IP Library Granted Patent US 12,296,293
Granted Patent B2
US 12,296,293 · App. 18/373,176 · Granted May 13, 2025

Method and system for automated cleaning of filter wall for HVAC systems

Inventor: James Metropoulos (Dallas, TX)
Assignee: BLUE BOX AIR, LLC
B01D46/46B01D46/4263B01D46/444B01D46/446B01D46/69B01D46/79F24F11/39F24F13/222B01D2273/30B01D2279/50F24F2110/40F24F2221/225
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Quick Facts
Patent No.
US 12,296,293
App. No.
18/373,176
Granted
May 13, 2025
Kind
B2
Abstract

Devices, systems, and methods for the automated cleaning of filters and filter walls within heating, ventilation, and air-conditioning (HVAC) systems. Disclosed devices can include self-cleaning filter assemblies configured to receive and surround at least one filter, such as an HVAC filter. In some embodiments, the self-cleaning assemblies receive and surround at least one filter and at least one fan. For example, at least one filter or filter wall comprising multiple filters and fan may be combined together into a single cube, where the cube is then received and surrounded by the self-cleaning casing. In some embodiments, the self-cleaning assemblies or cubes receive and surround at least one filter, at least one fan, and at least one heat transfer coil. The cleaning system can have different cleaning cycles, such as a cleaning cycle that cleans the filter(s) and a different cleaning cycle that cleans the heat transfer coil.

Claims (37)

1. An automated cleaning system for cleaning a filter of a heating, ventilation, and air-conditioning (HVAC) system, the automated cleaning system comprising:

a self-cleaning filter assembly comprising:

a casing having a plurality of injection ports positioned along a top edge and a bottom edge of the casing, wherein the injection ports are configured to deliver a cleaning solution to a face of the filter; and

a filter housed within the casing and positioned behind the plurality of injection ports such that the face of the filter is behind the plurality of injection ports;

a central system comprising a controller, an air handler, and a reservoir tank; and

at least one tube connecting the self-cleaning filter assembly to the reservoir tank of the central system.

2. The automated cleaning system of claim 1 , further comprising a fan housed within the casing and disposed in front of the filter.

3. The automated cleaning system of claim 1 , further comprising a heat transfer coil housed within the casing.

4. The automated cleaning system of claim 1 , further comprising a plurality of sensors mounted within the casing.

5. The automated cleaning system of claim 4 , wherein at least one of the plurality of sensors is a pressure sensor.

6. The automated cleaning system of claim 5 , wherein the pressure sensor is configured to sense an air pressure or air flow across the filter.

7. The automated cleaning system of claim 5 , wherein the pressure sensor is configured to communicate an air pressure or air flow across the filter to a central controller.

8. The automated cleaning system of claim 5 , wherein the pressure sensor is configured to trigger a cleaning process when air pressure across the filter satisfies a threshold value.

9. The automated cleaning system of claim 8 , wherein the threshold value comprises an approximately 1-5% change in air pressure across the filter compared to an air pressure the filter was designed to withstand.

10. The automated cleaning system of claim 1 , further comprising one or more nozzles for emitting aerosolized enzymes into an air stream on a downstream side of the filter wall for application to heat transfer coils of the HVAC system.

11. An automated cleaning system for cleaning HVAC filters of an HVAC system, the automated cleaning system comprising:

a self-cleaning filter assembly;

a central system comprising a controller, an air handler, and a reservoir tank; and

at least one tube connecting the self-cleaning filter assembly to the reservoir tank of the central system.

12. The automated cleaning system for cleaning HVAC filters of claim 11 , wherein the self-cleaning filter assembly comprises:

a casing having a plurality of injection ports, at least one positioned along a top edge and at least one along a bottom edge of the casing, wherein the injection ports are configured to receive a cleaning solution from the reservoir tank; and

a filter housed within the casing and positioned behind the injection ports such that a face of the filter is behind the injection ports and receives the cleaning solution from the injection ports.

13. The automated cleaning system of claim 11 , wherein the reservoir tank is connected to a water line.

14. The automated cleaning system of claim 11 , wherein the reservoir tank is configured to receive condensed water from cooling coils of the HVAC system.

15. The automated cleaning system of claim 11 , wherein the automated system includes a plurality of self-cleaning filter assemblies (i) arranged as a filter wall and (ii) arranged with a tight tolerance such that no gaps are left between each of the plurality of self-cleaning filter assemblies, such that the system eliminates filter bypass.

16. The automated cleaning system of claim 11 , further comprising one or more nozzles that emit aerosolized enzymes into an air stream on a downstream side of the filter for application to heat transfer coils of the HVAC system.

17. A method of automatically cleaning an HVAC filter of an HVAC system, the method comprising:

providing the automated cleaning system of claim 1 ; and

flushing a cleaning solution through the self-cleaning filter assembly, whereby flushing the cleaning solution through the self-cleaning filter assembly automatically cleans the HVAC filter of the HVAC system.

18. The method of claim 17 , further comprising:

providing a water line as a source of water for making the cleaning solution;

mixing water with one or more reagents to form the cleaning solution; and

delivering the cleaning solution to injection ports.

19. The method of claim 17 , further comprising:

collecting condensate water from the evaporative coil(s) of the HVAC system; and

using the condensate water as an auxiliary or alternate source of water for making the cleaning solution.

20. The method of claim 17 , further comprising emitting aerosolized enzymes into an air stream on a downstream side of the filter and applying the enzymes to heat transfer coils of the HVAC system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2023
From: METROPOULOS, JAMES
To: BLUE BOX AIR, LLC
Reel/Frame 065037/0167 →
Continuity (2)
Provisional Application 63410436 · Sep 27, 2022
Related Publication 20240100461A1 · Mar 28, 2024
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