IP Library Granted Patent US 12,733,581
Granted Patent B2
US 12,733,581 · App. 18/473,818 · Granted Sep 15, 2026

Harvester implement with dynamically adjustable float system

Inventors: Ethan C. Conrad (Ottumwa, IA); Thomas A. Nichols (Eldon, IA)
Assignee: DEERE & COMPANY
A01D41/141A01D34/006A01D41/145F15B1/08A01D67/00F15B2211/7741
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Quick Facts
Patent No.
US 12,733,581
App. No.
18/473,818
Granted
Sep 15, 2026
Kind
B2
Abstract

A harvester implement includes a linkage system supporting a harvester head, and a float system having an internal fluid pressure that is controllable to achieve a ground contact force between the harvester head and the ground surface. A controller is operable to receive a user defined input commanding a desired ground contact force, and define an initial value of the internal fluid pressure to achieve the desired ground contact force. The controller may then automatically detect a change in an operating parameter of the harvester head during operation, and automatically re-define the initial value of the internal fluid pressure to provide an adjusted value of the internal fluid pressure to maintain the desired ground contact force based on the detected change in the operating parameter of the harvester head during operation.

Claims (28)

1 . A harvester implement comprising:

a main frame supporting at least one ground engaging device and operable to traverse across a ground surface;

a linkage system attached to the main frame and moveable relative to the main frame;

a harvester head attached to and supported by the linkage system relative to the main frame;

a float system interconnecting the main frame and the linkage system, wherein the float system includes an internal fluid pressure that is controllable to achieve a ground contact force between the harvester head and the ground surface;

a controller including a processor and a memory having a float control algorithm stored thereon, wherein the processor is operable to execute the float control algorithm to:

receive a user defined input commanding a desired ground contact force;

define an initial value of the internal fluid pressure to achieve the desired ground contact force;

automatically detect a change in an operating parameter of the harvester head during operation, wherein the operating parameter of the harvester head includes one of a tilt position of the harvester head relative to the linkage system, or a temperature of a hydraulic fluid generating the internal fluid pressure of the float system; and

automatically re-define the initial value of the internal fluid pressure to provide an adjusted value of the internal fluid pressure to maintain the desired ground contact force based on the detected change in the operating parameter of the harvester head during operation.

2 . The harvester implement set forth in claim 1 , wherein the processor is operable to execute the float control algorithm to automatically detect a change during operation in one of the tilt position of the harvester head relative to the linkage system, or the temperature of the hydraulic fluid generating the internal fluid pressure of the float system.

3 . The harvester implement set forth in claim 1 , wherein the float system includes a hydraulic float cylinder operably controlled via the internal fluid pressure exerted by the hydraulic fluid.

4 . The harvester implement set forth in claim 3 , wherein the float system includes an accumulator disposed in fluid communication with the hydraulic float cylinder.

5 . The harvester implement set forth in claim 1 , further comprising a tilt system interconnecting the linkage system and the harvester head, wherein the tilt system includes a tilt cylinder operable to control a tilt angle between the harvester head and the linkage system.

6 . The harvester implement set forth in claim 1 , further comprising a tilt position sensor operable to detect a tilt angle between the harvester head and the linkage system.

7 . The harvester implement set forth in claim 1 , further comprising a temperature sensor operable to detect a temperature of the hydraulic fluid of the float system.

8 . The harvester implement set forth in claim 1 , wherein the change in the operating parameter of the harvester head includes a deviation between a first data set and a second data set over a period of time that is greater than or less than a defined allowable threshold variation from an initial value of the operating parameter.

9 . A windrower implement comprising:

a float system including an internal fluid pressure that is controllable to achieve a ground contact force between a cutter head and a ground surface;

a controller including a processor and a memory having a float control algorithm stored thereon, wherein the processor is operable to execute the float control algorithm to:

automatically detect a change in an operating parameter of the cutter head during operation, wherein the operating parameter of the cutter head includes one of a tilt position of the cutter head, or a temperature of a hydraulic fluid generating the internal fluid pressure of the float system; and

automatically adjust the internal fluid pressure of the float system to maintain the desired ground contact force based on the detected change in the operating parameter of the cutter head during operation.

10 . The windrower implement set forth in claim 9 , wherein the processor is operable to execute the float control algorithm to receive a user defined input commanding a desired ground contact force, and define an initial value of the internal fluid pressure to achieve the desired ground contact force.

11 . The windrower implement set forth in claim 9 , wherein the processor is operable to execute the float control algorithm to automatically detect a change during operation in one of the tilt position of the cutter head, or the temperature of the hydraulic fluid generating the internal fluid pressure of the float system.

12 . The windrower implement set forth in claim 9 , wherein the change in the operating parameter of the cutter head includes a deviation between a first data set and a second data set over a period of time that is greater than or less than a defined allowable threshold variation from an initial value of the operating parameter.

13 . The windrower implement set forth in claim 9 , further comprising a tilt system having a tilt cylinder operable to control a tilt angle of the cutter head.

14 . The windrower implement set forth in claim 13 , further comprising a tilt position sensor operable to detect a tilt angle between of the cutter head.

15 . The windrower implement set forth in claim 9 , further comprising a temperature sensor operable to detect a temperature of the hydraulic fluid of the float system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 25, 2023
From: CONRAD, ETHAN C.; NICHOLS, THOMAS A.
To: DEERE & COMPANY
Reel/Frame 065012/0646 →
Continuity (1)
Related Publication 20250098567A1 · Mar 27, 2025
References Cited (19)
US 6901729B1 · Otto · 2005 [cited by examiner]
US 7520115B2 · Coers · 2009 [cited by examiner]
US 7661251B1 · Sloan · 2010 [cited by examiner]
US 7707811B1 · Strosser · 2010 [cited by applicant]
US 7971420B1 · Bollin · 2011 [cited by examiner]
US 8001751B2 · Ehrhart · 2011 [cited by examiner]
US 8230771B2 · Bitter · 2012 [cited by examiner]
US 9198349B2 · Ritter · 2015 [cited by examiner]
US 9717180B2 · Teach · 2017 [cited by examiner]
US 10617059B2 · Dunn · 2020 [cited by examiner]
US 20060144028A1 · McLean et al. · 2006 [cited by applicant]
US 20110283673A1 · Moersch · 2011 [cited by examiner]
US 20180153102A1 · Dunn · 2018 [cited by examiner]
US 20190200523A1 · Fay, II · 2019 [cited by examiner]
US 20210100155A1 · Vandeven · 2021 [cited by examiner]
US 20220053693A1 · Gahres · 2022 [cited by examiner]
US 20220117143A1 · Kraus · 2022 [cited by examiner]
EP 3987909A1 · 2022 [cited by applicant]
Extended European Search Report and Written Opinion issued in European Patent Application No. 24196572.2 dated Feb. 13, 2025, in 10 pages. [cited by applicant]