IP Library Granted Patent US 12,449,058
Granted Patent B2
US 12,449,058 · App. 18/273,660 · Granted Oct 21, 2025

Method for actuating a solenoid valve which is used for throughflow rate control of an agricultural spreading machine

Inventor: Markus Trentmann (Wallenhorst, DE)
Assignee: Amazonen-Werke H. Dreyer SE & Co. KG
F16K31/0675A01M7/0089F16K31/0655H01F7/1844H01F2007/1888H01F2007/1894
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Quick Facts
Patent No.
US 12,449,058
App. No.
18/273,660
Granted
Oct 21, 2025
Kind
B2
Abstract

A method for actuating a solenoid valve, which is used for throughflow rate control, of an agricultural spreading machine, wherein the solenoid valve has a valve armature, comprising: energizing the solenoid valve in order to cause an opening movement of the valve armature and/or in order to hold the valve armature in an open position in which the solenoid valve is open, interrupting or changing the energization of the solenoid valve in order to cause a closing movement of the valve armature in the direction of a valve seat, and causing a reduction in the movement speed of the valve armature during the closing movement of the valve armature.

Claims (32)

1. A method for actuating a solenoid valve of an agricultural spreading machine which is used for throughflow rate control, wherein the solenoid valve has a valve armature, comprising:

energizing the solenoid valve in order to cause an opening movement of the valve armature or hold the valve armature in an open position in which the solenoid valve is open; and

interrupting or changing the energization of the solenoid valve in order to cause a closing movement of the valve armature in the direction of a valve seat; and

causing a reduction in the movement speed of the valve armature during the closing movement of the valve armature, wherein the solenoid valve has a coil and the energization of the solenoid valve for holding the valve armature in the open position is pulse-width modulated, wherein a negative induction voltage of the coil during pulse width modulated energization of the solenoid valve to hold the valve armature in the open position is limited to a first voltage limit value and during interruption or alteration of the energization of the solenoid valve to cause a closing movement of the valve armature is limited to a second voltage limit value, wherein the magnitude of the second voltage limit value is greater than the magnitude of the first voltage limit value.

2. The method according to claim 1 , wherein the solenoid valve is energized to cause the movement speed of the valve armature to decrease during the closing movement of the valve armature.

3. The method according claim 1 , wherein the solenoid valve has a return spring acting on the valve armature, and the return spring causes or supports the closing movement of the valve armature.

4. The method according to claim 1 , further comprising:

determining an expected contact time at which the valve armature comes into contact with the valve seat without a reduction in the movement speed of the valve armature during the closing movement;

wherein the causing of the reduction in the movement speed of the valve armature during the closing movement is based on at least the determined contact time to be expected.

5. The method according to claim 1 , further comprising:

determining an actual contact time at which the valve armature comes into contact with the valve seat;

wherein the causing of the reduction in the movement speed of the valve armature during a subsequent closing movement is based on at least a determined actual contact time.

6. The method according to claim 5 , wherein the actual contact time is determined by evaluating a temporal development of a voltage applied to the solenoid valve.

7. The method according to claim 6 , wherein evaluating the temporal development of the voltage applied to the solenoid valve comprises detecting a specific voltage change in the temporal development of the voltage applied to the solenoid valve.

8. The method according to claim 1 , further comprising:

determining a contact time of another solenoid valve of the agricultural spreading machine at which the valve armature of the other solenoid valve comes into contact with the valve seat of the another solenoid valve;

wherein the causing of the reduction in the movement speed of the valve armature during the closing movement is based on at least the determined contact time of another solenoid valve.

9. The method according to claim 1 , further comprising:

suspending the reduction of the movement speed of the valve armature during the closing movement in at least one switching cycle; and

determining a delay-free contact time at which the valve armature comes into contact with the valve seat during the at least one switching cycle;

wherein the causing of the reduction in the movement speed of the valve armature during a subsequent closing movement is based on at least the determined delay-free contact time.

10. A system for actuating a solenoid valve of an agricultural spreading machine used for throughflow rate control, the solenoid valve having a movable valve armature, comprising:

a control unit via which the solenoid valve can be energized to cause an opening movement of the valve armature and/or to hold the valve armature in an open position in which the solenoid valve is open;

wherein the control unit is adapted to cause the energization of the solenoid valve to be interrupted or changed to cause a closing movement of the valve armature in the direction of a valve seat; and

wherein the control unit is configured to cause a reduction in the movement speed of the valve armature during the closing movement of the valve armature by a control intervention, in particular by causing the solenoid valve to be energized, wherein the solenoid valve has a coil and the control unit is adapted to energize the solenoid valve in a pulse width modulated manner to hold the valve armature in the open position and to limit a negative induction voltage of the coil during energizing of the solenoid valve in a pulse-width-modulated manner to hold the valve armature in the open position to a first voltage limit value and during interruption or alteration of the energization of the solenoid valve to cause a closing movement of the valve armature to a second voltage limit value, wherein a magnitude of the second voltage limit value is greater than a magnitude of the first voltage limit value.

11. The system according to claim 10 , wherein the solenoid valve comprises a return spring acting on the valve armature and the return spring is adapted to cause or support the closing movement of the valve armature.

12. The system according to claim 10 , wherein the control unit is adapted,

to determine an expected contact time to be expected at which the valve armature comes into contact with the valve seat without a reduction in the movement speed of the valve armature during the closing movement;

to determine an actual contact time at which the valve armature comes into contact with the valve seat;

to determine a contact time of another solenoid valve of the agricultural spreading machine at which the valve armature of the other solenoid valve comes into contact with the valve seat of the other solenoid valve; or

to determine a delay-free contact time at which the valve armature comes into contact with the valve seat during at least one switching cycle in which the reduction of the movement speed of the valve armature is suspended during the closing movement;

wherein the control unit is configured to cause a reduction in the movement speed of the valve armature during the closing movement based on at least one of: the determined expected contact time, the determined actual contact time, the determined contact time of the other solenoid valve and the determined delay-free contact time.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2023
From: TRENTMANN, MARKUS
To: AMAZONEN-WERKE H. DREYER SE & CO. KG
Reel/Frame 064662/0027 →
Priority Claims (1)
DE 10 2021 101 335.6 · Jan 22, 2021 · national
Continuity (1)
Related Publication 20240084916A1 · Mar 14, 2024
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