IP Library › Granted Patent US 11,458,855
Granted Patent B2
US 11,458,855 · App. 16/636,987 · Granted Oct 4, 2022

Electric vehicle charging system using robot and method for charging electric vehicle using same

Inventor: Chang Eui Shin (Seongnam-si, KR)
Assignee: LG ELECTRONICS INC.
B60L53/37B60L53/16B60L53/305G08G1/017H02J7/0045
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 11,458,855
App. No.
16/636,987
Granted
Oct 4, 2022
Kind
B2
Abstract

An electric vehicle charging system using a robot and a charging method using the same are disclosed. The electric vehicle charging system using a robot, for connecting a charging connector to a charging socket of the electric vehicle, includes a robot arm for moving and rotating the charging connector, an image acquirer installed in the robot arm so as to generate image information of the charging socket, and a controller for controlling operation of the robot arm and the image acquirer. The image acquirer includes a first light controller provided with a first lamp and a first illuminance sensor, a second light controller installed at an opposite side of the first light controller with respect to the charging connector, and provided with a second lamp and a second illuminance sensor, and a camera capturing an image of the charging socket.

Claims (91)

1. An electric vehicle charging system, comprising:

a charging connector configured to be connected to a charging socket of an electric vehicle;

a robot arm configured to move the charging connector;

a camera assembly provided in the robot arm; and

a controller configured to control the robot arm and the camera assembly,

wherein the camera assembly includes:

a first light controller including a first lamp and a first illuminance sensor, the first light controller being provided at a first side of the charging connector;

a second light controller including a second lamp and a second illuminance sensor, the second light controller being provided at a second side of the charging connector, the second side of the charging connector being opposite to the first side of the charging connector; and

a camera,

wherein the first illuminance sensor is configured to measure illuminance of light reflected by the charging socket while the second lamp is turned on, to obtain a first measurement value,

wherein the second illuminance sensor is configured to measure illuminance of light reflected by the charging socket while the first lamp is turned on, to obtain a second measurement value, and

wherein the camera is configured to capture an image of the charging socket when the first lamp and the second lamp are turned on, and when a difference between the first measurement value and the second measurement value is equal to or less than the reference value.

2. The system according to claim 1 , wherein the robot arm further includes:

a first body configured to hold the charging connector; and

a second body rotatably mounted on the first body, the second body including the camera assembly, and

wherein the controller is further configured to rotate the second body when the difference between the first measurement value and the second measurement value is higher than the reference value.

3. The system according to claim 1 , further including:

an inner gear coupled to the second body;

a stepper motor provided in the first body; and

a pinion provided in the first body;

wherein the controller is further configured to operate the stepper motor to rotate the pinion, and

wherein the second body is configured to rotate when the pinion rotates.

4. The system according to claim 1 , wherein the controller is further configured to, when the difference between the first measurement value and the second measurement value is greater than the reference value:

determine that the charging socket has an opened cover,

control the robot arm to rotate about the charging connector to minimize an amount of light reflected by the opened cover of the charging socket, and

control the camera to capture an image of the charging socket.

5. The system according to claim 4 , wherein a middle point between the first lamp and the second lamp coincides with an axis of rotation of the robot arm, and

wherein when the robot arm rotates, the first lamp and the second lamp move in a circumferential direction about the axis of rotation of the robot arm.

6. The system according to claim 5 , wherein an angle between the camera and the first lamp with respect to the axis of rotation of the robot arm is identical to an angle between the camera and the second lamp with respect to the axis of rotation of the robot arm.

7. An electric vehicle charging system, comprising:

a charging connector configured to be connected to a charging socket of an electric vehicle;

a robot arm configured to move the charging connector;

a first light controller configured to:

radiate light to the charging socket, and

measure illuminance of light reflected from the charging socket to obtain a first measurement value;

a second light controller configured to:

radiate light to the charging socket, and

measure illuminance of light from the charging socket to obtain a second measurement value;

a camera provided in the robot arm, the camera being configured to capture an image of the charging socket; and

a controller configured to:

control the camera to capture the image of the charging socket, when a difference between the first measurement value and the second measurement value is equal to or less than a reference value,

determine position information of the charging socket relative to the electric vehicle based on the captured image, and

store the position information of the charging socket relative to the electric vehicle in memory.

8. The system according to claim 7 , wherein the first light controller is provided at a first side of the charging connector,

wherein the second light controller is provided at a second side of the charging connector, the second side of the charging connector being opposite to the first side of the charging connector,

wherein the first light controller is configured to measure illuminance of the radiated light, while the second light controller radiates light, and

wherein the second light controller is configured to measure illuminance of the radiated light while the first light controller radiates light.

9. The system according to claim 7 , wherein the controller is further configured to, when the difference the first measurement value and the second measurement value is greater than the reference value:

determine that the charging socket has an opened cover,

control the robot arm to rotate about the charging connector to minimize an amount of light reflected by the opened cover of the charging socket, and

control the camera to capture an image of the charging socket.

10. The system according to claim 9 , wherein an angle between the camera and the first light controller with respect to an axis of rotation of the robot arm is identical to an angle between the camera and the second light controller with respect to the axis of rotation of the robot arm.

11. A method of charging an electric vehicle having a charging socket, the method comprising:

providing an electric vehicle charging system, including:

a charging connector; and

a robot arm, the robot arm including:

a first light controller including a first lamp and a first illuminance sensor; and

a second light controller including a second lamp and a second illuminance sensor;

positioning the charging connector, by the robot arm, in front of the charging socket;

measuring, by the first illuminance sensor, light reflected by the charging socket, to obtain a first measurement value;

measuring, by the second illuminance sensor, light reflected by the charging socket, to obtain a second measurement value;

capturing an image of the charging socket to generate real-time image information of the charging socket, when a difference between the first measurement value and the second measurement value is equal to or less than a reference value;

comparing the real-time image information of the charging socket with reference image information of the charging socket, to generate real-time position information of the charging socket; and

connecting the charging connector to the charging socket by moving the robot arm, based on the real-time position information of the charging socket.

12. The method according to claim 11 , wherein the first lamp and the first illuminance sensor are provided at a first side of the charging connector, and

wherein the second lamp and the second illuminance sensor are provided at a second side of the charging connector, the second side of the charging connector being opposite to the first side of the charging connector.

13. The method according to claim 11 , wherein the measuring, by the second illuminance sensor, light reflected by the charging socket, is performed while the first lamp is turned on, and

wherein the measuring, by the first illuminance sensor, light reflected by the charging socket, is performed while the second lamp is turned on.

14. The method according to claim 11 , wherein the robot arm further includes a pair of grippers, and

wherein the method further includes holding the charging connector with the grippers.

15. The method according to claim 11 , wherein the method further comprises, when the difference between the first measurement value and the second measurement value is greater than the reference value, rotating the robot arm about the charging connector until the difference between the first measurement value and the second measurement value is equal to or less than the reference value, and then:

capturing an image of the charging socket to generate real-time image information of the charging socket;

matching the real-time image information of the charging socket with the reference image information of the charging socket, so as to generate the real-time position information of the charging socket; and

connecting the charging connector to the charging socket by moving the robot arm, based on the real-time position information of the charging socket.

16. The method according to claim 15 , wherein a middle point between the first lamp and the second lamp coincides with an axis of rotation of the robot arm, and

wherein when the robot arm rotates, the first lamp and the second lamp move in a circumferential direction about the axis of rotation of the robot arm.

17. The method according to claim 11 , wherein the positioning the charging connector in front of the charging socket includes:

moving the robot arm based on reference position information of the charging socket;

capturing a closed cover of the charging socket by the camera, while the first lamp and the second lamp are turned on, to generate real-time image information of the cover;

generating real-time position information of the cover by matching the real-time image information of the cover with reference image information of the cover;

generating predicted position information of the charging socket based on the real-time position information of the cover and relative position information of the charging socket; and

moving the robot arm in front of the charging socket, based on the predicted position information of the charging socket.

18. The method according to claim 17 , wherein after positioning the robot arm in front of the charging socket, based on the predicted position information of the charging socket, the method further comprises:

opening the cover to expose the charging socket, and

moving the robot arm toward the charging socket to increase an amount of light radiated to the charging socket from the first lamp and the second lamp.

19. The method according to claim 11 , wherein prior to the positioning the charging connector in front of the charging socket, the method further comprises:

capturing, by a surveillance camera, a license plate of the electric vehicle; and

determining whether basic information of the electric vehicle, based on the license plate, is stored in memory.

20. The method according to claim 19 , wherein the electric vehicle charging system further includes an output interface,

wherein the method further comprises outputting a basic information input window to the output interface, when the basic information of the electric vehicle is not stored in memory, and

wherein the basic information input window includes an input for type information of the electric vehicle and for reference position information of the charging socket.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 7, 2020
From: SHIN, CHANG EUI
To: LG ELECTRONICS INC.
Reel/Frame 051749/0185 →
Continuity (1)
Related Publication 20200361331A1 · Nov 19, 2020
Cited By (1)
US 12,697,711