H02J50/70

FOD and wireless power transfer calibration

In an embodiment, a method includes: wirelessly transmitting power using a transmitter LC tank to a wireless power receiver having a receiver LC tank; receiving a first received power packet from the wireless power receiver, the first received power packet including a received power value field indicative of a power level; determining a first power difference between transmitted power and received power based on the first received power packet; calculating a first received power compensation factor based on the first power difference; interrupting wirelessly transmitting power for a first slot period after receiving the first received power packet; performing a first measurement of a first signal associated with the transmitter LC tank during the first slot period; determining a first Q factor value based on the first measurement; comparing the first Q factor value with a reference Q factor value; and detecting a metallic object based on the comparison.

FOD and wireless power transfer calibration

In an embodiment, a method includes: wirelessly transmitting power using a transmitter LC tank to a wireless power receiver having a receiver LC tank; receiving a first received power packet from the wireless power receiver, the first received power packet including a received power value field indicative of a power level; determining a first power difference between transmitted power and received power based on the first received power packet; calculating a first received power compensation factor based on the first power difference; interrupting wirelessly transmitting power for a first slot period after receiving the first received power packet; performing a first measurement of a first signal associated with the transmitter LC tank during the first slot period; determining a first Q factor value based on the first measurement; comparing the first Q factor value with a reference Q factor value; and detecting a metallic object based on the comparison.

RECEIVER FOR WIRELESSLY RECEIVING ENERGY AND A METHOD THEREOF
20220376561 · 2022-11-24 ·

A receiver is for wirelessly receiving energy to power a device. The receiver comprises a plurality of receiver coils spaced apart from each other and a receiver circuitry connected to each of the plurality of receiver coils. Each of the plurality of receiver coils is configured to operate in a same wireless power frequency range and receive the energy from a transmitter. The receiver circuitry is configured to combine the energy received by each of the plurality of receiver coils to power the device.

RECEIVER FOR WIRELESSLY RECEIVING ENERGY AND A METHOD THEREOF
20220376561 · 2022-11-24 ·

A receiver is for wirelessly receiving energy to power a device. The receiver comprises a plurality of receiver coils spaced apart from each other and a receiver circuitry connected to each of the plurality of receiver coils. Each of the plurality of receiver coils is configured to operate in a same wireless power frequency range and receive the energy from a transmitter. The receiver circuitry is configured to combine the energy received by each of the plurality of receiver coils to power the device.

VEHICLE BATTERY CHARGING APPARATUS
20220376528 · 2022-11-24 ·

A battery charging apparatus for device charging in a vehicle includes a charging device compartment, a housing, a blower, a charger, and a duct. The charging device compartment is configured to retain at least one device. The housing includes a top member, a bottom member, and an accommodating space. The housing further includes an air-return port. The blower is in the housing and has an input port and an output port. The charger is in the housing and between the top member of the housing and the blower. The duct has an input port and an output port. The input port of the duct is coupled to the output port of the blower, and the output port of the duct is coupled to the air-return port of the housing. The duct forms a barrier between the accommodating space and the air-return port of the housing.

Magnetic field shielding sheet, method for manufacturing magnetic field shielding sheet, and antenna module using same
11594356 · 2023-02-28 · ·

Provided are a roll-shaped magnetic field shielding sheet, a method of manufacturing a magnetic field shielding sheet, and an antenna module using the same, which can improve the efficiency of the overall production process by improving a heat treatment process for a thin film magnetic sheet. The magnetic field shielding sheet includes: at least one thin film magnetic sheet; an insulating layer or insulating layers formed on one or either side of the at least one thin film magnetic sheet; and an adhesive layer formed between the insulating layers of the adjacent thin film magnetic sheets to laminate and bond the thin film magnetic sheets, wherein the thin film magnetic sheet is flake-treated to be divided into a plurality of magnetic substance fragments.

Magnetic field shielding sheet, method for manufacturing magnetic field shielding sheet, and antenna module using same
11594356 · 2023-02-28 · ·

Provided are a roll-shaped magnetic field shielding sheet, a method of manufacturing a magnetic field shielding sheet, and an antenna module using the same, which can improve the efficiency of the overall production process by improving a heat treatment process for a thin film magnetic sheet. The magnetic field shielding sheet includes: at least one thin film magnetic sheet; an insulating layer or insulating layers formed on one or either side of the at least one thin film magnetic sheet; and an adhesive layer formed between the insulating layers of the adjacent thin film magnetic sheets to laminate and bond the thin film magnetic sheets, wherein the thin film magnetic sheet is flake-treated to be divided into a plurality of magnetic substance fragments.

Wireless charging module and electronic device thereof
11508516 · 2022-11-22 · ·

The present disclosure is related to a wireless charging module and an electronic device thereof. The wireless charging module includes a base, at least one magnetic shielding sheet, and a coil. The base includes at least two metal melting regions. Each metal melting region includes an opening, and a blocking region disposed at the opening. The magnetic shielding sheet is disposed on the base. The magnetic shielding sheet partially exposes the two metal melting regions and the openings. The coil is disposed on the magnetic shielding sheet. The coil includes two leads. The two leads are respectively disposed on the two metal melting regions. The two leads are disposed in the blocking regions and the openings. The electronic device includes the wireless charging module and a power supply. The wireless charging module is electrically connected to the power supply.

Wireless charging module and electronic device thereof
11508516 · 2022-11-22 · ·

The present disclosure is related to a wireless charging module and an electronic device thereof. The wireless charging module includes a base, at least one magnetic shielding sheet, and a coil. The base includes at least two metal melting regions. Each metal melting region includes an opening, and a blocking region disposed at the opening. The magnetic shielding sheet is disposed on the base. The magnetic shielding sheet partially exposes the two metal melting regions and the openings. The coil is disposed on the magnetic shielding sheet. The coil includes two leads. The two leads are respectively disposed on the two metal melting regions. The two leads are disposed in the blocking regions and the openings. The electronic device includes the wireless charging module and a power supply. The wireless charging module is electrically connected to the power supply.

Wireless charging system and associated methods
11509172 · 2022-11-22 · ·

A wireless charging system concurrently charges several wireless devices within a shielded chamber acting as a hollow electromagnetic waveguide. Electrically conductive walls of the chamber create transverse modes that support longitudinal propagation of the electromagnetic field along the waveguide with no diminution of the energy flux density due to the inverse-square law. A transmitting antenna located inside the chamber emits an electromagnetic field that excites one or more transverse modes of the waveguide. An absorptive lid absorbs the electromagnetic field to minimize reflections that could excite longitudinal modes. Each wireless device includes a whisker antenna that receives part of the electromagnetic field for charging a battery. Due to the spatial uniformity of the electromagnetic field, the wireless devices charge with high efficiency regardless of their positions, ensuring they all charge at a similar rate.