Patents by Inventor Jeremie FOREST

Jeremie FOREST 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: 12270842
    Abstract: In an embodiment method for detecting the phase of an analog signal via a hybrid coupler operating in a power-combiner mode, the hybrid coupler comprises a first input intended to receive the analog signal, a second input intended to receive a reference signal having a reference phase and the same frequency as the analog signal, and two outputs, and is configured to generate, at these two outputs, a first output signal and a second output signal, respectively. The embodiment method comprises measuring peak values of the analog signal, of the reference signal, and of at least one of the first and second output signals, calculating the phase shift between the phase of the analog signal and the reference phase depending on the measured peak values, and determining the phase of the analog signal depending on the calculated phase shift and the reference phase.
    Type: Grant
    Filed: January 22, 2019
    Date of Patent: April 8, 2025
    Assignees: STMicroelectronics France, CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE, UNIVERSITE DE BORDEAUX, INSTITUT POLYTECHNIQUE DE BORDEAUX
    Inventors: Vincent Knopik, Jeremie Forest, Eric Kerherve
  • Patent number: 11641217
    Abstract: In an embodiment method, a hybrid coupler comprises a first input receiving an analog signal, a second input receiving an additional analog signal phase shifted by 90° from the analog signal, and first and second outputs. The method comprises injecting into the second output a test signal having an initial test phase, iteratively generating a current test phase for the test signal, from the initial test phase to a final test phase equal to the initial test phase increased by at least one portion of one complete revolution, and, in each iteration, measuring the current peak value of the first output, and storing the current test phase and the current peak value as a maximum/minimum peak value if there is not a stored maximum/minimum peak value higher/lower than the current peak value, respectively, and determining a phase of the analog signal from the stored test phase.
    Type: Grant
    Filed: January 22, 2019
    Date of Patent: May 2, 2023
    Assignees: STMICROELECTRONICS SA, CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE, INSTITUT POLYTECHNIQUE DE BORDEAUX, UNIVERSITE DE BORDEAUX
    Inventors: Jeremie Forest, Vincent Knopik, Eric Kerherve
  • Patent number: 11563424
    Abstract: In an embodiment, a method for determining the phase shift between a first signal and a second signal includes: delivering the first signal to a first input of a 90° hybrid coupler; delivering the second signal to a second input of the 90° hybrid coupler; determining a first piece of information relating to a power of a first output signal delivered to a first output of the 90° hybrid coupler; determining a second piece of information relating to a power of a second output signal delivered to a second output of the coupler; and adjusting the phase of the second signal until obtaining a calibrated phase for which the first piece of information is substantially equal to the second piece of information, wherein the first and second signals have identical frequencies, and wherein the phase shift between the first signal and the second signal is equal to the calibrated phase.
    Type: Grant
    Filed: October 7, 2021
    Date of Patent: January 24, 2023
    Assignee: STMICROELECTRONICS SA
    Inventors: Jeremie Forest, Vincent Knopik
  • Patent number: 11476892
    Abstract: In an embodiment, a circuit includes first, second, and third 90° hybrid couplers coupled between first and second antenna terminals, a pair of low-noise amplifiers (LNAs), and a pair of power amplifiers (PAs). The pair of LNAs is configured to receive first signals from the first and second antenna terminals and has an output configured to be coupled to a receive path. The second coupler is configured in power combiner mode for receiving the first signals. The pair of PAs is configured to transmit second signals via the first and second antenna terminals and has an input configured to be coupled to a transmit path. The third coupler is configured in power divider mode for transmitting the second signals.
    Type: Grant
    Filed: October 20, 2021
    Date of Patent: October 18, 2022
    Assignee: STMICROELECTRONICS SA
    Inventors: Jeremie Forest, Vincent Knopik
  • Patent number: 11394101
    Abstract: A hybrid coupler operating in a power divider mode includes two inputs, two outputs, a capacitive module coupled between the inputs and the outputs or on each input and each output. The capacitive module has an adjustable capacitive value making it possible to adjust the central frequency. A calibration method includes: delivering a first reference signal having a first reference frequency on the first input of the hybrid coupler, measuring the peak value of a first signal delivered to the first output of the coupler and measuring the peak value of a second signal delivered to the second output of the coupler. The two peak values are compared and an adjustment of the capacitive value of the capacitive module is made until an equality of the peak values is obtained to within a tolerance.
    Type: Grant
    Filed: November 21, 2017
    Date of Patent: July 19, 2022
    Assignee: STMicroelectronics SA
    Inventors: Vincent Knopik, Jeremie Forest, Eric Kerherve
  • Publication number: 20220181316
    Abstract: Electronic chip comprising a first integrated circuit, a second integrated circuit, a first link connecting the first integrated circuit and the second integrated circuit, a second link connecting the first integrated circuit and the second integrated circuit, a surface-mount component, the component being configured and placed to limit an electromagnetic disturbance by the first link of the second link.
    Type: Application
    Filed: December 1, 2021
    Publication date: June 9, 2022
    Inventors: Jeremie Forest, Vincent Knopik, Laurent Schwartz
  • Publication number: 20220158675
    Abstract: In an embodiment method, a hybrid coupler comprises a first input receiving an analog signal, a second input receiving an additional analog signal phase shifted by 90° from the analog signal, and first and second outputs. The method comprises injecting into the second output a test signal having an initial test phase, iteratively generating a current test phase for the test signal, from the initial test phase to a final test phase equal to the initial test phase increased by at least one portion of one complete revolution, and, in each iteration, measuring the current peak value of the first output, and storing the current test phase and the current peak value as a maximum/minimum peak value if there is not a stored maximum/minimum peak value higher/lower than the current peak value, respectively, and determining a phase of the analog signal from the stored test phase.
    Type: Application
    Filed: January 22, 2019
    Publication date: May 19, 2022
    Inventors: Jeremie Forest, Vincent Knopik, Eric Kerherve
  • Publication number: 20220123781
    Abstract: In an embodiment, a circuit includes first, second, and third 90° hybrid couplers coupled between first and second antenna terminals, a pair of low-noise amplifiers (LNAs), and a pair of power amplifiers (PAs). The pair of LNAs is configured to receive first signals from the first and second antenna terminals and has an output configured to be coupled to a receive path. The second coupler is configured in power combiner mode for receiving the first signals. The pair of PAs is configured to transmit second signals via the first and second antenna terminals and has an input configured to be coupled to a transmit path. The third coupler is configured in power divider mode for transmitting the second signals.
    Type: Application
    Filed: October 20, 2021
    Publication date: April 21, 2022
    Inventors: Jeremie Forest, Vincent Knopik
  • Publication number: 20220116024
    Abstract: In an embodiment, a method for determining the phase shift between a first signal and a second signal includes: delivering the first signal to a first input of a 90° hybrid coupler; delivering the second signal to a second input of the 90° hybrid coupler; determining a first piece of information relating to a power of a first output signal delivered to a first output of the 90° hybrid coupler; determining a second piece of information relating to a power of a second output signal delivered to a second output of the coupler; and adjusting the phase of the second signal until obtaining a calibrated phase for which the first piece of information is substantially equal to the second piece of information, wherein the first and second signals have identical frequencies, and wherein the phase shift between the first signal and the second signal is equal to the calibrated phase.
    Type: Application
    Filed: October 7, 2021
    Publication date: April 14, 2022
    Inventors: Jeremie Forest, Vincent Knopik
  • Publication number: 20220099718
    Abstract: The method for detecting the phase (?1) of an analog signal (SA1) via a hybrid coupler (CH1) operating in a power-combiner mode, the hybrid coupler (CH1) comprising a first input (BE1) intended to receive the analog signal (SA1), a second input (BE2) intended to receive a reference signal (SREF) having a reference phase (?2) and the same frequency (FREF) as the analog signal (SA1), and two outputs (BS1, BS2), and configured to generate, at these two outputs (BS1, BS2), a first output signal (SS1) and a second output signal (SS2), respectively, comprises measuring peak values (A1, A2, A3, A4) of the analog signal (SA1), of the reference signal (SREF), and of at least one of the first and second output signals (SS1, SS2), calculating the phase shift (?1-?2) between the phase (?1) of the analog signal and the reference phase (?2) depending on said measured peak values (A1, A2, A3, A4), and determining the phase (?1) of the analog signal (SA1) depending on said calculated phase shift (?1-?2) and the reference
    Type: Application
    Filed: January 22, 2019
    Publication date: March 31, 2022
    Inventors: Vincent Knopik, Jeremie Forest, Eric Kerherve
  • Patent number: 11165400
    Abstract: An embodiment electronic device comprises at least two antennas for transmitting signals, and at least one transmission path, the transmission path including a first coupling stage including a power divider, variable-gain power amplifiers, and a second coupling stage including a power combiner. Each coupling stage includes two inputs and two outputs, the two inputs of the first coupling stage being configured to receive a power input signal. Each output of the first coupling stage is connected to a different input of the second coupling stage via the variable-gain power amplifiers, and each output of the second coupling stage is connected to a different antenna. A controller is configured to control the gains of the variable-gain power amplifiers according to the characteristics of the power input signal, the signals transmitted by the antennas, and the coupling stages.
    Type: Grant
    Filed: September 17, 2020
    Date of Patent: November 2, 2021
    Assignee: STMICROELECTRONICS SA
    Inventors: Jeremie Forest, Vincent Knopik
  • Publication number: 20210099145
    Abstract: An embodiment electronic device comprises at least two antennas for transmitting signals, and at least one transmission path, the transmission path including a first coupling stage including a power divider, variable-gain power amplifiers, and a second coupling stage including a power combiner. Each coupling stage includes two inputs and two outputs, the two inputs of the first coupling stage being configured to receive a power input signal. Each output of the first coupling stage is connected to a different input of the second coupling stage via the variable-gain power amplifiers, and each output of the second coupling stage is connected to a different antenna. A controller is configured to control the gains of the variable-gain power amplifiers according to the characteristics of the power input signal, the signals transmitted by the antennas, and the coupling stages.
    Type: Application
    Filed: September 17, 2020
    Publication date: April 1, 2021
    Inventors: Jeremie Forest, Vincent Knopik
  • Publication number: 20200350653
    Abstract: A hybrid coupler operating in a power divider mode includes two inputs, two outputs, a capacitive module coupled between the inputs and the outputs or on each input and each output. The capacitive module has an adjustable capacitive value making it possible to adjust the central frequency. A calibration method includes: delivering a first reference signal having a first reference frequency on the first input of the hybrid coupler, measuring the peak value of a first signal delivered to the first output of the coupler and measuring the peak value of a second signal delivered to the second output of the coupler. The two peak values are compared and an adjustment of the capacitive value of the capacitive module is made until an equality of the peak values is obtained to within a tolerance.
    Type: Application
    Filed: November 21, 2017
    Publication date: November 5, 2020
    Applicant: STMicroelectronics SA
    Inventors: Vincent KNOPIK, Jeremie FOREST, Eric KERHERVE
  • Publication number: 20190292350
    Abstract: Provided herein are compositions comprising at least one estolide compound of formula: in which n is an integer equal to or greater than 0; m is an integer equal to or greater than 1; R1, independently for each occurrence, is selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; R2 is selected from hydrogen and optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; and R3 and R4, independently for each occurrence, are selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched. Also provided are uses of the compositions described herein.
    Type: Application
    Filed: February 13, 2019
    Publication date: September 26, 2019
    Inventors: Jakob BREDSGUARD, Travis THOMPSON, Jeremy FOREST
  • Patent number: 10240025
    Abstract: Provided herein are compositions comprising at least one estolide compound of formula: in which n is an integer equal to or greater than 0; m is an integer equal to or greater than 1; R1, independently for each occurrence, is selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; R2 is selected from hydrogen and optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; and R3 and R4, independently for each occurrence, are selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched. Also provided are uses of the compositions described herein.
    Type: Grant
    Filed: December 5, 2017
    Date of Patent: March 26, 2019
    Assignee: Biosynthetic Technologies, LLC
    Inventors: Jeremy Forest, Jakob Bredsguard, Travis Thompson
  • Patent number: 10150931
    Abstract: Provided herein are grease compositions comprising at least one estolide compound of formula: in which n is an integer equal to or greater than 0; m is an integer equal to or greater than 2; R1, independently for each occurrence, is selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; R2 is selected from hydrogen and optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; and R3 and R4, independently for each occurrence, are selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched. Also provided are methods of making estolide-based grease products.
    Type: Grant
    Filed: March 3, 2017
    Date of Patent: December 11, 2018
    Assignee: Biosynthetic Technologies, LLC
    Inventors: Jakob Bredsguard, Jeremy Forest
  • Patent number: 10087385
    Abstract: Provided herein are estolide compositions having high oxidative stability, said compositions comprising at least one compound of formula: in which n is an integer equal to or greater than 0; m is an integer equal to or greater than 1; R1, independently for each occurrence, is selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; R2 is selected from hydrogen and optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; and R3 and R4, independently for each occurrence, are selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched. Also provided herein are uses for the compositions and methods of preparing the same.
    Type: Grant
    Filed: July 20, 2017
    Date of Patent: October 2, 2018
    Assignee: Biosynthetic Technologies, LLC
    Inventors: Jakob Bredsguard, Travis Thompson, Jeremy Forest
  • Patent number: 10065918
    Abstract: Provided herein are polyol estolide compounds. Polyol estolides may be prepared by contacting a polyol with an estolide compound. Also provided are compositions containing polyol estolides and methods of making the same.
    Type: Grant
    Filed: March 15, 2017
    Date of Patent: September 4, 2018
    Assignee: Biosynthetic Technologies, LLC
    Inventors: Travis Thompson, Jeremy Forest, Marlon Lutz
  • Patent number: 10011556
    Abstract: Provided herein are estolide base oils and oligomeric compounds prepared from processes that include cross metathesis.
    Type: Grant
    Filed: August 2, 2016
    Date of Patent: July 3, 2018
    Assignee: Biosynthetic Technologies, LLC
    Inventors: Kelly Forest, Jeremy Forest, Jakob Bredsguard, Travis Thompson
  • Publication number: 20180171254
    Abstract: Provided herein are estolide compositions having high oxidative stability, said compositions comprising at least one compound of formula: in which n is an integer equal to or greater than 0; m is an integer equal to or greater than 1; R1, independently for each occurrence, is selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; R2 is selected from hydrogen and optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched; and R3 and R4, independently for each occurrence, are selected from optionally substituted alkyl that is saturated or unsaturated, and branched or unbranched. Also provided herein are uses for the compositions and methods of preparing the same.
    Type: Application
    Filed: July 20, 2017
    Publication date: June 21, 2018
    Inventors: Jakob BREDSGUARD, Travis THOMPSON, Jeremy FOREST