Patent classifications
B06B1/0238
Ultrasonic Induction Circuit, Driving Method Thereof, Display Device and Storage Medium
An ultrasonic induction circuit is provided, a first electrode of an ultrasonic sensor is electrically connected with a first terminal of the ultrasonic sensing circuit, a second electrode is electrically connected with a second terminal of a first potential supply sub-circuit, and the first terminal of the first potential supply sub-circuit is electrically connected with a first potential supply end. A gate of M1 is electrically connected with the second electrode and the second terminal of the compensation sub-circuit. The second electrode is electrically connected with the first terminal of the compensation sub-circuit. The first electrode is coupled to the second potential supply end. The first terminal of the signal output sub-circuit is electrically connected to the second electrode of the first transistor, and the second terminal is electrically connected to the second terminal of the ultrasonic induction circuit.
DRIVING APPARATUS, VIBRATION GENERATING APPARATUS, ELECTRONIC APPARATUS, AND DRIVING METHOD
Provided is a driving apparatus that sets a signal wave in a low-frequency region having a frequency of 10 Hz or more and 250 Hz or less as a modulating wave and outputs to a piezoelectric actuator a driving signal having a waveform obtained by modulating an amplitude of a sine wave in a high-frequency region having a frequency of 20 kHz or more and 40 kHz or less with the modulating wave.
Acoustic Transducer Automated Start and Run
An operating point for control of an acoustic transducer can drift during operation and be compensated. A model for the transducer and/or environment frequency response is provided and used to compensate feedback from the transducer to determine an adjustment for the operating point. The model can be recalibrated during operation.
Vibration provision system for providing real-time vibration according to frequency change and vibration provision method therefor
Disclosed is a vibration provision system for providing real-time vibration according to a frequency change, including a communication unit 110 configured to receive a signal which is output from a computer, a game machine, or a portable terminal via wired or wireless communication; a conversion unit 120 configured to convert a sound signal transmitted from the communication unit 110 to a vibration signal which is capable of driving a vibrator on a real time basis by amplifying the transmitted sound signal; and a vibrator 130 configured to vibrate according to a vibration signal transmitted from the conversion unit 120, and the present invention provides a haptic signal which is suitable for an image and sound output from a portable terminal realistically and rapidly and thus has an effect to transmit information more realistically by visual, auditory, and tactile sense to a hardware environment requiring three-dimensional vibration.
ULTRASOUND TRANSDUCER AND HOUSING FOR SAME
An ultrasound energy delivery system is provided that includes a transducer and a housing.
METHODS AND DEVICES FOR HAPTIC COMMUNICATION
A haptic stimulator includes a multilayer sheet with a piezoelectric or electroactive polymer layer adapted to mechanically deform upon application of voltage, the multilayer sheet secured to a substrate, and a source of electrical stimulation coupled to drive electrodes on the polymer layer with an AC signal to vibrate the polymer layer. In particular embodiments, the polymer contains polyvinylidene fluoride, and electrodes are patterned to control local electric fields. Another haptic stimulator has first and second electrodes with an air gap and an insulating sheet between first and second electrodes, with an AC voltage driver connecting to the electrodes. In a method of providing haptic stimulation to skin an alternating current supply drives first and second electrodes, the electrodes disposed upon either a piezoelectric or electroactive polymer sheet, vibrating the polymer layer by driving the electrodes; and coupling vibrations of the polymer layer to the sensate skin.
TEMPERATURE COMPENSATION FOR PIEZO SOUNDER
A method of operating a sound generation mechanism includes determining a temperature of the sound generation mechanism, identifying a resonant frequency of the sound generation mechanism associated with the determined temperature, and communicating an excitation frequency to the sound generation mechanism. The excitation frequency is selected in response to the resonant frequency associated with the determined temperature. The sound generation mechanism is operated to produce one or more sounds.
VIBRATION SIGNAL GENERATION APPARATUS AND COMPUTER-READABLE, NON-TRANSITORY STORAGE MEDIUM STORING VIBRATION SIGNAL GENERATION PROGRAM
A vibration signal generation apparatus includes an absolute value signal generator configured to generate an absolute value signal by detecting an absolute value of amplitude of an acoustic signal, an envelope signal generator configured to generate an envelope signal by detecting an envelope of the absolute value signal, a differentiator configured to differentiate the envelope signal, an amplitude limiter configured to generate an amplitude-limited signal by limiting amplitude of the envelope signal so that an amplitude value of the differentiated envelope signal becomes zero or greater, and a vibration signal generator configured to generate a vibration signal by multiplying the amplitude-limited signal by a reference signal having a frequency that allows a human to perceive a vibration.
Low voltage, low power MEMS transducer with direct interconnect capability
A transceiver includes an array of pMUT elements, where each pMUT element includes: a substrate; a membrane suspending from the substrate; a bottom electrode disposed on the membrane; a piezoelectric layer disposed on the bottom electrode; and a first electrode disposed on the piezoelectric layer. Each pMUT element exhibits one or more modes of vibration.
CONFIGURABLE ULTRASONIC IMAGER
An imaging device includes a two dimensional array of piezoelectric elements. Each piezoelectric element includes: a piezoelectric layer; a bottom electrode disposed on a bottom side of the piezoelectric layer and configured to receive a transmit signal during a transmit mode and develop an electrical charge during a receive mode; and a first top electrode disposed on a top side of the piezoelectric layer; and a first conductor, wherein the first top electrodes of a portion of the piezoelectric elements in a first column of the two dimensional array are electrically coupled to the first conductor.