IP Library › Granted Patent US 12,246,570
Granted Patent B2
US 12,246,570 · App. 18/575,933 · Granted Mar 11, 2025

Height-adjustable agricultural vehicles and methods of transferring loads therein

Inventor: Jason Darwin Sieve (Jackson, MN)
Assignee: AGCO Corporation
B60G17/018B60G17/016B60G17/017B60G3/01B60G2300/08B60G2400/60B60G2400/64B60G2800/214B62D49/0678
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Quick Facts
Patent No.
US 12,246,570
App. No.
18/575,933
Granted
Mar 11, 2025
Kind
B2
Abstract

An agricultural vehicle includes a chassis, a plurality of ground-engaging elements configured to support the chassis above a ground surface, and a plurality of support assemblies supporting the chassis on the ground-engaging elements. Each support assembly includes a height-adjustment actuator. A controller is configured to adjust the height-adjustment actuators independently of one another and transfer a load from a first ground-engaging element to other ground-engaging elements. A method of operating an agricultural vehicle includes receiving a command to transfer a load from a first ground-engaging element to other ground-engaging elements, adjusting at least one height-adjustment actuator, and transferring a load from the first ground-engaging element to the other ground-engaging elements.

Claims (26)

1. A method of operating an agricultural vehicle comprising a chassis, four ground-engaging elements configured to support the chassis above a ground surface, and four support assemblies supporting the chassis on the ground-engaging elements, wherein each support assembly comprises a height-adjustment actuator, each height-adjustment actuator configured to operate independently of other height-adjustment actuators, the method comprising:

receiving a command to transfer a load from a first of the ground-engaging elements to second, third, and fourth ground-engaging elements;

adjusting at least one of the height-adjustment actuators such that the first ground-engaging element is at a different height than the second, third, and fourth ground-engaging elements;

transferring a load from a first portion of the ground surface providing a first traction at the first ground-engaging element to at least a second portion of the ground surface at at least one of the second, third, or fourth ground-engaging elements, the second portion of the ground surface providing a second traction greater than the first traction; and

driving at least one of the second, third, and fourth ground-engaging elements while the load is carried by the second, third, and fourth ground-engaging elements.

2. The method of claim 1 , wherein adjusting at least one of the height-adjustment actuators comprises raising the first ground-engaging element above the ground surface while the chassis is supported by the second, third, and fourth ground-engaging elements.

3. The method of claim 1 , wherein adjusting at least one of the height-adjustment actuators comprises extending at least two of the height-adjustment actuators.

4. The method of claim 1 , wherein adjusting at least one of the height-adjustment actuators comprises retracting the height-adjustment actuator corresponding to the first ground-engaging element.

5. The method of claim 1 , wherein adjusting at least one of the height-adjustment actuators comprises:

extending each of the height-adjustment actuators to raise the chassis relative to the ground surface; and

retracting the height-adjustment actuator corresponding to the first ground-engaging element.

6. The method of claim 1 , wherein adjusting at least one of the height-adjustment actuators comprises extending at least two of the height-adjustment actuators in unison while maintaining another of the height-adjustment actuators stationary.

7. An agricultural vehicle comprising:

a chassis;

four ground-engaging elements configured to support the chassis above a ground surface;

four support assemblies supporting the chassis on the ground-engaging elements, each support assembly comprising a height-adjustment actuator, each height-adjustment actuator configured to operate independently of other height-adjustment actuators; and

a controller configured to:

adjust the height-adjustment actuators independently of one another such that a first of the ground-engaging elements is at a different height than second, third, and fourth ground-engaging elements;

transfer a load from a portion of the ground surface providing a first traction at the first ground-engaging element to at least a second portion of the ground surface at at least one of the second, third, and fourth ground-engaging elements, the second portion of the ground surface providing a second traction greater than the first traction; and

drive at least one of the second, third, and fourth ground-engaging elements while the load is carried by the second, third, and fourth ground-engaging elements.

8. The vehicle of claim 7 , further comprising:

a liquid holding tank carried by the chassis; and

a plurality of nozzles spaced along a transversely extending applicator boom carried by the chassis, wherein the nozzles are configured to deliver fluid from the liquid holding tank to the ground surface.

9. The vehicle of claim 7 , wherein the height-adjustment actuators comprise hydraulic cylinders that are each connected to a common fluid source via a respective control valve.

10. The vehicle of claim 7 , further comprising a user interface for allowing a user to send a command to the controller, the controller configured to automatically actuate at least one of the height-adjustment actuators and transfer the load from the first ground-engaging element after receiving the command from the user.

11. The vehicle of claim 7 , wherein the controller is configured to adjust a plurality of the height-adjustment actuators while at least one of the height-adjustment actuators remains stationary.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 2, 2024
From: SIEVE, JASON DARWIN
To: AGCO CORPORATION
Reel/Frame 065993/0396 →
Continuity (2)
Provisional Application 63221593 · Jul 14, 2021
Related Publication 20240308290A1 · Sep 19, 2024
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