IP Library › Granted Patent US 11,452,954
Granted Patent B2
US 11,452,954 · App. 16/203,616 · Granted Sep 27, 2022

Filter status sensor device, method of use, and automatic replenishment system

Inventor: Kent Lyon (Montgomery, TX)
B01D35/143B01D46/0005B01D46/444B01D46/446G01F1/56G01F1/88
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,452,954
App. No.
16/203,616
Granted
Sep 27, 2022
Kind
B2
Abstract

A method for determining an airflow volume through an air filter is presented. A negative pressure is created within a system housing of an air handling system. Particulate matter is filtered on a filter media of an air filter. A displaceable baffle is progressively moved baffle in proportion to an accumulation of particulate matter on the filter media, wherein the displaceable baffle is movably mounted within a bypass conduit of an airflow sensor device. An output voltage is identified from a magnetic field sensor, wherein the output voltage is proportional to a magnetic flux density of a magnetic field from an actuation magnet mounted on the displaceable baffle. A position of the displaceable baffle is determined based on the output voltage generated by the magnetic field sensor. An accumulation of particulate matter on the filter media is determined based on the position of the displaceable baffle.

Claims (44)

1. An airflow sensor device comprising:

a sensor housing having a conduit;

a displaceable baffle, movably mounted within the conduit,

a magnetic field sensor, mounted within the sensor housing, configured to generate an output voltage; and

an embedded processing system, mounted within the sensor housing and operatively connected to the magnetic field sensor, configured to determine a position of the displaceable baffle based on the output voltage generated by the magnetic field sensor,

wherein the displaceable baffle is a magnetically-biased check valve.

2. The airflow sensor device of claim 1 , wherein the conduit extends from a first side of the sensor housing to a second side of the sensor housing.

3. The airflow sensor device of claim 1 , wherein the displaceable baffle is configured to move within the conduit in response to a pressure differential across the displaceable baffle.

4. The airflow sensor device of claim 1 , wherein the magnetic field sensor generates the output voltage in proportion to a magnetic flux density of a magnetic field from an actuation magnet mounted on the displaceable baffle.

5. The airflow sensor device of claim 4 , wherein the magnetic field sensor is a number of linear Hall effect sensors.

6. The airflow sensor device of claim 1 , wherein the magnetically-biased check valve is proximately attached to the conduit via a hinge, and wherein the magnetically-biased check valve moves within the conduit via rotation around the hinge.

7. The airflow sensor device of claim 1 , wherein the magnetically-biased check valve is centrally mounted within the conduit via a central axis, and wherein the magnetically-biased check valve moves within the conduit via linear displacement along the central axis.

8. An air filter comprising:

a filter media; and

an airflow sensor device, attached to the filter media, comprising:

a sensor housing having a bypass conduit configured for air flow around (or bypassing) the filter media;

a displaceable baffle, movably mounted within the bypass conduit;

a magnetic field sensor, mounted within the sensor housing, configured to generate an output voltage; and

an embedded processing system, mounted within the sensor housing and operatively connected to the magnetic field sensor, configured to determine a position of the displaceable baffle based on the output voltage generated by the magnetic field sensor;

wherein the displaceable baffle progressively moves within the bypass conduit in response to changes to a pressure differential across the displaceable baffle in proportion to an accumulation of particulate matter on the filter media, and

wherein the displaceable baffle is a magnetically-biased check valve.

9. The air filter of claim 8 , wherein the bypass conduit extends from a first side of the sensor housing to a second side of the sensor housing.

10. The air filter of claim 8 , wherein the displaceable baffle is configured to move within the bypass conduit in response to a pressure differential across the displaceable baffle.

11. The air filter of claim 8 , wherein the magnetic field sensor generates the output voltage in proportion to a magnetic flux density of a magnetic field from an actuation magnet mounted on the displaceable baffle.

12. The air filter of claim 11 , wherein the magnetic field sensor is a number of linear Hall effect sensors.

13. The air filter of claim 8 , wherein the magnetically-biased check valve is proximately attached to the bypass conduit via a hinge, and wherein the magnetically-biased check valve moves within the bypass conduit via rotation around the hinge.

14. The air filter of claim 8 , wherein the magnetically-biased check valve is centrally mounted within the bypass conduit via a central axis, and wherein the magnetically-biased check valve moves within the bypass conduit via linear displacement along the central axis.

15. An air handling system comprising:

a fan configured to create a negative pressure within a system housing;

an air filter having a filter frame circumscribing a filter media; and

an airflow sensor device, attached to the filter media, comprising:

a sensor housing having a bypass conduit configured for air flow bypassing the filter media that extends from a first side of the sensor housing to a second side of the sensor housing;

a displaceable baffle, movably mounted within the bypass conduit, wherein the displaceable baffle is configured to move within the bypass conduit in response to a pressure differential across the displaceable baffle;

a magnetic field sensor, mounted within the sensor housing, configured to generate an output voltage in proportion to a magnetic flux density of a magnetic field from an actuation magnet mounted on the displaceable baffle; and

an embedded processing system, mounted within the sensor housing and operatively connected to the magnetic field sensor, configured to determine a position of

the displaceable baffle based on the output voltage generated by the magnetic field sensor;

wherein the displaceable baffle progressively moves within the bypass conduit in response to changes of a pressure differential across the filter in proportion to an accumulation of particulate matter on the filter media; and

wherein the displaceable baffle is a magnetically-biased check valve.

16. The air handling system of claim 15 , wherein the bypass conduit extends from a first side of the sensor housing to a second side of the sensor housing.

17. The air handling system of claim 15 , wherein the displaceable baffle is configured to move within the bypass conduit in response to a pressure differential across the displaceable baffle.

18. The air handling system of claim 15 , wherein the magnetic field sensor generates the output voltage in proportion to a magnetic flux density of a magnetic field from an actuation magnet mounted on the displaceable baffle.

19. The air handling system of claim 18 , wherein the magnetic field sensor is a number of linear Hall effect sensors.

20. The air handling system of claim 15 , wherein the magnetically-biased check valve is proximately attached to the bypass conduit via a hinge, and wherein the magnetically-biased check valve moves within the bypass conduit via rotation around the hinge.

21. The air handling system of claim 15 , wherein the magnetically-biased check valve is centrally mounted within the bypass conduit via a central axis, and wherein the magnetically-biased check valve moves within the bypass conduit via linear displacement along the central axis.

Continuity (1)
Related Publication 20200171414A1 · Jun 4, 2020