IP Library Granted Patent US 12703254
Granted Patent B2
US 12703254 · App. 19/202,098 · Granted Aug 11, 2026

Contactless power supply system, power transmission apparatus, power reception apparatus

Inventors: Masaya Takahashi (Kariya-city, JP); Yusei Nakayashiki (Kariya-city, JP); Mitsuru Shibanuma (Kariya-city, JP); Hidetoshi Yamada (Kariya-city, JP); Nobuhisa Yamaguchi (Kariya-city, JP)
Assignee: DENSO CORPORATION
B60L53/122B60L53/22H02J50/12H02J50/402B60L2210/30B60L2210/40
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Quick Facts
Patent No.
US 12703254
App. No.
19/202,098
Granted
Aug 11, 2026
Kind
B2
Abstract

A contactless power supply system is provided with a transmission apparatus, and a reception apparatus to which the transmission apparatus supplies power in a contactless manner. The reception apparatus includes: a secondary resonant circuit, a rectifier circuit, an immittance circuit, a load, a protection switch changing the state between a conductive state and a non-conductive state, thereby causing the secondary resonant circuit to be in a non-resonant state, and a secondary side control circuit that sets the protection switch to be in the conductive state or the non-conductive state. The primary side control circuit changes the impedance of the variable impedance element, using a detection value of the primary detection circuit which changes depending on the state of the protection switch being set to be in the conductive state or the non-conductive state, thereby causing the reception apparatus to be in the standby state from the transmission state.

Claims (111)

1 . A contactless power supply system comprising:

a transmission apparatus; and

a reception apparatus to which the transmission apparatus supplies power in a contactless manner,

wherein

the transmission apparatus comprises:

a primary resonant circuit including a primary coil and a primary capacitor;

an AC power source that supplies AC power having a predetermined operating frequency to the primary resonant circuit;

a variable impedance element connected between the primary coil and the AC power source to change a state of the transmission apparatus between a transmission state and a standby state;

a primary side control circuit that changes an impedance of the variable impedance element; and

a primary detection circuit that detects at least one of a magnitude of a magnetic flux interlinking with the primary coil and a magnitude of a magnetic flux in the vicinity of the primary coil,

the reception apparatus comprises:

a secondary resonant circuit including a secondary coil to be magnetically coupled with the primary coil, and a secondary capacitor;

a rectifier circuit that rectifies an AC power outputted from the secondary resonant circuit;

an immittance circuit connected between the rectifier circuit and the secondary resonant circuit;

a load to which a DC power outputted from the rectifier circuit is supplied; and

a protection switch of which the state is changed to be in a conductive state or a non-conductive state, thereby causing the secondary resonant circuit to be in a non-resonant state; and

a secondary side control circuit that sets the state of the protection switch to be in either the conductive state or the non-conductive state, and

the primary side control circuit is configured to change the impedance of the variable impedance element, using a detection value of the primary detection circuit which changes depending on the state of the protection switch being set to be in the conductive state or the non-conductive state, thereby causing the reception apparatus to be in the standby state from the transmission state.

2 . The contactless power supply system according to claim 1 ,

wherein

the secondary capacitor is connected in series to the secondary coil;

the protection switch is connected in parallel to the secondary coil; and

the secondary side control circuit is configured to set the protection switch to be in the conductive state in response to a reception of a power supply stop signal.

3 . The contactless power supply system according to claim 2 ,

wherein

the protection switch is configured as at least one of a bi-directional switch using two MOSFETs, a semiconductor relay, and a triac.

4 . The contactless power supply system according to claim 2 ,

wherein

the rectifier circuit includes a rectifier switch in at least either a lower arm or an upper arm;

the secondary side control circuit is configured to set, in response to a reception of a power supply stop signal, the rectifier switch to be in the conductive state before setting the protection switch to be in the conductive state.

5 . The contactless power supply system according to claim 1 ,

wherein

the secondary capacitor is connected in series to the secondary coil;

the protection switch is connected in parallel to the secondary capacitor; and

the secondary side control circuit sets the protection switch to be in the conductive state in response to a reception of the power supply stop signal.

6 . The contactless power supply system according to claim 1 ,

wherein

the protection switch is configured as at least one of a bi-directional switch using two MOSFETs, a semiconductor relay, and a triac.

7 . The contactless power supply system according to claim 5 ,

wherein

the rectifier circuit includes a rectifier switch in at least either a lower arm or an upper arm;

the secondary side control circuit is configured to set, in response to a reception of a power supply stop signal, the protection switch to be in the conductive state after setting the rectifier switch to be in the non-conductive state.

8 . The contactless power supply system according to claim 1 ,

wherein

the secondary capacitor is connected in series to the secondary coil;

the protection switch is a semiconductor switching element and connected in series between the secondary capacitor and the rectifier circuit; and

the secondary side control circuit changes, in response to a reception of a stop power supply signal, a state of the protection switch to be in the non-conductive state.

9 . The contactless power supply system according to claim 8 ,

wherein

the protection switch is a bi-directional switch using two MOSFETs.

10 . The contactless power supply system according to claim 8 ,

wherein

the protection switch is configured of a single MOSFET.

11 . A contactless power supply system comprising:

a transmission apparatus; and

a reception apparatus to which the transmission apparatus supplies power in a contactless manner,

wherein

the transmission apparatus comprises:

a primary resonant circuit including a primary coil and a primary capacitor;

an AC power source that supplies AC power having a predetermined operating frequency to the primary resonant circuit;

a variable impedance element connected between the primary coil and the AC power source to change a state of the transmission apparatus between a transmission state and a standby state;

a primary side control circuit that changes an impedance of the variable impedance element; and

a primary detection circuit that detects at least one of a magnitude of a magnetic flux interlinking with the primary coil and a magnitude of a magnetic flux in the vicinity of the primary coil,

the reception apparatus comprises:

a secondary resonant circuit including a secondary coil to be magnetically coupled with the primary coil, and a secondary capacitor;

a rectifier circuit that rectifies an AC power outputted from the secondary resonant circuit, including a rectifier switch in at least either a lower arm or an upper arm;

an immittance circuit connected between the rectifier circuit and the secondary resonant circuit;

a load to which a DC power outputted from the rectifier circuit is supplied;

a protection switch of which the state is changed to be in a conductive state or a non-conductive state, thereby causing the secondary resonant circuit to be in a non-resonant state;

a secondary side control circuit that sets the state of the protection switch to be in either the conductive state or the non-conductive state; and

a state detection circuit that detects a state of the transmission apparatus,

wherein

the secondary side control circuit performs a first process that sets, in response to a reception of a power supply stop signal, the rectifier switch to be in the conductive state before setting the protection switch to be in the conductive state, and in the case where the state of the transmission apparatus detected by the state detection unit after performing the first process is in the transmission state, the secondary side control circuit sets the protection switch to be in the conductive state;

the primary side control circuit is configured to change the impedance of the variable impedance element, using at least one of a detection value of the primary detection circuit which changes depending on the state of the rectifier switch being set to be in the conductive state and a detection value of the primary detection circuit which changes depending on the state of the protection switch being set to be in the conductive state or the non-conductive state, thereby causing the reception apparatus to be in the standby state from the transmission state.

12 . The contactless power supply system according to claim 11 ,

wherein

the state detection circuit detects a temperature of at least one of the rectifier switch and the immittance circuit, and outputs a signal indicating that the transmission apparatus is in the transmission state in the case where the detected temperature is higher than a predetermined reference temperature.

13 . A transmission apparatus that supplies power to a reception apparatus in a contactless manner,

wherein

the transmission apparatus comprises:

a primary resonant circuit including a primary coil and a primary capacitor;

an AC power source that supplies AC power having a predetermined operating frequency to the primary resonant circuit;

a variable impedance element connected between the primary coil and the AC power source to change a state of the transmission apparatus between a transmission state and a standby state;

a primary side control circuit that changes an impedance of the variable impedance element; and

a primary detection circuit that detects at least one of a magnitude of a magnetic flux interlinking with the primary coil and a magnitude of a magnetic flux in the vicinity of the primary coil,

the reception apparatus comprises:

a secondary resonant circuit including a secondary coil to be magnetically coupled with the primary coil, and a secondary capacitor;

a rectifier circuit that rectifies an AC power outputted from the secondary resonant circuit;

an immittance circuit connected between the rectifier circuit and the secondary resonant circuit;

a load to which a DC power outputted from the rectifier circuit is supplied;

a protection switch of which the state is changed to be in a conductive state or a non-conductive state, thereby causing the secondary resonant circuit to be in a non-resonant state;

a secondary side control circuit that sets the state of the protection switch to be in either the conductive state or the non-conductive state,

wherein

the primary side control circuit is configured to change the impedance of the variable impedance element, using a detection value of the primary detection circuit which changes depending on the state of the protection switch being set to be in the conductive state or the non-conductive state, thereby causing the reception apparatus to be in the standby state from the transmission state.

14 . A reception apparatus supplied with power from a transmission apparatus in a contactless manner,

wherein

the transmission apparatus comprises:

a primary resonant circuit including a primary coil and a primary capacitor;

an AC power source that supplies AC power having a predetermined operating frequency to the primary resonant circuit;

a variable impedance element connected between the primary coil and the AC power source to change a state of the transmission apparatus between a transmission state and a standby state;

a primary side control circuit that changes an impedance of the variable impedance element; and

a primary detection circuit that detects at least one of a magnitude of a magnetic flux interlinking with the primary coil and a magnitude of a magnetic flux in the vicinity of the primary coil,

the reception apparatus comprises:

a secondary resonant circuit including a secondary coil to be magnetically coupled with the primary coil, and a secondary capacitor;

a rectifier circuit that rectifies an AC power outputted from the secondary resonant circuit;

an immittance circuit connected between the rectifier circuit and the secondary resonant circuit;

a load to which a DC power outputted from the rectifier circuit is supplied;

a protection switch of which the state is changed to be in a conductive state or a non-conductive state, thereby causing the secondary resonant circuit to be in a non-resonant state;

a secondary side control circuit that sets the state of the protection switch to be in either the conductive state or the non-conductive state,

wherein

the primary side control circuit is configured to change the impedance of the variable impedance element, using a detection value of the primary detection circuit which changes depending on the state of the protection switch being set to be in the conductive state or the non-conductive state, thereby causing the reception apparatus to be in the standby state from the transmission state.