IP Library Granted Patent US 10,888,045
Granted Patent B2
US 10,888,045 · App. 15/435,660 · Granted Jan 12, 2021

Weeding robot and method

Inventors: Rory MacKean (Concord, MA); Joseph L. Jones (Acton, MA); James T. Francis, Jr. (Merrimack, NH)
Assignee: Franklin Robotics, Inc.
A01D34/008A01M21/02G05D1/0246G05D2201/0201
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Quick Facts
Patent No.
US 10,888,045
App. No.
15/435,660
Granted
Jan 12, 2021
Kind
B2
Abstract

An autonomous garden weeding robot includes a chassis, a motorized cutting subsystem, and a drive subsystem for maneuvering the chassis. A weed sensor subsystem is located on the chassis at a first elevation from the ground and a crop/obstacle sensor subsystem is located on the chassis at a second, higher elevation from the ground. The drive subsystem is controlled to maneuver the chassis about a garden. Upon detection of a weed, the motorized cutting subsystem is energized to cut the weed. The motorized cutting subsystem is de-energized after the chassis has moved a predetermined distance and/or after a predetermined period of time. Upon detection of a crop or obstacle, the drive subsystem is controlled to maneuver the chassis away from the obstacle.

Claims (35)

1. A weeding robot comprising:

a chassis;

a drive subsystem, for maneuvering the chassis, including a set of motor-driven wheels, at least one wheel of the set having a ground-contacting tread with a set of cleats;

a rechargeable battery configured to power the drive subsystem;

a solar panel configured to charge the battery;

an obstacle sensor subsystem on the chassis configured to detect objects including plants having a height above a threshold;

a controller subsystem, configured for autonomous operation of the robot for weeding, responsive to the obstacle sensor subsystem and configured to:

de-energize the drive subsystem until charge of the battery has been restored to a predetermined level by the solar panel,

control the drive subsystem to maneuver the chassis about a defined space, and

upon detection of an obstacle via an output of the obstacle sensor subsystem, control the drive subsystem to maneuver the chassis away from the obstacle, under rules configured to produce a high likelihood of operation of the robot over the entire defined space.

2. The weeding robot of claim 1 , further comprising a motorized cutting subsystem, and wherein the controller subsystem is further configured to de-energize the motorized cutting subsystem after the chassis has moved a predetermined distance and/or after a predetermined period of time.

3. The weeding robot of claim 1 wherein the controller subsystem is configured to maneuver the chassis about the defined space in a random pattern.

4. The weeding robot of claim 2 in which the motorized cutting subsystem includes a motor proximate front of the chassis with a shaft carrying a string rotated below the chassis.

5. The weeding robot of claim 1 , wherein each wheel in the drive subsystem is separately powered by a distinct motor.

6. The weeding robot of claim 1 , wherein the obstacle sensor subsystem includes a capacitance proximity sensor.

7. The weeding robot of claim 1 , wherein the obstacle sensor subsystem includes right and left forward mounted capacitance sensors.

8. The weeding robot of claim 7 , wherein the right and left forward mounted capacitance sensors are capaciflector proximity sensors.

9. The weeding robot of claim 1 , wherein the controller subsystem is configured to maneuver the chassis about the defined space in a deterministic pattern.

10. A weeding robot comprising:

a chassis;

a drive subsystem, for maneuvering the chassis;

a rechargeable battery configured to power the drive subsystem;

a solar panel configured to charge the battery;

an obstacle sensor subsystem on the chassis configured to detect objects including plants having a height above a threshold;

a controller subsystem configured for autonomous operation of the robot for weeding, responsive to the obstacle sensor subsystem and configured to:

de-energize the drive subsystem until charge of the battery has been restored to a predetermined level by the solar panel;

control the drive subsystem to maneuver the chassis about a defined space, and

upon detection of an obstacle via an output of the obstacle sensor subsystem, control the drive subsystem to maneuver the chassis away from the obstacle, under rules configured to produce a high likelihood of operation of the robot over the entire defined space.

11. A weeding robot comprising:

a chassis;

a drive subsystem, for maneuvering the chassis;

an obstacle sensor subsystem on the chassis configured to detect objects including plants having a height above a threshold;

a controller subsystem configured for autonomous operation of the robot for weeding, responsive to the obstacle sensor subsystem and configured to:

control the drive subsystem to maneuver the chassis about a defined space, and

upon detection of an obstacle via an output of the obstacle sensor subsystem, control the drive subsystem to maneuver the chassis away from the obstacle, under rules configured to produce a high likelihood of operation of the robot over the entire defined space.

Assignments (3)
MERGER Recorded Jun 5, 2023
From: TERTILL CORPORATION
To: HARVEST AUTOMATION MERGER SUB, LLC
Reel/Frame 063854/0881 →
CHANGE OF NAME Recorded Jun 1, 2023
From: FRANKLIN ROBOTICS, INC.
To: TERTILL CORPORATION
Reel/Frame 063824/0338 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 17, 2017
From: MACKEAN, RORY; JONES, JOSEPH L.; FRANCIS, JAMES T., JR.
To: FRANKLIN ROBOTICS, INC.
Reel/Frame 041285/0520 →
Continuity (2)
Provisional Application 62298188 · Feb 22, 2016
Related Publication 20170238460A1 · Aug 24, 2017