the induction current from passing particles will be measured. The location of two such sensors on top of each other will provide information about the speed and charge of the particle, the acceleration of the particle between these sensors and the approximate trajectory of motion. In the second year of the project, it is planned to develop a multi-element percussion sensor that allows determining the momentum of particles and their approximate position.// |
| - | + | ||
| - | //In the first year of the project, it is planned to develop a specialized multielement induction sensor that can measure the speed and charge of several particles simultaneously. In this case, for each particle, the approximate position in space will be known. In the second year of the project, it is planned to develop a multi-element percussion sensor that allows determining the momentum of particles and their approximate position.// | + | |
| //For the successful use of induction and shock sensors, experimental studies will be carried out on the effect on them of monodisperse particles, including charged ones, at the facility at the National Research University " | //For the successful use of induction and shock sensors, experimental studies will be carried out on the effect on them of monodisperse particles, including charged ones, at the facility at the National Research University " | ||
| Строка 638: | Строка 634: | ||
| **Иные расходы для целей выполнения проекта: | **Иные расходы для целей выполнения проекта: | ||
| Оплата командировок для представления результатов проекта на международных конференциях и оплата публикаций - 400 тыс. руб. | Оплата командировок для представления результатов проекта на международных конференциях и оплата публикаций - 400 тыс. руб. | ||
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| - | ~~DISCUSSION~~ | ||