Patents by Inventor Selcuk Ersoy

Selcuk Ersoy 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: 10317482
    Abstract: A resistive sensor includes a current input sigma-delta converter that uses a switched offset voltage source to provide scalable gain and more linear operation. The sigma-delta converter includes an integrator, a quantizer, and a decimator. In one embodiment, the resistive sensor and offset voltage source are coupled to provide an input current at a first node. The integrator has a first input terminal coupled to the first node, and an output terminal. The quantizer has a first input terminal coupled to the output terminal of the integrator, a second input terminal for receiving a clock signal, and an output terminal coupled to provide a feedback signal to control the offset voltage source. The decimator has an input terminal coupled to the output terminal of the quantizer, and an output terminal for providing an output signal. The switched offset voltage source provides scalable gain and good linearity.
    Type: Grant
    Filed: November 19, 2016
    Date of Patent: June 11, 2019
    Assignee: NXP B.V.
    Inventors: Marijn Nicolaas Van Dongen, Edwin Schapendonk, Selcuk Ersoy
  • Patent number: 10006972
    Abstract: A magnetic field sensor is disclosed for providing an output signal in response to an external magnetic field. The sensor comprises a primary magnetic field transducer for producing a primary signal in response to the external magnetic field and having a first magnetic field saturation characteristic; a secondary magnetic field transducer for producing a secondary signal in response to the external magnetic field and having a second magnetic field saturation characteristic. The first magnetic field saturation characteristic is different from the second magnetic field saturation characteristic. The sensor is configured to use the secondary signal to correct for errors in the output signal arising from saturation of the primary transducer.
    Type: Grant
    Filed: November 10, 2016
    Date of Patent: June 26, 2018
    Assignee: NXP B.V.
    Inventors: Klaus Reimann, Robert van Veldhoven, Jaap Ruigrok, Selcuk Ersoy, Ralf van Otten, Jörg Kock
  • Publication number: 20180143270
    Abstract: A resistive sensor includes a current input sigma-delta converter that uses a switched offset voltage source to provide scalable gain and more linear operation. The sigma-delta converter includes an integrator, a quantizer, and a decimator. In one embodiment, the resistive sensor and offset voltage source are coupled to provide an input current at a first node. The integrator has a first input terminal coupled to the first node, and an output terminal. The quantizer has a first input terminal coupled to the output terminal of the integrator, a second input terminal for receiving a clock signal, and an output terminal coupled to provide a feedback signal to control the offset voltage source. The decimator has an input terminal coupled to the output terminal of the quantizer, and an output terminal for providing an output signal. The switched offset voltage source provides scalable gain and good linearity.
    Type: Application
    Filed: November 19, 2016
    Publication date: May 24, 2018
    Inventors: MARIJN NICOLAAS VAN DONGEN, EDWIN SCHAPENDONK, SELCUK ERSOY
  • Publication number: 20170139016
    Abstract: A magnetic field sensor is disclosed for providing an output signal in response to an external magnetic field. The sensor comprises a primary magnetic field transducer for producing a primary signal in response to the external magnetic field and having a first magnetic field saturation characteristic; a secondary magnetic field transducer for producing a secondary signal in response to the external magnetic field and having a second magnetic field saturation characteristic. The first magnetic field saturation characteristic is different from the second magnetic field saturation characteristic. The sensor is configured to use the secondary signal to correct for errors in the output signal arising from saturation of the primary transducer.
    Type: Application
    Filed: November 10, 2016
    Publication date: May 18, 2017
    Inventors: Klaus Reimann, Robert van Veldhoven, Jaap Ruigrok, Selcuk Ersoy, Ralf van Otten, Jörg Kock
  • Patent number: 9548655
    Abstract: A differential dynamic charge pump circuit comprising; a first charging stage in series with a second charging stage; the first charging stage comprising a first circuit input for receiving an alternating clock signal; a second circuit input for receiving an inverted version of the alternating clock signal; a first output inverter arrangement configured to receive output voltages from upper and lower charge pump arrangements and having a first output and a second output for providing a dynamic differential output; the second charging stage comprising a first input and a second input configured to receive the output signal from the first stage; a second output inverter arrangement configured to receive output voltages from upper and lower charge pump arrangements and having a first output and a second output for providing a dynamic differential output of the circuit.
    Type: Grant
    Filed: October 2, 2015
    Date of Patent: January 17, 2017
    Assignee: NXP B.V.
    Inventors: Selcuk Ersoy, Robert Hendrikus Margaretha van Veldhoven
  • Publication number: 20160099638
    Abstract: A differential dynamic charge pump circuit comprising; a first charging stage in series with a second charging stage; the first charging stage comprising a first circuit input for receiving an alternating clock signal; a second circuit input for receiving an inverted version of the alternating clock signal; a first output inverter arrangement configured to receive output voltages from upper and lower charge pump arrangements and having a first output and a second output for providing a dynamic differential output; the second charging stage comprising a first input and a second input configured to receive the output signal from the first stage; a second output inverter arrangement configured to receive output voltages from upper and lower charge pump arrangements and having a first output and a second output for providing a dynamic differential output of the circuit.
    Type: Application
    Filed: October 2, 2015
    Publication date: April 7, 2016
    Inventors: Selcuk Ersoy, Robert Hendrikus Margaretha van Veldhoven