IP Library Granted Patent US 11,589,723
Granted Patent B2
US 11,589,723 · App. 15/931,204 · Granted Feb 28, 2023

Robot cleaner and controlling method thereof

Inventors: Yonggil Shin (Seoul, KR); Jeong Uk Cha (Seoul, KR); GaYeon Kim (Seoul, KR)
Assignee: LG ELECTRONICS INC.
A47L11/4011A47L11/03A47L11/4036B25J11/0085G05D1/0217G05D1/0219A47L2201/04A47L2201/06
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Quick Facts
Patent No.
US 11,589,723
App. No.
15/931,204
Granted
Feb 28, 2023
Kind
B2
Abstract

A robot cleaner and a method of controlling the robot cleaner are disclosed. The robot cleaner may include a body, a mop, an actuator, a battery, a tank, and a controller. The controller controls a supply of liquid from the water tank to the mop, and the supply of the liquid may be controlled in consideration of a state of the battery. Water injection may be controlled according to an expected use time of the battery, such that the mop can maintain an appropriate water content, and uniform mopping and cleaning can be performed.

Claims (67)

1. A robot cleaner, comprising:

a body;

a mop rotatably coupled to the body to wipe a floor;

an actuator configured to rotate the mop;

a battery configured to supply power to the actuator;

a tank configured to store liquid; and

a controller configured to manage delivery of the liquid from the tank to the mop,

wherein the controller manages the delivery of the liquid according to a state of the battery,

wherein the state of the battery includes an expected use time of the battery, and

wherein the robot cleaner has the expected use time (t1) based on the state of the battery, and the controller manages the delivery of the liquid from the tank such that the liquid is exhausted in a range of times between 0.9*t1 and t1 from a time point when an operation of the robot cleaner is started.

2. The robot cleaner of claim 1 , wherein the controller, when managing the delivery of the liquid, is further to manage at least one of a supply amount per unit time, a supply time, or a supply interval of the liquid from the tank to the mop.

3. The robot cleaner of claim 1 , wherein the state of the battery further includes one or more of a capacity, a voltage, or a charge rate.

4. The robot cleaner of claim 1 , further comprising:

a supply tube connected to the tank and having an injection nozzle configured to supply the liquid in the tank to the mop; and

a pump provided on the supply tube,

wherein the controller, when managing the delivery of the liquid, is further to manage an operation of the pump.

5. The robot cleaner of claim 4 , wherein the mop includes a first mop and a second mop configured to contact and wipe the floor,

wherein the robot cleaner is configured to move by rotation of the first mop and the second mop,

wherein the controller determines an expected moving distance of the robot cleaner according to the state of the battery, and

wherein the controller is further to manage the delivery of the liquid from the tank based on the expected moving distance, an amount of liquid consumption per moving distance of the robot cleaner, an amount of the liquid stored in the tank, and a liquid injection amount per unit time of the pump.

6. The robot cleaner of claim 1 , wherein the controller is further to manage the delivery of the liquid from the tank according to an amount of liquid consumption per rotation of the mop and an amount of the liquid stored in the tank.

7. The robot cleaner of claim 1 , wherein the mop includes a first mop and a second mop configured to contact and wipe the floor,

wherein the robot cleaner is configured to move by rotation of the first mop and the second mop,

wherein the controller determines an expected moving distance according to the state of the battery, and

wherein the controller is further to manage the delivery of the liquid according to the expected moving distance, an amount of liquid consumption per moving distance of the robot cleaner, and an amount of the liquid stored in the tank.

8. The robot cleaner of claim 1 , wherein the controller is further configured to derive the expected use time of the battery, and manage the delivery of the liquid according to a supply amount per unit time of the liquid and the expected use time.

9. The robot cleaner of claim 1 , wherein the mop includes a first mop and a second mop configured to wipe the floor, and

wherein the controller is further to adjust a first angle between a rotation axis of the first mop and the floor and a second angle between a rotation axis of the second mop and the floor.

10. A robot cleaner, comprising:

a body;

a mop rotatably coupled to the body to wipe a floor;

an actuator configured to rotate the mop;

a tank configured to store liquid;

a tube connected to the tank and including an injection nozzle to output the liquid from the tank to the mop;

a pump provided on the tube; and

a battery configured to supply power to the actuator and the pump,

wherein an operation of the pump is controlled according to a state of the battery,

wherein the state of the battery includes an expected use time of the battery, and

wherein the battery has the expected use time (t1), and the pump is controlled such that the liquid in the tank is exhausted in a time duration in a range between 0 9*t1 and t1 from a time point when operation of the robot cleaner is started.

11. The robot cleaner of claim 10 , wherein the state of the battery further includes one or more of a capacity, a voltage, or a charge rate of the battery.

12. A method of controlling a robot cleaner having a mop configured to be rotated and wipe a floor, an actuator configured to rotate the mop, a tank configured to store liquid that is supplied to the mop, and a battery configured to supply power to the actuator, the method comprising:

determining a state of the battery;

supplying the liquid from the tank to the mop; and

supplying power to the actuator to rotate the mop,

wherein the supplying of the liquid from the tank to the mop is adjusted according to the state of the battery, and

wherein the state of the battery includes an expected use time (t1) of the battery such that the liquid in the tank is exhausted in a time duration in a range between 0.9*t1 and t1 from a time point when operation of the robot cleaner is started.

13. The method of claim 12 , wherein the supplying of the liquid from the tank to the mop is adjusted according to an amount of liquid consumption per rotation of the mop and an amount of the liquid stored in the tank.

14. The method of claim 12 , wherein the mop includes a first mop and a second mop configured to wipe the floor by surface contact,

wherein the robot cleaner is configured to move by rotation of the first mop and the second mop,

wherein the method further comprises determining an expected moving distance of the robot cleaner based on the state of the battery, and

wherein the supplying of the liquid from the tank to the mop is adjusted based on the expected moving distance, an amount of liquid consumption per moving distance of the robot cleaner, and an amount of the liquid stored in the tank.

15. The method of claim 12 , wherein the mop includes a first mop and a second mop configured to wipe the floor by surface contact,

wherein the robot cleaner includes a pump configured to supply the liquid in the tank to the mop,

wherein the robot cleaner is configured to move by rotation of the first mop and the second mop,

wherein the method further comprises determining an expected moving distance of the robot cleaner based on the state of the battery, and

wherein the supplying of the liquid from the tank to the mop is adjusted according to the expected moving distance, an amount of liquid consumption per moving distance of the robot cleaner, an amount of the liquid stored in the tank, and an liquid injection amount per unit time by the pump.

16. The method of claim 12 , further comprising:

identifying the expected use time of the battery; and

determining an amount of the liquid supplied per unit time,

wherein the supplying of the liquid from the tank to the mop is adjusted according to the expected use time and the amount of the liquid supplied per unit time.

17. The method of claim 12 , wherein the robot cleaner includes a pump configured to supply the liquid from the tank to the mop, and

wherein the supplying of the liquid from the tank to the mop is adjusted based on adjusting operation of the pump.

18. The method of claim 12 , wherein the robot cleaner includes a pump configured to supply the liquid from the tank to the mop,

wherein the method further comprises:

determining the expected use time of the battery; and

identifying a liquid supply amount per unit time associated with the pump, and

wherein the supplying of the liquid from the tank to the mop is adjusted based on the expected use time and the liquid supply amount per unit time.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2020
From: SHIN, YONGGIL; CHA, JEONG UK; KIM, GAYEON
To: LG ELECTRONICS INC.
Reel/Frame 052652/0963 →
Priority Claims (1)
KR 10-2019-0119136 · Sep 26, 2019 · national
Continuity (1)
Related Publication 20210093144A1 · Apr 1, 2021
Cited By (1)
US 12,343,877