Patents by Inventor Evgeny IVANOV

Evgeny IVANOV 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).

  • Publication number: 20230278292
    Abstract: A method and apparatus of a device for obtaining a geometric representation of an object including a thin structure having a first surface and a second surface; generating one or more 2D blocking faces as a simplified representation of one of the first surface or the second surface; generating one or more 3D blocks based on an extrusion of the one or more 2D blocking faces; and determining a 3D mesh of the object based on the one or more 3D blocks.
    Type: Application
    Filed: August 25, 2022
    Publication date: September 7, 2023
    Inventors: Maxim ILYASOV, Manfred FRIEDRICHS, Evgeny IVANOV
  • Publication number: 20230131098
    Abstract: Various embodiments of the teachings herein include a device for controlling a HVAC system of a room. The device may include: a memory storing a metamodel for a distribution of physical quantities of air in the room, the metamodel based on reduced order modeling of a plurality of executed simulations of the physical quantities for a first configuration of the room; and a processor programmed to determine a value of a first subset of the physical quantities at a certain location in the room using the metamodel and a set of measured values of each physical quantity being measured by a number of physical sensors.
    Type: Application
    Filed: March 27, 2020
    Publication date: April 27, 2023
    Applicant: Siemens Schweig AG
    Inventors: Olga Galchenko, Mikhail Gritckevich, Evgeny Ivanov
  • Patent number: 11118428
    Abstract: A method for performing a simulation of a field having a subterranean formation is described. The method includes obtaining phase behavior data of subterranean fluids of the field, generating an equation of state (EOS) model of the fluids based on the phase behavior data, generating a Helmholtz free energy model that reproduces predictions of the EOS model over a pre-determined pressure and temperature range, and performing the simulation of the field using the Helmholtz free energy model. The method may further include reducing the EOS model to a reduced EOS model having a reduced number of components to represent the EOS model over a pre-determined pressure and temperature range, generating the Helmholtz free energy model based on the reduced EOS model, and obtaining and using phase behavior data of injection fluids used. A computer system data.
    Type: Grant
    Filed: November 25, 2014
    Date of Patent: September 14, 2021
    Assignee: SCHLUMBERGER TECHNOLOGY CORPORATION
    Inventors: John Ratulowski, Denis Klemin, Mark Andersen, Oleg Dinariev, Nikolay Vyacheslavovich Evseev, Evgeny Ivanov, Sergey Sergeevich Safonov, Dmitry Anatolievich Koroteev
  • Patent number: 9871489
    Abstract: An arrangement and method for radio-frequency (RF) high power generation which compensate for a failed power amplifier module includes at least one power combiner having RF inputs and at least one RF output, and at least two power amplifier modules electrically connected to a respective input by at least one transmission line, and at least one RF switch formed by the at least one transmission line with a complex load electrically connected to the at least one RF switch.
    Type: Grant
    Filed: January 24, 2014
    Date of Patent: January 16, 2018
    Assignees: Siemens Aktiengesellschaft, OOO SIEMENS
    Inventors: Evgeny Ivanov, Andrey Krasnov, Alexander Smirnov, Marcus Zerb
  • Publication number: 20170366139
    Abstract: Systems are provided for RF high power generation. An arrangement includes an RF power combiner, at least one RF power amplifier, a switch, a control unit, and a transmission line. The RF power combiner has at least one RF input and at least one RF output. The RF power amplifier is electrically connected to the RF input via the transmission line. The switch is included in the transmission line. The switch is configured to control, by a switching action, transmission of a RF signal from the RF power amplifier to the RF input via the transmission line. The control unit is electrically connected to the switch. The control unit is configured to control the switching action of the switch. The control unit is electrically connected to the switch via the same transmission line.
    Type: Application
    Filed: December 29, 2014
    Publication date: December 21, 2017
    Inventors: Evgeny Ivanov, Andrey Krasnov, Ilya Rezanov
  • Patent number: 9768745
    Abstract: A method and arrangement for RF high power generation includes a power combiner having RF inputs and an RF output, and at least two power amplifier modules, respectively electrically connected by a transmission line to an input of the power combiner, wherein a directional coupler is electrically connected to the RF output of the power combiner and every transmission line includes an RF switch, where the Method includes measuring and determining values of the power amplifier modules, storing the values and applying the values as a correction to the input signal of the power amplifier modules.
    Type: Grant
    Filed: December 24, 2013
    Date of Patent: September 19, 2017
    Assignee: OOO SIEMENS
    Inventors: Evgeny Ivanov, Andrey Krasnov, Konstantin Nikolskiy, Stepan Polikhov, Georgy Sharkov, Alexander Smirnov
  • Publication number: 20160336904
    Abstract: An arrangement and method for radio-frequency (RF) high power generation which compensate for a failed power amplifier module includes at least one power combiner having RF inputs and at least one RF output, and at least two power amplifier modules electrically connected to a respective input by at least one transmission line, and at least one RF switch formed by the at least one transmission line with a complex load electrically connected to the at least one RF switch.
    Type: Application
    Filed: January 24, 2014
    Publication date: November 17, 2016
    Inventors: Evgeny IVANOV, Andrey KRASNOV, Alexander SMIRNOV, Marcus ZERB
  • Publication number: 20160322945
    Abstract: A method and arrangement for RF high power generation includes a power combiner having RF inputs and an RF output, and at least two power amplifier modules, respectively electrically connected by a transmission line to an input of the power combiner, wherein a directional coupler is electrically connected to the RF output of the power combiner and every transmission line includes an RF switch, where the Method includes measuring and determining values of the power amplifier modules, storing the values and applying the values as a correction to the input signal of the power amplifier modules.
    Type: Application
    Filed: December 24, 2013
    Publication date: November 3, 2016
    Inventors: Evgeny IVANOV, Andrey KRASNOV, Konstantin NIKOLSKIY, Stepan POLIKHOV, Georgy SHARKOV, Alexander SMIRNOV
  • Publication number: 20160319640
    Abstract: A method for performing a simulation of a field having a subterranean formation is described. The method includes obtaining phase behavior data of subterranean fluids of the field, generating an equation of state (EOS) model of the fluids based on the phase behavior data, generating a Helmholtz free energy model that reproduces predictions of the EOS model over a pre-determined pressure and temperature range, and performing the simulation of the field using the Helmholtz free energy model. The method may further include reducing the EOS model to a reduced EOS model having a reduced number of components to represent the EOS model over a pre-determined pressure and temperature range, generating the Helmholtz free energy model based on the reduced EOS model, and obtaining and using phase behavior data of injection fluids used. A computer system data.
    Type: Application
    Filed: November 25, 2014
    Publication date: November 3, 2016
    Inventors: John Ratulowski, Denis Klemin, Mark Andersen, Oleg Dinariev, Nikolay Vyacheslavovich Evseev, Evgeny Ivanov, Sergey Sergeevich Safonov, Dmitry Anatolievich Koroteev
  • Publication number: 20150364399
    Abstract: A chip package assembly and its use for mounting and demounting of at least one semiconductor chip that includes a flange and a substrate, where the at least one chip and the substrate are arranged on one side of the flange, and where the flange is composed of an electrical and thermally conducting material.
    Type: Application
    Filed: January 16, 2013
    Publication date: December 17, 2015
    Applicant: Siemens Research Center Limited Liability Company
    Inventors: Evgeny IVANOV, Andrey KRASNOV, Georgy SHARKOV, Nadezhda TIKHOMIROVA
  • Patent number: 4380528
    Abstract: A silver-based alloy incorporating palladium, magnesium and aluminium in the following proportions of the components, percent by weight:______________________________________ palladium 5 to 30 magnesium 0.1 to 0.5 aluminium 0.01 to 0.5 silver the balance. ______________________________________The alloy of the above-specified composition, in contrast to the known silver-based alloys, possesses a sufficiently high plasticity (relative elongation of the alloy after the internal oxidation thereof is as high as 25%), while retaining a high level of mechanical strength, elasticity, electro-contact and corrosion-resistance properties.
    Type: Grant
    Filed: May 6, 1981
    Date of Patent: April 19, 1983
    Inventors: Jury F. Shevakin, Efim S. Shpichinetsky, Valentina P. Fedorenko, Boris N. Efremov, Maria N. Klevchenkova, Ivan A. Andrjuschenko, Iosif A. Krasnoselsky, Evgeny F. Anikeev, Evgeny A. Ivanov, Anatoly P. Khomyachkov, Naum A. Shvarts, Ljudmila V. Kozhevnikova, Roza M. Romanova, Alexandr D. Zhivotchenko
  • Patent number: D317897
    Type: Grant
    Filed: November 30, 1989
    Date of Patent: July 2, 1991
    Inventors: Vladimir I. Antonov, Leonid I. Bondarenko, Georgy S. Bjushgens, Evgeny A. Ivanov, Stanislay T. Kashafutdinov, Artem A. Kolchin, Vitaly G. Mikeladze, Valery A. Nikolaenko, Oleg S. Samoilovich, Mikhail P. Simonov, Leonid G. Chernov, Georgy L. Yakimov