IP Library › Granted Patent US 12,538,863
Granted Patent B2
US 12,538,863 · App. 17/886,611 · Granted Feb 3, 2026

System and method for determining row cleaner aggressiveness of a seed-planting implement

Inventor: Trevor Stanhope (Oak Lawn, IL)
Assignee: CNH Industrial America LLC
A01C7/08A01C5/064G01F1/661
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Quick Facts
Patent No.
US 12,538,863
App. No.
17/886,611
Granted
Feb 3, 2026
Kind
B2
Abstract

A system for determining row cleaner aggressiveness of a seed-planting implement includes a row cleaner assembly having a row cleaner arm and a row cleaner wheel rotatably coupled to the row cleaner arm. Furthermore, the system includes an optical flow sensor configured to generate data indicative the movement of soil particles within a field across which the seed-planting implement is traveling relative to the seed-planting implement. Additionally, a computing system of the disclosed system includes is configured to determine a flow parameter associated with the movement of the soil particles relative to the seed-planting implement based on the data generated by the optical flow sensor. Furthermore, the computing system is configured to determine an aggressiveness parameter indicative of the amount of engagement between the row cleaner wheel and the surface of the field based on the determined flow parameter.

Claims (47)

1 . A seed-planting implement, comprising:

a toolbar;

a plurality of row units supported on the toolbar, each row unit comprising:

a frame;

a row cleaner assembly including a row cleaner arm pivotably coupled to the frame and a row cleaner wheel rotatably coupled to the row cleaner arm such that the row cleaner wheel is configured to roll relative to a surface of a field across which the seed-planting implement is traveling; and

an optical flow sensor configured to generate data indicative of a movement of soil particles within the field relative to the seed-planting implement; and

a computing system communicatively coupled to the optical flow sensor, wherein the computing system:

determines a plurality of motion vectors based on the data generated by the corresponding optical flow sensor, each motion vector of the plurality of motion vectors being associated with the movement of one of the soil particles within a field of view of the optical flow sensor;

determines an aggressiveness parameter indicative of an amount of engagement between the row cleaner wheel and the surface of the field for each row unit based on the corresponding determined plurality of motion vectors.

2 . The seed-planting implement of claim 1 , wherein the data generated by the optical flow sensor is indicative the movement of the soil particles within the field of view of the optical flow sensor relative to the seed-planting implement, the field of view being positioned aft of the row cleaner wheel relative to a direction of travel of the seed-planting implement.

3 . The seed-planting implement of claim 2 , wherein each row unit further comprises:

a disk opener rotatably coupled to the frame and positioned aft of the row cleaner assembly relative to the direction of travel, the disk opener configured to form a furrow within the field,

wherein the field of view is further positioned forward of the disk opener relative to the direction of travel.

4 . The seed-planting implement of claim 1 , wherein the optical flow sensor is coupled to the row cleaner arm.

5 . A system for determining row cleaner aggressiveness of a seed-planting implement, the system comprising:

a frame;

a row cleaner assembly including a row cleaner arm pivotably coupled to the frame and a row cleaner wheel rotatably coupled to the row cleaner arm such that the row cleaner wheel is configured to roll relative to a surface of a field across which the seed-planting implement is traveling;

an optical flow sensor configured to generate data indicative of a movement of soil particles within the field relative to the seed-planting implement; and

a computing system communicatively coupled to the optical flow sensor, wherein the computing system:

determines a plurality of motion vectors based on the data generated by the corresponding optical flow sensor, each motion vector of the plurality of motion vectors being associated with the movement of one of the soil particles within a field of view of the optical flow sensor; and

determines an aggressiveness parameter indicative of an amount of engagement between the row cleaner wheel and the surface of the field based on the determined plurality of motion vectors.

6 . The system of claim 5 , wherein the data generated by the optical flow sensor is indicative the movement of the soil particles within the field of view of the optical flow sensor relative to the seed-planting implement, the field of view being positioned aft of the row cleaner wheel relative to a direction of travel of the seed-planting implement.

7 . The system of claim 6 , further comprising:

a disk opener rotatably coupled to the frame and positioned aft of the row cleaner assembly relative to the direction of travel, the disk opener configured to form a furrow within the field,

wherein the field of view is further positioned forward of the disk opener relative to the direction of travel.

8 . The system of claim 5 , wherein when determining the aggressiveness parameter, the computing system determines a composite motion vector that is a composite of plurality of motion vectors.

9 . The system of claim 5 , wherein when determining the aggressiveness parameter, the computing system determines a portion of the soil particles within the field of view of the optical flow sensor that is traveling in a crosswise direction relative to the direction of travel based on the plurality of motion vectors.

10 . The system of claim 5 , wherein the row cleaner wheel comprises a plurality of tillage points, the aggressiveness parameter corresponding to a penetration depth of the plurality of tillage points into the field.

11 . The system of claim 5 , further comprising:

an actuator coupled between the row cleaner arm and the frame, the actuator configured to adjust a position of the row cleaner wheel relative to the surface of the field,

wherein the computing system controls an operation of the actuator based on the determined aggressiveness parameter.

12 . The system of claim 11 , wherein, when controlling the operation of the actuator, the computing system is configured to:

compares the determined aggressive parameter to a predetermined range; and

initiates an adjustment to the position of the row cleaner wheel relative to the surface of the field when the determined aggressive parameter falls outside of the predetermined range.

13 . The system of claim 5 , wherein:

the optical flow sensor is configured to capture successive images of the surface of the field within a field of view of the optical sensor; and

when determining the plurality of motion vectors, the computing system compares the successive images captured by the optical flow sensor.

14 . A method for determining row cleaner aggressiveness of a seed-planting implement, the seed-planting implement including a row cleaner assembly having a row cleaner arm pivotably coupled to a frame of the seed-planting implement, the row cleaner assembly further including a row cleaner wheel rotatably coupled to the row cleaner arm, the method comprising:

receiving, with a computing system, optical flow sensor data indicative of a movement of soil particles within a field across which the seed-planting implement is traveling relative to the seed-planting implement;

determining, with the computing system, a plurality of motion vectors based on the received optical flow sensor data, each motion vector of the plurality of motion vectors being associated with the movement of one of the soil particles within a field of view of the optical flow sensor;

determining, with the computing system, an aggressiveness parameter indicative of an amount of engagement between the row cleaner wheel and the surface of the field based on the determined plurality of motion vectors; and

controlling, with the computing system, an operation of an actuator configured to adjust a position of the row cleaner wheel relative to the surface of the field based on the determined aggressiveness parameter.

15 . The method of claim 14 , wherein determining the aggressiveness parameter comprises determining, with the computing system, a composite motion vector that is a composite of sensor the plurality of motion vectors.

16 . The method of claim 14 , wherein the row cleaner wheel comprises a plurality of tillage points, the aggressiveness parameter corresponding to a penetration depth of the plurality of tillage points into the field.

17 . The method of claim 14 , wherein controlling the operation of the actuator comprises:

comparing, with the computing system, the determined aggressive parameter to a predetermined range; and

initiating, with the computing system, an adjustment to the position of the row cleaner wheel relative to the surface of the field when the determined aggressive parameter falls outside of the predetermined range.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 12, 2022
From: STANHOPE, TREVOR
To: CNH INDUSTRIAL AMERICA LLC
Reel/Frame 060793/0654 →
Continuity (1)
Related Publication 20240049622A1 · Feb 15, 2024
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