Patents by Inventor Anthony Stratakos

Anthony Stratakos 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: 10748845
    Abstract: Various applications of interconnect substrates in power management systems are described.
    Type: Grant
    Filed: May 7, 2019
    Date of Patent: August 18, 2020
    Assignee: Volterra Semiconductor Corporation
    Inventors: Mihalis Michael, Kwang Hong Tan, Ilija Jergovic, Chiteh Chiang, Anthony Stratakos
  • Publication number: 20190341344
    Abstract: Various applications of interconnect substrates in power management systems are described.
    Type: Application
    Filed: May 7, 2019
    Publication date: November 7, 2019
    Inventors: Mihalis Michael, Kwang Hong Tan, Ilija Jergovic, Chiteh Chiang, Anthony Stratakos
  • Patent number: 9520342
    Abstract: Various applications of interconnect substrates in power management systems are described.
    Type: Grant
    Filed: June 29, 2015
    Date of Patent: December 13, 2016
    Assignee: Volterra Semiconductor Corporation
    Inventors: Mihalis Michael, Kwang Hong Tan, Ilija Jergovic, Chiteh Chiang, Anthony Stratakos
  • Publication number: 20150303132
    Abstract: Various applications of interconnect substrates in power management systems are described.
    Type: Application
    Filed: June 29, 2015
    Publication date: October 22, 2015
    Inventors: Mihalis Michael, Kwang Hong Tan, Ilija Jergovic, Chiteh Chiang, Anthony Stratakos
  • Patent number: 9099340
    Abstract: Various applications of interconnect substrates in power management systems are described.
    Type: Grant
    Filed: October 4, 2012
    Date of Patent: August 4, 2015
    Assignee: Volterra Semiconductor Corporation
    Inventors: Mihalis Michael, Kwang Hong Tan, Ilija Jergovic, Chiteh Chiang, Anthony Stratakos
  • Patent number: 8350658
    Abstract: Methods and structures for constructing a magnetic core of a coupled inductor. The method provides for constructing N-phase coupled inductors as both single and scalable magnetic structures, where N is an integer greater than 1. The method additionally describes how such a construction of the magnetic core may enhance the benefits of using the scalable N-phase coupled inductor. The first and second magnetic cores may be formed into shapes that, when coupled together, may form a single scalable magnetic core. For example, the cores can be fashioned into shapes such as a U, an I, an H, a ring, a rectangle, and a comb, that cooperatively form the single magnetic core.
    Type: Grant
    Filed: January 10, 2011
    Date of Patent: January 8, 2013
    Assignee: Volterra Semiconductor Corporation
    Inventors: Anthony Stratakos, Charles R. Sullivan, Jieli Li
  • Publication number: 20120319478
    Abstract: Ripple cancellation techniques are described for various DC to DC converters having multiple parallel phases with magnetically coupled inductors.
    Type: Application
    Filed: June 20, 2011
    Publication date: December 20, 2012
    Applicant: VOLTERRA SEMICONDUCTOR CORPORATION
    Inventors: Angel Gentchev, Anthony Stratakos, Alexander Ikriannikov
  • Patent number: 8299885
    Abstract: An M phase coupled inductor includes a magnetic core including a first end magnetic element, a second end magnetic element, and M legs disposed between and connecting the first and second end magnetic elements. M is an integer greater than one. The coupled inductor further includes M windings, where each winding has a substantially rectangular cross section. Each one of the M windings is at least partially wound about a respective leg.
    Type: Grant
    Filed: May 13, 2011
    Date of Patent: October 30, 2012
    Assignee: Volterra Semiconductor Corporation
    Inventors: Alexandr Ikriannikov, Anthony Stratakos, Charles R. Sullivan, Aaron M. Schultz, Jieli Li
  • Patent number: 8294544
    Abstract: An M-phase coupled inductor including a magnetic core and M windings, where M is an integer greater than one. The magnetic core is formed of a core material, and the magnetic core includes a first outer leg forming a first gap. The first gap includes a first gap material having lower magnetic permeability than the core material. Each winding is wound at least partially around at least a portion of the magnetic core, and each winding has a respective leakage inductance. The first gap causes the leakage inductances to be greater than if the first outer leg did not form the first gap. The coupled inductor may be used in a power supply, and the power supply may be used in a computing apparatus.
    Type: Grant
    Filed: March 16, 2009
    Date of Patent: October 23, 2012
    Assignee: Volterra Semiconductor Corporation
    Inventors: Alexandr Ikriannikov, Anthony Stratakos
  • Publication number: 20110279212
    Abstract: An M phase coupled inductor includes a magnetic core including a first end magnetic element, a second end magnetic element, and M legs disposed between and connecting the first and second end magnetic elements. M is an integer greater than one. The coupled inductor further includes M windings, where each winding has a substantially rectangular cross section. Each one of the M windings is at least partially wound about a respective leg.
    Type: Application
    Filed: May 13, 2011
    Publication date: November 17, 2011
    Inventors: Alexandr Ikriannikov, Anthony Stratakos, Charles R. Sullivan, Aaron M. Schultz, Jieli Li
  • Patent number: 7965165
    Abstract: An M phase coupled inductor includes a magnetic core including a first end magnetic element, a second end magnetic element, and M legs disposed between and connecting the first and second end magnetic elements. M is an integer greater than one. The coupled inductor further includes M windings, where each winding has a substantially rectangular cross section. Each one of the M windings is at least partially wound about a respective leg.
    Type: Grant
    Filed: November 14, 2008
    Date of Patent: June 21, 2011
    Assignee: Volterra Semiconductor Corporation
    Inventors: Alexandr Ikriannikov, Anthony Stratakos, Charles R. Sullivan, Aaron M. Schultz, Jieli Li
  • Patent number: 7898379
    Abstract: Methods and structures for constructing a magnetic core of a coupled inductor. The method provides for constructing N-phase coupled inductors as both single and scalable magnetic structures, where N is an integer greater than 1. The method additionally describes how such a construction of the magnetic core may enhance the benefits of using the scalable N-phase coupled inductor. The first and second magnetic cores may be formed into shapes that, when coupled together, may form a single scalable magnetic core. For example, the cores can be fashioned into shapes such as a U, an I, an H, a ring, a rectangle, and a comb, that cooperatively form the single magnetic core.
    Type: Grant
    Filed: February 25, 2009
    Date of Patent: March 1, 2011
    Assignee: Volterra Semiconductor Corporation
    Inventors: Anthony Stratakos, Charles R. Sullivan, Jieli Li
  • Patent number: 7859238
    Abstract: A multi-phase, coupled-inductor, DC-DC voltage converter operates in discontinuous conduction mode (DCM) when the system is operated at low output power demand. An embodiment of the converter switches to operating in continuous conduction mode (CCM) when the system is operated at high output power demand. Operation in single-drive and rotating phase DCM operation at low power are described. An alternative embodiment operates in a multiple-drive, rotating-phase, discontinuous conduction mode during at least one condition of output power demand.
    Type: Grant
    Filed: May 18, 2009
    Date of Patent: December 28, 2010
    Assignee: Volterra Semiconductor Corporation
    Inventors: Anthony Stratakos, Jieli Li, Biljana Beronja, David Lidsky, Michael McJimsey, Aaron Schultz, Charles R. Sullivan, Charles Nickel
  • Publication number: 20090237197
    Abstract: An M-phase coupled inductor including a magnetic core and M windings, where M is an integer greater than one. The magnetic core is formed of a core material, and the magnetic core includes a first outer leg forming a first gap. The first gap includes a first gap material having lower magnetic permeability than the core material. Each winding is wound at least partially around at least a portion of the magnetic core, and each winding has a respective leakage inductance. The first gap causes the leakage inductances to be greater than if the first outer leg did not form the first gap. The coupled inductor may be used in a power supply, and the power supply may be used in a computing apparatus.
    Type: Application
    Filed: March 16, 2009
    Publication date: September 24, 2009
    Inventors: Alexandr Ikriannikov, Anthony Stratakos
  • Publication number: 20090179723
    Abstract: An M phase coupled inductor includes a magnetic core including a first end magnetic element, a second end magnetic element, and M legs disposed between and connecting the first and second end magnetic elements. M is an integer greater than one. The coupled inductor further includes M windings, where each winding has a substantially rectangular cross section. Each one of the M windings is at least partially wound about a respective leg.
    Type: Application
    Filed: November 14, 2008
    Publication date: July 16, 2009
    Applicant: VOLTERRA SEMICONDUCTOR CORPORATION
    Inventors: Alexandr Ikriannikov, Anthony Stratakos, Charles R. Sullivan, Aaron M. Schultz, Jieli Li
  • Patent number: 7548046
    Abstract: A multi-phase, coupled-inductor, DC-DC voltage converter operates in discontinuous conduction mode (DCM) when the system is operated at low output power demand. An embodiment of the converter switches to operating in continuous conduction mode (CCM) when the system is operated at high output power demand. Operation in single-drive and rotating phase DCM operation at low power are described. An alternative embodiment operates in a multiple-drive, rotating-phase, discontinuous conduction mode during at least one condition of output power demand.
    Type: Grant
    Filed: November 26, 2007
    Date of Patent: June 16, 2009
    Assignee: Volterra Semiconductor Corporation
    Inventors: Anthony Stratakos, Jieli Li, Biljana Beronja, David Lidsky, Michael McJimsey, Aaron Schultz, Charles R. Sullivan, Charles Nickel
  • Patent number: 7498920
    Abstract: Methods and structures for constructing a magnetic core of a coupled inductor. The method provides for constructing N-phase coupled inductors as both single and scalable magnetic structures, where N is an integer greater than 1. The method additionally describes how such a construction of the magnetic core may enhance the benefits of using the scalable N-phase coupled inductor. The first and second magnetic cores may be formed into shapes that, when coupled together, may form a single scalable magnetic core. For example, the cores can be fashioned into shapes such as a U, an I, an H, a ring, a rectangle, and a comb, that cooperatively form the single magnetic core.
    Type: Grant
    Filed: October 30, 2007
    Date of Patent: March 3, 2009
    Assignee: Volterra Semiconductor Corporation
    Inventors: Charles R. Sullivan, Aaron M. Schultz, Anthony Stratakos, Jieli Li
  • Publication number: 20080246577
    Abstract: Methods and structures for constructing a magnetic core of a coupled inductor. The method provides for constructing N-phase coupled inductors as both single and scalable magnetic structures, where N is an integer greater than 1. The method additionally describes how such a construction of the magnetic core may enhance the benefits of using the scalable N-phase coupled inductor. The first and second magnetic cores may be formed into shapes that, when coupled together, may form a single scalable magnetic core. For example, the cores can be fashioned into shapes such as a U, an I, an H, a ring, a rectangle, and a comb, that cooperatively form the single magnetic core.
    Type: Application
    Filed: October 30, 2007
    Publication date: October 9, 2008
    Applicant: VOLTERRA SEMICONDUCTOR CORPORATION
    Inventors: Charles R. Sullivan, Aaron M. Schultz, Anthony Stratakos, Jieli Li
  • Patent number: 7317305
    Abstract: A multi-phase, coupled-inductor, DC-DC voltage converter operates in discontinuous conduction mode (DCM) when the system is operated at low output power demand. An embodiment of the converter switches to operating in continuous conduction mode (CCM) when the system is operated at high output power demand. Operation in single-drive and rotating phase DCM operation at low power are described. An alternative embodiment operates in a multiple-drive, rotating-phase, discontinuous conduction mode during at least one condition of output power demand.
    Type: Grant
    Filed: May 18, 2005
    Date of Patent: January 8, 2008
    Assignee: Volterra Semiconductor Corporation
    Inventors: Anthony Stratakos, Jieli Li, Biljana Beronja, David Lidsky, Michael McJimsey, Aaron Schultz, Charles R. Sullivan, Charles Nickel
  • Patent number: 6853169
    Abstract: A digitally implemented voltage regulator having including a plurality of slaves coupled in parallel. Each slave includes a switching circuit that intermittently couples an input terminal and an output terminal of the voltage regulator in response to a digital control signal for the corresponding slave. A current sensor in each slave generates a digital first feedback signal derived from the current passing through the corresponding switching circuit. A digital controller receives and uses the digital feedback signals from the plurality of slaves to generate a digital control signal for each slave. The digital controller operates active slaves of the plurality of slaves at determined phase offsets to minimize voltage ripple and maintain the output voltage at the output terminal at a substantially constant level.
    Type: Grant
    Filed: July 8, 2003
    Date of Patent: February 8, 2005
    Assignee: Volterra Semiconductor Corporation
    Inventors: Andrew J. Burstein, David B. Lidsky, Anthony Stratakos, Charlie Sullivan, William Clark