IP Library Granted Patent US 12,456,882
Granted Patent B2
US 12,456,882 · App. 18/095,697 · Granted Oct 28, 2025

Wireless power reception apparatus

Inventors: Sang-Won Kim (Daejeon, KR); Gwangzeen Ko (Daejeon, KR); Seong-Min Kim (Daejeon, KR); Jung Ick Moon (Daejeon, KR); Je Hoon Yun (Daejeon, KR); In Kui Cho (Daejeon, KR); Saidul Alam Chowdhury (Incheon, KR); Shahid Ali Khan (Incheon, KR); Duk Ju Ahn (Incheon, KR)
Assignee: ELECTRONICS AND TELECOMMUCATIONS RESEARCH INSTITUTE
H02J50/12
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,456,882
App. No.
18/095,697
Granted
Oct 28, 2025
Kind
B2
Abstract

Provided is a wireless power reception apparatus. The wireless power reception apparatus includes a resonant circuit including a first path and a second path, the first path including a first capacitor and a first gate connected in series, and the second path being connected in parallel with the first path and including a second capacitor and a second gate connected in series and a reception coil connected to the resonant circuit, configured to wirelessly receive power based on a capacitance of the resonant circuit, and to generate power according to the wirelessly received power, wherein the resonant circuit is configured to determine a gate driving signal to operate the first gate and the second gate and wherein the capacitance of the resonant circuit is determined according to the gate driving signal.

Claims (29)

1 . A wireless power reception apparatus comprising:

a resonant circuit comprising a first component and a second component, the first component comprising a first capacitor and a first gate connected in series, and the second component being connected in parallel with the first component and comprising a second capacitor and a second gate connected in series; and

a reception coil connected in series to the resonant circuit, and configured to wirelessly receive power at a resonant frequency determined based on a capacitance of the resonant circuit, and to output power according to the wirelessly received power, wherein current flowing through the reception coil is divided between the first and second capacitors such that the current flowing through the reception coil equals a sum of current flowing through the first capacitor and current flowing through the second capacitor,

wherein the resonant circuit is configured to determine a gate driving signal to operate the first gate and the second gate, and to transmit the power applied to at least one of the first component and the second component by inputting the gate driving signal to the first gate and the second gate, and

wherein the capacitance of the resonant circuit is determined according to the gate driving signal,

wherein the resonant circuit is configured to control the capacitance of the resonant circuit to be greater than a capacitance of the first capacitor and a capacitance of the second capacitor by inputting a delayed gate driving signal to the first gate and the second gate, wherein the delayed gate driving signal indicates a delayed signal compared to a reference gate driving signal applied to the first or second gate based on a phase of a voltage induced in the reception coil.

2 . The wireless power reception apparatus of claim 1 , wherein the resonant circuit is configured to control the capacitance of the resonant circuit to be less than a capacitance of the first capacitor and a capacitance of the second capacitor by inputting a led gate driving signal to the first gate and the second gate, wherein the led gate driving signal indicates a signal that is led compared to a reference gate driving signal applied to the first or second gate based on a phase of a voltage induced in the reception coil.

3 . The wireless power reception apparatus of claim 1 , wherein:

the resonant circuit is configured to apply the gate driving signal having a same duty ratio of the first gate and the second gate to the first gate and the second gate, and

the first gate and the second gate are configured to perform zero-voltage switching according to the gate driving signal.

4 . The wireless power reception apparatus of claim 1 , wherein a magnitude of the power is determined according to a transmission frequency at which the power is wirelessly transmitted and the capacitance of the resonant circuit.

5 . A wireless power reception apparatus comprising:

a resonant circuit comprising a first component and a second component, the first component comprising a first capacitor and a first gate connected in series, and the second component being connected in parallel with the first component and comprising a second capacitor and a second gate connected in series; and

a reception coil connected to the resonant circuit and configured to transmit power generated according to a wirelessly received power to the resonant circuit, based on a resonant frequency of the wireless power reception apparatus, wherein current flowing through the reception coil is divided between the first and second capacitors such that the current flowing through the reception coil equals a sum of current flowing through the first capacitor and current flowing through the second capacitor,

wherein the resonant circuit is configured to transmit the power through at least one of the first component and the second component and has a capacitance that is different from a capacitance of the first capacitor and a capacitance of the second capacitor according to a gate driving signal to control an operation of the first gate and the second gate, and

wherein the resonant frequency of the wireless power reception apparatus is determined based on the capacitance of the resonant circuit,

wherein the resonant circuit is configured to control the capacitance of the resonant circuit to be greater than the capacitance of the first capacitor and the capacitance of the second capacitor by inputting a delayed gate driving signal to the first gate and the second gate, wherein the delayed gate driving signal indicates a delayed signal compared to a reference gate driving signal applied to the first or second gate based on a phase of a voltage induced in the reception coil.

6 . The wireless power reception apparatus of claim 5 , wherein the resonant circuit is configured to control the capacitance of the resonant circuit to be less than the capacitance of the first capacitor and the capacitance of the second capacitor by inputting a led gate driving signal to the first gate and the second gate, wherein the led gate driving signal indicates a signal that is led compared to a reference gate driving signal applied to the first or second gate based on a phase of a voltage induced in the reception coil.

7 . The wireless power reception apparatus of claim 5 , wherein:

the resonant circuit is configured to apply the gate driving signal having a same duty ratio of the first gate and the second gate to the first gate and the second gate, and

the first gate and the second gate are configured to perform zero-voltage switching according to the gate driving signal.

8 . The wireless power reception apparatus of claim 5 , wherein a magnitude of the power is determined according to a transmission frequency at which the power is wirelessly transmitted and the capacitance of the resonant circuit.

9 . A wireless power reception apparatus comprising:

a reception coil configured to wirelessly receive power based on a resonant frequency of the wireless power reception apparatus and to output power according to the wirelessly received power; and

a resonant circuit comprising a plurality of capacitors and a plurality of gates and configured to receive the generated power from the reception coil and to transmit the generated power by inputting a gate driving signal to the plurality of gates, wherein current flowing through the reception coil is divided between the first and second capacitors such that the current flowing through the reception coil equals a sum of currents flowing through the plurality of capacitors, wherein the resonant circuit is configured to control a capacitance of the resonant circuit, using the gate driving signal input to the plurality of gates, and

wherein the resonant frequency is determined based on the capacitance of the resonant circuit,

wherein the resonant circuit is configured to control the capacitance of the resonant circuit to be greater than a capacitance of each of the plurality of capacitors by inputting a delayed gate driving signal to the plurality of gates, wherein the delayed gate driving signal indicates a delayed signal compared to a reference gate driving signal applied to the first or second gate based on a phase of a voltage induced in the reception coil.

10 . The wireless power reception apparatus of claim 9 , wherein the resonant circuit is configured to control the capacitance of the resonant circuit to be less than a capacitance of each of the plurality of capacitors by inputting a led gate driving signal to the plurality of gates, wherein the led gate driving signal indicates a signal that is led compared to a reference gate driving signal applied to the first or second gate based on a phase of a voltage induced in the reception coil.

11 . The wireless power reception apparatus of claim 9 , wherein a magnitude of the generated power is determined according to a transmission frequency at which the power is wirelessly transmitted and the capacitance of the resonant circuit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2023
From: KIM, SANG-WON; KO, GWANGZEEN; KIM, SEONG-MIN; MOON, JUNG ICK; YUN, JE HOON; CHO, IN KUI; CHOWDHURY, SAIDUL ALAM; KHAN, SHAHID ALI; AHN, DUK JU
To: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
Reel/Frame 062344/0174 →
Priority Claims (1)
KR 10-2022-0065473 · May 27, 2022 · national
Continuity (1)
Related Publication 20230387722A1 · Nov 30, 2023
References Cited (11)
US 10826328B2 · Lee et al. · 2020 [cited by applicant]
US 11038432B2 · Kajiyama et al. · 2021 [cited by applicant]
US 11283298B2 · Liu et al. · 2022 [cited by applicant]
US 20130234527A1 · Ishihara · 2013 [cited by examiner]
US 20180175811A1 · Canning et al. · 2018 [cited by applicant]
US 20190165614A1 · Afridi · 2019 [cited by examiner]
US 20190273400A1 · Ahn et al. · 2019 [cited by applicant]
US 20200287382A1 · Gao · 2020 [cited by examiner]
JP WO2019202631A1 · 2020 [cited by applicant]
Jianzhong Zhang et al., “A Wireless Power Transfer System with Dual Switch-Controlled Capacitors for Efficiency Optimization”, IEEE Transactions on Power Electronics, vol. 35, No. 6, Jun. 2020. [cited by applicant]
Kentaro Matsuura et al., “Communication-Less Receiver-Side Resonant Frequency Tuning Method for Magnetically Coupled Wireless Power Transfer Systems”, 2021 Radio Wireless Symposium. [cited by applicant]