Patent classifications
H04B5/0012
SYSTEMS AND METHODS FOR MACHINE LEARNING BASED FOREIGN OBJECT DETECTION FOR WIRELESS POWER TRANSMISSION
An example method is provided for detecting and classifying foreign objects, performed at a computer system having one or more processors and memory storing one or more programs configured for execution by the one or more processors. The method includes obtaining a plurality of electrical measurements while a wireless-power-transmitting antenna is transmitting different power beacons. The method also includes forming a feature vector according to the plurality of electrical measurements. The method further includes detecting a presence of one or more foreign objects prior to transmitting wireless power to one or more wireless power receivers by inputting the feature vector to trained one or more classifiers, wherein each classifier is a machine-learning model trained to detect foreign objects distinct from the one or more wireless power receivers.
BI-DIRECTIONAL COMMUNICATION THROUGH CAPACITIVE COUPLING IN WIRELESS DEVICES
A system and method for bi-directional communication through capacitive coupling is achieved with capacitive plates within the environment of a wireless power transfer system. Data is transferred using capacitance over a separate path from the transfer of electrical power in the wireless power transfer system.
Capacitive data transmission over a galvanic isolation
In some examples, a device includes a capacitor arranged across the galvanic isolation barrier, where the capacitor is configured to communicate a single-ended signal from a first voltage domain to a second voltage domain. The device also includes a high-pass filter arranged in the second voltage domain and configured to receive the single-ended signal from the capacitor. The device further includes a low-pass filter arranged in the second voltage domain and coupled between the high-pass filter and a low-impedance node. The high-pass filter is coupled between the capacitor, the low-pass filter, and the low-impedance node, and the low-pass filter is configured to generate a differential signal.
SYSTEM, METHOD, AND APPARATUS FOR WIRELESS CHARGING
Using inductive currents to wirelessly charge a device via a device connected to a power source. This inductive charging may result when a first mobile device recognizes a second mobile device via a wireless connection (e.g., Bluetooth, Bluetooth Low Energy (BLE), Near-Field Communication (NFC), or the like). An application stored on the first mobile device may recognize a second mobile device by transmitting an advertising packet when the first mobile device is connected to a power source. An advertising packet may be received by the second mobile device and the second mobile device may transmit a response to the advertising packet in order to generate a connection between the first and second mobile devices. The response may include data such as, connection strength, response time, connection preferences, and the like. Upon detection and connection, the second mobile device may be wireles sly charged by the first device via inductive charging.
Wireless communication system
A wireless communication system includes a first coupler having a first pair of electrodes and second coupler having a second pair of electrodes that at least partially oppose the first pair of electrodes. A transmission circuit applies a differential signal to the first coupler. A reception circuit receives a differential signal output from the second coupler based on electromagnetic coupling between the first coupler and the second coupler. A distance between centroids of the first pair of electrodes differs from a distance between centroids of the second pair of electrodes.
PRESSURE BASED WIRELESS SENSOR AND APPLICATIONS THEREOF
A radio frequency identification (RFID) tag includes an antenna, an analog front end, a processing circuit, and memory. The analog front end includes a power circuit, a tuning circuit, a transmitter, and a receiver. The power circuit is operably coupled to convert a radio frequency (RF) signal into a power supply voltage. The tuning circuit, when enabled, adjusts an RF characteristic of the analog front end to tune power harvesting from the RF signal. The transmitter is operably coupled to transmit a response signal to the RFID reader via the antenna. The receiver is operably coupled to receive a command signal from the RFID reader, wherein the command signal is contained within a portion of the RF signal. The processing circuit is operable to interpret the command signal and generate the response signal.
CONDUCTIVE WIRELESS POWER SYSTEMS
A wireless power transfer system that employs a form of conductively coupled power transfer to transfer energy to deeply implanted devices.
CAPACITIVELY COUPLED DATA LINK FOR A SEALED BATTERY
A capacitively coupled data link for a battery is disclosed. The battery comprises a battery cell and a battery management system. The battery is disposed in a battery case. The data li communicates data between the battery management system and a data terminal disposed outside of the battery case. The data link comprises an interior date link portion coupled to the battery management system. The interior data link portion comprises an interior electrode disposed on an inside surface of the battery case and an interior transceiver disposed inside of the battery case coupled to the interior electrode. The data link further comprises an exterior data link portion coupled to data terminal. The exterior data link portion comprises an exterior electrode disposed o
outside surface of the battery case opposite the interior electrode, and an exterior transceiver disposed outside of the battery case coupled to the exterior electrode. The interior electrode, the exterior electrode and the battery case disposed therebetween form a capacitive communication link between the interior data link portion and the exterior data link portion.
Radiofrequency transmission/reception device
A radiofrequency transmission/reception device includes a first and a second conductive wire element, a first far-field transmission/reception chip and a second near-field transmission/reception chip. The first and the second wire element combine with the characteristic impedance of the second transmission/reception chip in order to form a coupling device associated with the first transmission/reception chip at the operating frequency of the first chip. The first and the second wire element combine with the characteristic impedance of the first transmission/reception chip in order to form a coupling device associated with the second transmission/reception chip at the operating frequency of the second chip.
Method of managing an output power delivered by an antenna of a NFC apparatus and NFC apparatus
In an embodiment, a method of managing an output power delivered by an antenna of a NFC apparatus includes: providing a matching circuit with a first tuning capacitive network coupled in series between a NFC controller and the antenna and with a second tuning capacitive network coupled to the NFC controller and the antenna and to a reference terminal, wherein the first or second tuning capacitive network has a variable capacitive value; determining tuning capacitive values of the first tuning capacitive networks to adjust a delivered output power at a desired level; and setting the tuning capacitive values of the first tuning capacitive network to the tuning capacitive values.