Patents by Inventor Zhong You

Zhong You 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: 10921159
    Abstract: A system may include a first resistive-inductive-capacitive sensor, a second resistive-inductive-capacitive sensor, and a measurement circuit communicatively coupled to the first resistive-inductive-capacitive sensor and the second resistive-inductive-capacitive sensor and configured to measure first phase information associated with the first resistive-inductive-capacitive sensor, measure second phase information associated with the second resistive-inductive-capacitive sensor, and based on the first phase information and the second phase information, determine a displacement of a mechanical member relative to the first resistive-inductive-capacitive sensor.
    Type: Grant
    Filed: March 12, 2019
    Date of Patent: February 16, 2021
    Assignee: Cirrus Logic, Inc.
    Inventors: Tejasvi Das, Zhong You, Siddharth Maru, Eric J. King, Johann G. Gaboriau, Luke Lapointe, Matthew Beardsworth
  • Patent number: 10908200
    Abstract: A system may include a resistive-inductive-capacitive sensor, a driver configured to drive the resistive-inductive-capacitive sensor at a driving frequency, and a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and configured to measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a mechanical member relative to the resistive-inductive-capacitive sensor, wherein the displacement of the mechanical member causes a change in an impedance of the resistive-inductive-capacitive sensor.
    Type: Grant
    Filed: February 4, 2019
    Date of Patent: February 2, 2021
    Assignee: Cirrus Logic, Inc.
    Inventors: Zhong You, Siddharth Maru, Tejasvi Das, Luke Lapointe, Eric J. King, Anthony S. Doy, Srdjan Marjianovic, Drew Kinney, Matthew Beardsworth, Emmanuel Marchais
  • Publication number: 20200314969
    Abstract: A resonant frequency tracker for driving an electromagnetic load with a driving signal may include a signal generator configured to generate a waveform signal at a driving frequency for driving an electromagnetic load and control circuitry. The control circuitry may be configured to, during driving of the electromagnetic load by the waveform signal or a signal derived therefrom, receive a current signal representative of a current associated with the electromagnetic load and a second signal representative of a second quantity associated with the electromagnetic load, the second quantity comprising one of a voltage associated with the electromagnetic load or a back electromotive force of the electromagnetic load. The control circuitry may be further configured to calculate a phase difference between the current signal and the second signal, determine a frequency error of the waveform signal based on the phase difference, and control the driving frequency based on the frequency error.
    Type: Application
    Filed: August 30, 2019
    Publication date: October 1, 2020
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Emmanuel MARCHAIS, Zhong You
  • Publication number: 20200292602
    Abstract: A method for measuring a capacitive sensor output may include applying an excitation signal to a capacitor of the capacitive sensor which causes generation of a modulated signal from a baseband signal, wherein the excitation signal is of a carrier frequency which is higher than frequency content of the baseband signal, demodulating the modulated signal to generate an intermediate signal representative of a capacitance of the capacitor wherein the demodulating is based, at least in part, on the excitation signal, converting the intermediate signal into a pulse-density modulated output signal with a pulse-density modulator, and shaping a noise transfer function of the pulse-density modulator to have an approximate zero at the carrier frequency.
    Type: Application
    Filed: June 2, 2020
    Publication date: September 17, 2020
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Amar VELLANKI, Zhong YOU, Johann G. GABORIAU
  • Publication number: 20200278753
    Abstract: A system may include a tactile actuator for providing tactile feedback and a resonant phase sensing system. The resonant phase sensing system may include a resistive-inductive-capacitive sensor and a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and the tactile actuator. The resistive-inductive-capacitive sensor may be configured to measure phase information associated with the resistive-inductive-capacitive sensor, based on the phase information, detect an indication of human interaction with the system proximate to the resistive-inductive-capacitive sensor, and trigger the tactile actuator to generate tactile feedback responsive to detecting the indication of human interaction.
    Type: Application
    Filed: May 15, 2020
    Publication date: September 3, 2020
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Srdjan MARIJANOVIC, Drew KINNEY, Luke LAPOINTE, Siddharth MARU, Tejasvi DAS, Anthony S. DOY, Zhong YOU
  • Patent number: 10725549
    Abstract: A system may include a tactile actuator for providing tactile feedback and a resonant phase sensing system. The resonant phase sensing system may include a resistive-inductive-capacitive sensor and a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and the tactile actuator. The resistive-inductive-capacitive sensor may be configured to measure phase information associated with the resistive-inductive-capacitive sensor, based on the phase information, detect an indication of human interaction with the system proximate to the resistive-inductive-capacitive sensor, and trigger the tactile actuator to generate tactile feedback responsive to detecting the indication of human interaction.
    Type: Grant
    Filed: March 6, 2019
    Date of Patent: July 28, 2020
    Assignee: Cirrus Logic, Inc.
    Inventors: Srdjan Marijanovic, Drew Kinney, Luke Lapointe, Siddharth Maru, Tejasvi Das, Anthony S. Doy, Zhong You
  • Patent number: 10718801
    Abstract: A method for measuring a capacitive sensor output may include applying an excitation signal to a capacitor of the capacitive sensor which causes generation of a modulated signal from a baseband signal, wherein the excitation signal is of a carrier frequency which is higher than frequency content of the baseband signal, demodulating the modulated signal to generate an intermediate signal representative of a capacitance of the capacitor wherein the demodulating is based, at least in part, on the excitation signal, converting the intermediate signal into a pulse-density modulated output signal with a pulse-density modulator, and shaping a noise transfer function of the pulse-density modulator to have an approximate zero at the carrier frequency.
    Type: Grant
    Filed: March 20, 2018
    Date of Patent: July 21, 2020
    Assignee: Cirrus Logic, Inc.
    Inventors: Amar Vellanki, Zhong You, Johann G. Gaboriau
  • Publication number: 20200225786
    Abstract: A system may include a resistive-inductive-capacitive sensor, a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and configured to at a plurality of periodic intervals, measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a mechanical member relative to the resistive-inductive-capacitive sensor. The system may also include a driver configured to drive the resistive-inductive-capacitive sensor at a driving frequency and a driving amplitude, wherein at least one of the driving frequency and the driving amplitude varies among the plurality of periodic intervals.
    Type: Application
    Filed: March 26, 2020
    Publication date: July 16, 2020
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Siddharth MARU, Tejasvi DAS, Luke LAPOINTE, Srdjan MARIJANOVIC, Zhong YOU, Drew KINNEY, Anthony S. DOY, Eric J. KING
  • Patent number: 10649015
    Abstract: A method may include applying an excitation signal to a capacitor of the capacitive sensor which causes generation of a modulated signal from an input signal indicative of a variance in a capacitance of the capacitor, detecting the modulated signal with a detector to generate a detected modulated signal that has a phase shift relative to the excitation signal, demodulating the detected modulated signal into an in-phase component and a quadrature component using a reference signal, nullifying the quadrature component by setting a phase of the reference signal relative to the excitation signal to compensate for the phase shift, and outputting the in-phase component as an unmodulated output signal representative of the capacitance.
    Type: Grant
    Filed: April 2, 2018
    Date of Patent: May 12, 2020
    Assignee: Cirrus Logic, Inc.
    Inventors: Vikrant Arumugam, Amar Vellanki, Vamsikrishna Parupalli, Zhong You, Johann G. Gaboriau, John L. Melanson
  • Patent number: 10642435
    Abstract: A system may include a resistive-inductive-capacitive sensor, a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and configured to at a plurality of periodic intervals, measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a mechanical member relative to the resistive-inductive-capacitive sensor. The system may also include a driver configured to drive the resistive-inductive-capacitive sensor at a driving frequency and a driving amplitude, wherein at least one of the driving frequency and the driving amplitude varies among the plurality of periodic intervals.
    Type: Grant
    Filed: March 6, 2019
    Date of Patent: May 5, 2020
    Assignee: Cirrus Logic, Inc.
    Inventors: Siddharth Maru, Tejasvi Das, Luke Lapointe, Srdjan Marijanovic, Zhong You, Drew Kinney, Anthony S. Doy, Eric J. King
  • Publication number: 20200064160
    Abstract: A system may include a resistive-inductive-capacitive sensor, a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor, and a filter communicatively coupled to the measurement circuit. The measurement circuit may be configured to measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a mechanical member relative to the resistive-inductive-capacitive sensor. The filter may be configured to isolate changes to the displacement which are significantly slower than an expected change to the displacement in response to a human interaction with the mechanical member.
    Type: Application
    Filed: August 6, 2019
    Publication date: February 27, 2020
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Siddharth MARU, Tejasvi DAS, Zhong YOU, Johann G. GABORIAU, Matthew BEARDSWORTH, Gregory C. YANCEY
  • Publication number: 20200052298
    Abstract: An LFP electrode material is provided which has improved impedance, power during cold cranking, rate capacity retention, charge transfer resistance over the current LFP based cathode materials. The electrode material comprises crystalline primary particles and secondary particles, where the primary particle is formed from a plate-shaped single-phase spheniscidite precursor and a lithium source. The LFP includes an LFP phase behavior where the LFP phase behavior includes an extended solid-solution range.
    Type: Application
    Filed: September 18, 2019
    Publication date: February 13, 2020
    Inventors: Larry Beck, Jennifer Wilson, Chuanjing Xu, Zhong-You Shi, Maha Hammoud
  • Patent number: 10548751
    Abstract: A stent placement assembly is disclosed.
    Type: Grant
    Filed: February 16, 2015
    Date of Patent: February 4, 2020
    Assignee: OXFORD UNIVERSITY INNOVATION LIMITED
    Inventors: Zhong You, Jiayao Ma, James Byrne
  • Patent number: 10522833
    Abstract: An LFP electrode material is provided which has improved impedance, power during cold cranking, rate capacity retention, charge transfer resistance over the current LFP based cathode materials. The electrode material comprises crystalline primary particles and secondary particles, where the primary particle is formed from a plate-shaped single-phase spheniscidite precursor and a lithium source. The LFP includes an LFP phase behavior where the LFP phase behavior includes an extended solid-solution range.
    Type: Grant
    Filed: April 24, 2017
    Date of Patent: December 31, 2019
    Assignee: A123 Systems, LLC
    Inventors: Larry Beck, Jennifer Wilson, Chuanjing Xu, Zhong-You Shi, Maha Hammoud
  • Publication number: 20190302922
    Abstract: A system may include a resistive-inductive-capacitive sensor, a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and configured to measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a mechanical member relative to the resistive-inductive-capacitive sensor. The system may also include a Q factor enhancer communicatively coupled to the resistive-inductive-capacitive sensor and configured to control a Q factor of the resistive-inductive-capacitive sensor.
    Type: Application
    Filed: March 6, 2019
    Publication date: October 3, 2019
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Tejasvi DAS, Siddharth MARU, Zhong YOU, Luke LAPOINTE
  • Publication number: 20190302890
    Abstract: A system may include a tactile actuator for providing tactile feedback and a resonant phase sensing system. The resonant phase sensing system may include a resistive-inductive-capacitive sensor and a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and the tactile actuator. The resistive-inductive-capacitive sensor may be configured to measure phase information associated with the resistive-inductive-capacitive sensor, based on the phase information, detect an indication of human interaction with the system proximate to the resistive-inductive-capacitive sensor, and trigger the tactile actuator to generate tactile feedback responsive to detecting the indication of human interaction.
    Type: Application
    Filed: March 6, 2019
    Publication date: October 3, 2019
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Srdjan MARIJANOVIC, Drew KINNEY, Luke LAPOINTE, Siddharth MARU, Tejasvi DAS, Anthony S. DOY, Zhong YOU
  • Publication number: 20190302923
    Abstract: A system may include a resistive-inductive-capacitive sensor, a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and configured to at a plurality of periodic intervals, measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a mechanical member relative to the resistive-inductive-capacitive sensor. The system may also include a driver configured to drive the resistive-inductive-capacitive sensor at a driving frequency and a driving amplitude, wherein at least one of the driving frequency and the driving amplitude varies among the plurality of periodic intervals.
    Type: Application
    Filed: March 6, 2019
    Publication date: October 3, 2019
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Siddharth MARU, Tejasvi DAS, Luke LAPOINTE, Srdjan MARIJANOVIC, Zhong YOU, Drew KINNEY, Anthony S. DOY, Eric J. KING
  • Publication number: 20190302193
    Abstract: A system may include a resonant phase sensing system comprising a resistive-inductive-capacitive sensor and a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor, and a compensation circuit. The measurement circuit may be configured to use a phase detector to measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a metal plate relative to the resistive-inductive-capacitive sensor. The compensation circuit may be configured to detect a change in a physical property associated with the resistive-inductive-capacitive sensor other than the displacement and compensate the phase information to correct for the change in the physical property.
    Type: Application
    Filed: March 15, 2019
    Publication date: October 3, 2019
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Siddharth MARU, Tejasvi DAS, Zhong YOU
  • Publication number: 20190302161
    Abstract: A system may include a resistive-inductive-capacitive sensor, a driver configured to drive the resistive-inductive-capacitive sensor at a driving frequency, and a measurement circuit communicatively coupled to the resistive-inductive-capacitive sensor and configured to measure phase information associated with the resistive-inductive-capacitive sensor and based on the phase information, determine a displacement of a mechanical member relative to the resistive-inductive-capacitive sensor, wherein the displacement of the mechanical member causes a change in an impedance of the resistive-inductive-capacitive sensor.
    Type: Application
    Filed: February 4, 2019
    Publication date: October 3, 2019
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Zhong YOU, Siddharth MARU, Tejasvi DAS, Luke LAPOINTE, Eric J. KING, Anthony S. DOY, Srdjan MARJIANOVIC, Drew KINNEY, Matthew BEARDSWORTH, Emmanuel MARCHAIS
  • Publication number: 20190285438
    Abstract: Embodiments described herein relate to methods and apparatus for separating an interference signal from a carrier signal for sensing a capacitance of a capacitive sensor. An analog front end, AFE, circuit for a capacitive sensor comprises an input configured to receive an input signal from the capacitive sensor, wherein the input signal comprises a carrier signal and an interference signal; a first signal path between the input and an output configured to output an output signal, wherein the first signal path is configured with a first impedance at a frequency of the interference signal; and a second signal path coupled to the input, wherein the second signal path is configured with a second impedance at the frequency of the interference signal, wherein the second impedance is lower than the first impedance so as to reduce a voltage swing caused by the interference signal at the input.
    Type: Application
    Filed: March 15, 2019
    Publication date: September 19, 2019
    Applicant: Cirrus Logic International Semiconductor Ltd.
    Inventors: Mengde WANG, Zhong YOU