Patents by Inventor Aleksandr Ivanovich Filin

Aleksandr Ivanovich Filin has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 10573417
    Abstract: A method for guaranteeing fast reactor core subcriticality under conditions of uncertainty involves, after assembling the reactor core, conducting physical measurements of reactor core subcriticality and comparing the obtained characteristics with design values; then, if there is a discrepancy between the values of the obtained characteristics and the design values, installing adjustable reactivity rods in the reactor at the level of a fuel portion of the reactor core, wherein the level of boron-B10 isotope enrichment of the adjustable reactivity rods is selected to be higher than the level of boron-B10 isotope enrichment of compensating rods of the reactor core. The technical result consists in improving the operating conditions of absorbing elements of a compensating group of rods, eliminating the need for increasing the movement thereof, simplifying monitoring technologies used during production, and simplifying the algorithm for safe reactor control.
    Type: Grant
    Filed: March 19, 2014
    Date of Patent: February 25, 2020
    Assignee: Joint Stock Company “AKME-Engineering”
    Inventors: Kirill Gennadievich Melnikov, Ivan Vladimirovich Tormyshev, Said Mirfaisovich Sharikpulov, Sergey Viktorovich Bulavkin, Aleksandr Ivanovich Filin, Stepan Artemovich Borovitsky
  • Patent number: 10204712
    Abstract: A method for the inner-contour passivation of steel surfaces of a nuclear reactor consists in filling a first contour of a nuclear reactor with a liquid metal coolant, introducing a reagent into the liquid metal coolant, said reagent interacting with the material of elements of the first contour, forming a protective film, and heating the liquid metal coolant, having the reagent introduced therein, to a temperature allowing for conditions for forming the protective film. The liquid metal coolant having the reagent introduced therein is kept at said temperature until a continuous protective film is formed on the surface of the material of the elements of the first contour. The liquid metal coolant having reagent introduced therein is heated by means of the friction thereof against rotating vanes of a vane pump, which is submerged in the liquid metal coolant.
    Type: Grant
    Filed: December 8, 2014
    Date of Patent: February 12, 2019
    Assignee: Joint Stock Company “AKME-Engineering”
    Inventors: Petr Nikiforovich Martynov, Radomir Shamilievich Askhadullin, Aleksey Nikolaevich Storozhenko, Konstantin Dmitrievich Ivanov, Aleksandr Urievich Legkikh, Said Mirfaisovich Sharikpulov, Aleksandr Ivanovich Filin, Sergey Viktorovich Bulavkin
  • Patent number: 10037822
    Abstract: The invention relates to the field of nuclear technology, and specifically to a method for the in situ passivation of steel surfaces. The method consists in installing, in a position intended for a regular core, a core simulator in the form of a model of the core, which models the shape thereof, the relative position of the core components, and also the mass characteristics thereof; next, the reactor is filled with a heavy liquid metal heat transfer medium, the heat transfer medium is heated to a temperature which provides for the conditions of passivation, and in situ passivation is carried out in two stages, the first of which includes an isothermal passivation mode in conformity with the conditions determined for this stage, and the second mode includes non-isothermal passivation, which is carried out under different conditions, after which the core simulator is removed and the regular core is installed in the place thereof.
    Type: Grant
    Filed: March 19, 2014
    Date of Patent: July 31, 2018
    Assignee: Joint Stock Company “AKME-Engineering”
    Inventors: Petr Nikiforovich Martynov, Radomir Shamilievich Askhadullin, Konstantin Dmitrievich Ivanov, Aleksandr Urievich Legkikh, Aleksey Nikolaevich Storozhenko, Aleksandr Ivanovich Filin, Sergey Viktorovich Bulavkin, Said Mirfaisovich Sharikpulov, Stepan Artemovich Borovitsky
  • Publication number: 20170018319
    Abstract: A method for the inner-contour passivation of steel surfaces of a nuclear reactor consists in filling a first contour of a nuclear reactor with a liquid metal coolant, introducing a reagent into the liquid metal coolant, said reagent interacting with the material of elements of the first contour, forming a protective film, and heating the liquid metal coolant, having the reagent introduced therein, to a temperature allowing for conditions for forming the protective film. The liquid metal coolant having the reagent introduced therein is kept at said temperature until a continuous protective film is formed on the surface of the material of the elements of the first contour. The liquid metal coolant having reagent introduced therein is heated by means of the friction thereof against rotating vanes of a vane pump, which is submerged in the liquid metal coolant.
    Type: Application
    Filed: December 8, 2014
    Publication date: January 19, 2017
    Inventors: Petr Nikiforovich Martynov, Radomir Shamilievich Askhadullin, Aleksey Nikolaevich Storozhenko, Konstantin Dmitrievich Ivanov, Aleksandr Urievich Legkikh, Said Mirfaisovich Sharikpulov, Aleksandr Ivanovich Filin, Sergey Viktorovich Bulavkin
  • Publication number: 20160232990
    Abstract: The invention relates to the field of nuclear technology, and specifically to a method for the in situ passivation of steel surfaces. The method consists in installing, in a position intended for a regular core, a core simulator in the form of a model of the core, which models the shape thereof, the relative position of the core components, and also the mass characteristics thereof; next, the reactor is filled with a heavy liquid metal heat transfer medium, the heat transfer medium is heated to a temperature which provides for the conditions of passivation, and in situ passivation is carried out in two stages, the first of which includes an isothermal passivation mode in conformity with the conditions determined for this stage, and the second mode includes non-isothermal passivation, which is carried out under different conditions, after which the core simulator is removed and the regular core is installed in the place thereof.
    Type: Application
    Filed: March 19, 2014
    Publication date: August 11, 2016
    Inventors: Petr Nikiforovich Martynov, Radomir Shamilievich Askhadullin, Konstantin Dmitrievich Ivanov, Aleksandr Urievich Legkikh, Aleksey Nikolaevich Storozhenko, Aleksandr Ivanovich Filin, Sergey Viktorovich Bulavkin, Said Mirfaisovich Sharikpulov, Stepan Artemovich Borovitsky
  • Publication number: 20160232994
    Abstract: A method for guaranteeing fast reactor core subcriticality under conditions of uncertainty involves, after assembling the reactor core, conducting physical measurements of reactor core subcriticality and comparing the obtained characteristics with design values; then, if there is a discrepancy between the values of the obtained characteristics and the design values, installing adjustable reactivity rods in the reactor at the level of a fuel portion of the reactor core, wherein the level of boron-B10 isotope enrichment of the adjustable reactivity rods is selected to be higher than the level of boron-B10 isotope enrichment of compensating rods of the reactor core. The technical result consists in improving the operating conditions of absorbing elements of a compensating group of rods, eliminating the need for increasing the movement thereof, simplifying monitoring technologies used during production, and simplifying the algorithm for safe reactor control.
    Type: Application
    Filed: March 19, 2014
    Publication date: August 11, 2016
    Inventors: Kirill Gennadievich Melnikov, Ivan Vladimirovich Tormyshev, Said Mirfaisovich Sharikpulov, Sergey Viktorovich Bulavkin, Aleksandr Ivanovich Filin, Stepan Artemovich Borovitsky