IP Library Granted Patent US 10,816,426
Granted Patent B2
US 10,816,426 · App. 15/624,798 · Granted Oct 27, 2020

Pressure sensor for detecting a pressure differential

Inventors: Christopher Stovall (Chicago, IL); Jaesik Yu (Inverness, IL)
Assignee: CNH Industrial America LLC
G01L13/06A01B63/22G01L13/02A01B27/005A01B49/027A01B63/32F15B11/10F15B19/005F15B2211/57F15B2211/6313F15B2211/7053
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Quick Facts
Patent No.
US 10,816,426
App. No.
15/624,798
Granted
Oct 27, 2020
Kind
B2
Abstract

In one aspect, a pressure sensor for detecting a pressure differential between first and second fluid sources may include sensor body defining a cavity and a seal plate slidably positioned within the cavity. The seal plate may define first and second chambers within the cavity, which may respectively be in fluid communication with the first and second fluid sources. The sensor may also include a sensing element configured to detect a position of the seal plate relative to the sensor body, which may be indicative of the pressure differential between the first and second fluid sources. The sensor may further include a first spring positioned within the first chamber and compressed between a first side of the seal plate and the sensing element. Additionally, the sensor may include a second spring positioned within the second chamber and compressed between a second side of the seal plate and the sensor body.

Claims (52)

1. A pressure sensor for detecting a pressure differential between a first fluid source and a second fluid source, the pressure sensor comprising:

a sensor body defining a cavity having a constant diameter and a constant cross-section extending between a first end of the cavity and a second end of the cavity, the sensor body defining the first end of the cavity;

a seal plate slidably positioned within the cavity, the seal plate defining first and second chambers within the cavity, the first chamber being in fluid communication with the first fluid source and the second chamber being in fluid communication with the second fluid source;

a sensing element coupled to the body, the sensing element being configured to detect a position of the seal plate relative to the sensor body, the position of the seal plate being indicative of the pressure differential between the first and second fluid sources, the sensing element defining the second end of the cavity;

a first spring positioned within the first chamber, the first spring being compressed between a first side of the seal plate and the sensing element; and

a second spring positioned within the second chamber, the second spring being compressed between a second side of the seal plate and the sensor body.

2. The pressure sensor of claim 1 , further comprising:

a first shaft extending outward from the first side of the seal plate, the sensing element being configured to detect movement of the first shaft relative to the sensing element.

3. The pressure sensor of claim 2 , further comprising:

a magnet coupled to the first shaft, the sensing element being configured to detect a position of the magnet relative to the sensing element.

4. The pressure sensor of claim 1 , wherein the sensing element is a Hall Effect sensor.

5. The pressure sensor of claim 1 , further comprising:

a second shaft extending outward from the second side of the seal plate, the second shaft being configured to limit relative movement between the seal plate and the seal body.

6. The pressure sensor of claim 1 , wherein the sensor body defines a first passage extending between the first chamber and an exterior of the sensor body and a second passage extending between the second chamber and the exterior of the sensor body, the first passage being in fluid communication with the first fluid source and the second passage being in fluid communication with the second fluid source.

7. The pressure sensor of claim 1 , wherein the seal plate has a constant diameter extending between a first end of the seal plate and a second end of the seal plate.

8. The pressure sensor of claim 1 , wherein the seal plate is slidably positioned within the cavity such that the seal plate is configured to slidingly contact the sensor body as the seal plate moves between a first end of the cavity and a second end of the cavity.

9. A fluid-driven actuator configured for use with an agricultural implement, the fluid-driven actuator comprising:

a cylinder defining a first fluid chamber and a second fluid chamber;

a piston housed within the cylinder between the first and second fluid chambers;

a manifold in fluid communication with the first and second fluid chambers; and

a pressure sensor provided in operative association with the manifold, the pressure sensor comprising:

a sensor body defining a cavity having a constant diameter and a constant cross-section extending between a first end of the cavity and a second end of the cavity, the sensor body defining the first end of the cavity;

a seal plate slidably positioned within the cavity, the seal plate having a constant diameter extending between a first end of the seal plate and a second end of the seal plate, the seal plate defining first and second chambers within the cavity, the first chamber being in fluid communication with the first fluid chamber of the cylinder and a second chamber being in fluid communication with the second fluid chamber of the cylinder;

a sensing element coupled to the body, the sensing element being configured to detect a position of the seal plate relative to the sensor body, the position of the seal plate being indicative of the pressure differential between the first and second fluid chambers of the cylinder, the sensing element defining the second end of the cavity;

a first spring positioned within the first chamber, the first spring being compressed between a first side of the seal plate and the sensing element; and

a second spring positioned within the second chamber, the second spring being compressed between a second side of the seal plate and the sensor body.

10. The fluid-driven actuator of claim 9 , further comprising:

a first shaft extending outward from the first side of the seal plate, the sensing element being configured to detect movement of the first shaft relative to the sensing element.

11. The fluid-driven actuator of claim 10 , further comprising:

a magnet coupled to the first shaft, the sensing element being configured to detect movement of the magnet relative to the sensing element.

12. The fluid-driven actuator of claim 9 , wherein the sensing element is a Hall Effect sensor.

13. The fluid-driven actuator of claim 9 , further comprising:

a second shaft extending outward from the second side of the seal plate, the second shaft being configured to limit relative movement between the seal plate and the seal body.

14. The fluid-driven actuator of claim 9 , wherein the sensor body defines a first passage extending between the first chamber and an exterior of the sensor body and a second passage extending between the second chamber and the exterior of the sensor body, the first passage being in fluid communication with the first fluid chamber and the manifold, the second passage being in fluid communication with the second fluid chamber and the manifold.

15. The fluid-driven actuator of claim 9 , wherein the cavity has a constant diameter and a constant cross-section extending between a first end of the cavity and a second end of the cavity.

16. The fluid-driven actuator of claim 9 , wherein the seal plate is slidably positioned within the cavity such that the seal plate is configured to slidingly contact the sensor body as the seal moves between a first end of the cavity and a second end of the cavity.

17. An agricultural implement, Comprising:

a frame;

a ground-engaging tool pivotably coupled to the frame; and

a fluid-driven actuator coupled between the frame and the ground-engaging tool, the fluid-driven actuator being configured to adjust a position of the ground-engaging tool relative to the frame, the fluid-driven actuator comprising:

a cylinder defining a first fluid chamber and a second fluid chamber;

a piston housed within the cylinder between the first and second fluid chambers;

a manifold in fluid communication with the first and second fluid chambers; and

a pressure sensor provided in operative association with the manifold, the pressure sensor comprising:

a sensor body defining a cavity having a constant diameter and a constant cross-section extending from a first end of the cavity to a second end of the cavity, the sensor body defining the first end of the cavity;

a seal plate slidably positioned within the cavity such that the seal plate is configured to slidingly contact the sensor body as the seal moves between the first end of the cavity and the second end of the cavity, the seal plate defining first and second chambers within the cavity, the first chamber being in fluid communication with the first fluid chamber of the cylinder and a second chamber being in fluid communication with the second fluid chamber of the cylinder;

a sensing element coupled to the body, the sensing element being configured to detect a position of the seal plate relative to the sensor body, the position of the seal plate being indicative of the pressure differential between the first and second fluid chambers of the cylinder, the sensing element defining the second end of the cavity;

a first spring positioned within the first chamber, the first spring being compressed between a first side of the seal plate and the sensing element; and

a second spring positioned within the second chamber, the second spring being compressed between a second side of the seal plate and the sensor body.

18. The agricultural implement of claim 17 , wherein the ground-engaging tool corresponds to a basket assembly.

19. The agricultural implement of claim 17 , wherein the seal plate has a constant diameter extending between a first end of the seal plate and a second end of the seal plate.

20. The agricultural implement of claim 17 , wherein the cavity has a constant diameter and a constant cross-section extending between a first end of the cavity and a second end of the cavity.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 19, 2021
From: CNH INDUSTRIAL AMERICA LLC
To: BLUE LEAF I.P., INC.
Reel/Frame 055343/0448 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2017
From: STOVALL, CHRISTOPHER; YU, JAESIK
To: CNH INDUSTRIAL AMERICA, LLC.
Reel/Frame 042729/0818 →
Continuity (1)
Related Publication 20180364128A1 · Dec 20, 2018
Cited By (1)
US 12,656,199