B06B2201/52

Factory And User Calibration Of Haptic Systems
20230222882 · 2023-07-13 ·

Methods and systems for calibrating a haptic system in an electronic device are provided. The calibration of the haptic system may be performed in a facility prior to a shipment to a user. The calibration may also be performed by a user prior to or after his/her use of the haptic system in the electronic device over time. A method for performing a calibration process in an electronic device includes generating a drive signal from a haptic driver in a haptic system disposed in an electronic device, transmitting the drive signal to an actuator in the haptic system, detecting a back Electromotive Force (bEMF) signal from the actuator in the haptic system, analyzing an output waveform from the bEMF signal, and adjusting a scale of the drive signal generated from the haptic driver.

Factory and user calibration of haptic systems
11610459 · 2023-03-21 · ·

Methods and systems for calibrating a haptic system in an electronic device are provided. The calibration of the haptic system may be performed in a facility prior to a shipment to a user. The calibration may also be performed by a user prior to or after his/her use of the haptic system in the electronic device over time. A method for performing a calibration process in an electronic device includes generating a drive signal from a haptic driver in a haptic system disposed in an electronic device, transmitting the drive signal to an actuator in the haptic system, detecting a back Electromotive Force (bEMF) signal from the actuator in the haptic system, analyzing an output waveform from the bEMF signal, and adjusting a scale of the drive signal generated from the haptic driver.

Vibration device and driving device
11770078 · 2023-09-26 · ·

A vibration device is provided that includes a vibration element with a piezoelectric vibrator and a driving device that causes the vibration element to vibrate. The vibration element includes a translucent body and the piezoelectric vibrator is electrically coupled to the driving device. The driving device includes a first circuit that applies an electric signal to the piezoelectric vibrator to render the vibration element in a resonant state, a second circuit that applies an electric signal to the piezoelectric vibrator according to a feedback signal output from the piezoelectric vibrator, and a switch that switches coupling between the first circuit and the piezoelectric vibrator and coupling between the second circuit and the piezoelectric vibrator at a certain timing.

FACTORY AND USER CALIBRATION OF HAPTIC SYSTEMS
20210319677 · 2021-10-14 ·

Methods and systems for calibrating a haptic system in an electronic device are provided. The calibration of the haptic system may be performed in a facility prior to a shipment to a user. The calibration may also be performed by a user prior to or after his/her use of the haptic system in the electronic device over time. A method for performing a calibration process in an electronic device includes generating a drive signal from a haptic driver in a haptic system disposed in an electronic device, transmitting the drive signal to an actuator in the haptic system, detecting a back Electromotive Force (bEMF) signal from the actuator in the haptic system, analyzing an output waveform from the bEMF signal, and adjusting a scale of the drive signal generated from the haptic driver.

Electrical measurement circuit, gas detector and method for measuring a gas concentration

An electric measurement circuit possesses an electrical reaction leg for forming an oscillator from a resonator, and furthermore possesses a measurement leg the input of which is supplied by the electrical reaction leg. The measurement leg contains an adjustable phase shifter so that an additional excitation force that is applied to the resonator in the measurement leg can be adjusted in phase quadrature with respect to an excitation force that is applied to the resonator in the electrical reaction leg. Such an electrical measurement circuit is particularly suitable for forming a photoacoustic gas detector.

VIBRATION DEVICE AND DRIVING DEVICE
20200373856 · 2020-11-26 ·

A vibration device is provided that includes a vibration element with a piezoelectric vibrator and a driving device that causes the vibration element to vibrate. The vibration element includes a translucent body and the piezoelectric vibrator is electrically coupled to the driving device. The driving device includes a first circuit that applies an electric signal to the piezoelectric vibrator to render the vibration element in a resonant state, a second circuit that applies an electric signal to the piezoelectric vibrator according to a feedback signal output from the piezoelectric vibrator, and a switch that switches coupling between the first circuit and the piezoelectric vibrator and coupling between the second circuit and the piezoelectric vibrator at a certain timing.

ELECTRICAL MEASUREMENT CIRCUIT, GAS DETECTOR AND METHOD FOR MEASURING A GAS CONCENTRATION

An electric measurement circuit possesses an electrical reaction leg for forming an oscillator from a resonator, and furthermore possesses a measurement leg the input of which is supplied by the electrical reaction leg. The measurement leg contains an adjustable phase shifter so that an additional excitation force that is applied to the resonator in the measurement leg can be adjusted in phase quadrature with respect to an excitation force that is applied to the resonator in the electrical reaction leg. Such an electrical measurement circuit is particularly suitable for forming a photoacoustic gas detector.

Inertial haptic actuators having a cantilevered beam and a smart material

A haptic actuator comprising a base and a haptic transducer at least partially suspended by the base. The haptic transducer comprises a substrate and a smart material operably connected to the substrate. The smart material has resonance in response to an electrical signal having a determined frequency, and the resonance causes the haptic transducer to vibrate and deliver a haptic effect.

PORTABLE HAPTIC SYSTEMS FOR USE WITHIN A VENUE
20240168555 · 2024-05-23 · ·

Systems, methods, and apparatuses disclosed herein can generate vibrations in relation to, for example, synchronous with, audio that is associated with an event being hosted at a venue. These systems, methods, and apparatuses can generate the vibrations at the one or more frequencies over the one or more intervals in time to provide physical sensations to an audience within the venue as the audience is viewing the event. These physical sensations can provide new immersive experiences to the audience as the audience is viewing the event. These systems, methods, and apparatuses can be mechanically coupled, for example, attached, to seats within the venue. The vibrations generated by these systems, methods, and apparatuses can propagate through the seats onto the audience to provide the new immersive experiences to the audience as the audience is viewing the event. These systems, methods, and apparatuses can be attached to the seats at the start of the event and can thereafter be de-attached, or removed, from the seats at the conclusion of the event.

SYSTEM AND METHOD FOR DISPLACING OR REFORMING A MASS WITHIN A BODY MEDIUM
20240189178 · 2024-06-13 · ·

A system and method for displacing or reforming a mass within a body medium. The system includes one or more tactile audio transducers. A processor is configured to generate signals that drive the transducers in to generate audio waves in the medium when the transducers are applied to the medium and cause displacement of the mass or reformation of the mass. The method includes applying one or more tactile audio transducers to the medium; and driving one or more of the tactile audio transducers to generate audio waves in the medium to cause displacement of the mass or reformation of the mass.